US20220125607A1 - Pump system - Google Patents
Pump system Download PDFInfo
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- US20220125607A1 US20220125607A1 US17/573,364 US202217573364A US2022125607A1 US 20220125607 A1 US20220125607 A1 US 20220125607A1 US 202217573364 A US202217573364 A US 202217573364A US 2022125607 A1 US2022125607 A1 US 2022125607A1
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- United States
- Prior art keywords
- pump mechanism
- housing
- foot
- pump
- membrane
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Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/78—Means for protecting prostheses or for attaching them to the body, e.g. bandages, harnesses, straps, or stockings for the limb stump
- A61F2/80—Sockets, e.g. of suction type
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/60—Artificial legs or feet or parts thereof
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B45/00—Pumps or pumping installations having flexible working members and specially adapted for elastic fluids
- F04B45/04—Pumps or pumping installations having flexible working members and specially adapted for elastic fluids having plate-like flexible members, e.g. diaphragms
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/68—Operating or control means
- A61F2/74—Operating or control means fluid, i.e. hydraulic or pneumatic
- A61F2/748—Valve systems
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/60—Artificial legs or feet or parts thereof
- A61F2002/607—Lower legs
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/60—Artificial legs or feet or parts thereof
- A61F2/66—Feet; Ankle joints
- A61F2002/6614—Feet
- A61F2002/6642—Heels
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/60—Artificial legs or feet or parts thereof
- A61F2/66—Feet; Ankle joints
- A61F2002/6614—Feet
- A61F2002/6657—Feet having a plate-like or strip-like spring element, e.g. an energy-storing cantilever spring keel
- A61F2002/6678—L-shaped
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/78—Means for protecting prostheses or for attaching them to the body, e.g. bandages, harnesses, straps, or stockings for the limb stump
- A61F2/80—Sockets, e.g. of suction type
- A61F2002/802—Suction sockets, i.e. utilizing differential air pressure to retain the prosthesis on the stump
Definitions
- the disclosure relates to the field of prosthetic devices, and more particularly to a prosthetic device, system and pump mechanism for increasing vacuum in a vacuum assisted suspension system.
- prosthetic devices An ongoing challenge in the development of prosthetic devices is the attachment of the prosthetic device to the residual limb of a user.
- the lack of a secure attachment can adversely affect the user's ability to walk.
- an improper fit can cause sores, swelling and pain for the user.
- Mechanical pumps are often in-line systems that utilize the movement of the user to generate the negative pressure vacuum in the socket.
- the force generated by contacting the ground during a user's walking motion can be used to generate a vacuum in the socket space to hold the prosthesis to the user's limb.
- known pumps rely on complete compression of the pump to expel air from the pump before the pump can be decompressed to generate the vacuum. Because the impact and displacement of the pump is not consistent and varies between users, the vacuum and thus attachment between residual limb and the socket can be unpredictable and/or inadequate, causing the user discomfort, grief and even injury.
- Embodiments of the vacuum suspension system provide vacuum assisted suspension by generating negative pressure inside a prosthetic socket worn over a residual limb, and reducing sliding movement between the liner and the socket.
- the function of the embodiments is automatic as it is activated during gait.
- the weight placed on a prosthetic device of the system expands a pump mechanism that efficiently draws air out from the socket in each step, and expels it into the atmosphere during swing phase as the pump mechanism returns to an original configuration.
- the prosthetic device can be the socket, a prosthetic pylon, a prosthetic foot, an adaptor system, a prosthetic knee, or any other suitable device.
- the pump mechanism utilizes the user's loading on the prosthetic device to create negative pressure into the socket without substantially affecting the functionality of the prosthetic device. It also does so without the use of complicated and bulky components as in the prior art, resulting in more secure and reliable elevated vacuum suspension. Furthermore, the pump mechanism can be a separate add-on module to the prosthetic system and can be adapted to fit a number of different prosthetic devices, providing versatility.
- the vacuum suspension system includes a pump system arranged to be in fluid communication with a prosthetic socket.
- the pump system includes a pump mechanism having a housing and a membrane situated on the housing such that a fluid chamber is defined between the membrane and the housing.
- the pump mechanism is movable between an original configuration in which the volume of the fluid chamber is zero or near-zero, and an expanded configuration in which the volume of the fluid chamber is increased.
- the pump system comprises a prosthetic adaptor adapted to form at least part of a load bearing connection between a prosthetic foot and the prosthetic socket.
- the pump system can include upper and lower sections arranged to move in an axial direction relative to one another, and the pump mechanism operatively connected to and positioned between the upper and lower sections such that when the pump system is loaded in stance the pump mechanism moves from the original configuration toward the expanded configuration.
- the upper section and the lower section move toward one another, which, in turn, moves the pump mechanism toward the expanded configuration and increases the volume of the fluid chamber.
- This increase in the volume of the fluid chamber creates a vacuum in the pump mechanism, pulling fluid into the pump mechanism from the socket.
- Weight bearing on the prosthetic connector thus automatically creates a vacuum in the pump mechanism.
- the pump mechanism After weight bearing (e.g., in swing phase), the pump mechanism returns toward the original configuration as the upper and lower sections move away from one another, expelling fluid within the fluid chamber.
- the pump mechanism can thus generate a vacuum in the socket during stance without undesirably affecting the functionality of the prosthetic foot or significantly increasing the bulk of the prosthetic device.
- the pump mechanism 126 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle.
- the pump mechanism can be located at or near the socket such that there is no need to move fluid drawn into the pump mechanism from the socket down to the prosthetic foot. This advantageously reduces the time required to produce an elevated vacuum in the socket. Further, it eliminates or reduces the need of a long tube extending between the pump mechanism and the socket, reducing the likelihood of leaks and volume to generate vacuum.
- the pump mechanism embodiments can also be formed to be used with both left and right prosthetic feet or may be foot specific.
- the pump system can include a biasing mechanism arranged to bias the pump mechanism toward the original configuration.
- the biasing mechanism can compress between the upper and lower sections.
- the biasing mechanism decompresses and stored energy in the biasing mechanism drives the pump mechanism toward the original configuration.
- FIG. 1 shows a side view of a vacuum suspension system according to an embodiment.
- FIG. 2 shows a detailed side view of the pump system in FIG. 1 .
- FIG. 3 shows another detailed side view of the pump system in FIG. 1 .
- FIG. 4 shows partial cutaway view of the vacuum suspension system in FIG. 1 .
- FIG. 5 shows a side isometric view of a vacuum suspension system according to an embodiment.
- FIG. 6 shows a front view of the pump system in FIG. 5 .
- FIG. 7 shows a cross section view of the pump system in FIG. 5 .
- FIG. 8 shows another cross section view of the pump system in FIG. 5 .
- FIG. 9 shows a side isometric view of a vacuum suspension system according to another embodiment.
- FIG. 10 shows a side isometric view of the pump system in FIG. 9 .
- FIG. 11 shows a cross section view of the pump system in FIG. 9 .
- FIG. 12 shows another cross section view of the pump system in FIG. 9 .
- FIG. 13 shows a side isometric view of a pump system according to another embodiment.
- FIG. 14 shows a cross section view of the pump system in FIG. 13 .
- FIG. 15 shows another cross section view of the pump system in FIG. 13 .
- FIG. 16 shows a side isometric view of a pump system according to another embodiment.
- FIG. 17 shows a cross section view of the pump system in FIG. 16 .
- FIG. 18 shows another cross section view of the pump system in FIG. 16 .
- FIG. 19 shows a side isometric view of a pump system according to another embodiment.
- FIG. 20 shows a cross section view of a pump system according to another embodiment.
- FIG. 21 shows another cross section view of the pump system in FIG. 20 .
- FIG. 22 shows a side view of a pump system according to another embodiment.
- FIG. 23 shows a cross section view of the pump system in FIG. 22 .
- FIG. 24 shows another cross section view of the pump system in FIG. 22 .
- FIG. 25 shows a cross section view of a pump system according to another embodiment.
- FIG. 26 shows another cross section view of the pump system in FIG. 25 .
- FIG. 27 shows a side isometric view of a vacuum suspension system according to another embodiment.
- FIG. 28 is a cross section view of the vacuum suspension system in FIG. 27 .
- FIG. 29 shows a partial side isometric view of a vacuum suspension system according to another embodiment.
- a pump system having a fluid connection with a socket assists in creating a vacuum between a residual limb and the socket by pumping fluid out of the socket.
- the fluid can be pumped out of the socket when the user puts his weight on a prosthetic device (e.g., a prosthetic foot, a pylon, or prosthetic knee).
- the user's load on the prosthetic device can cause a pump mechanism of the pump system to increase the volume of a fluid chamber in the pump mechanism.
- the increase in volume of the pump mechanism draws in fluid from the vacuum space between the residual limb and the socket of a prosthetic limb. In this manner, the pump mechanism decreases the air pressure within the vacuum space causing a vacuum effect.
- the connection between the vacuum space and the pump mechanism may have a one-way valve assembly, so all of the air within the volume of the pump mechanism is expelled out of an outlet to another space or to atmosphere.
- the outlet is provided with a one-way valve assembly so the vacuum space is the only source of air.
- the vacuum suspension system of the present disclosure produces a vacuum effect in a prosthetic socket that is advantageous over prior art devices that require compression of the pump to expel air before the pump can be decompressed to draw in air.
- the present disclosure also achieves smaller fluctuations in air pressure than the prior art systems, so the difference between the greatest pressure and lowest pressure in the vacuum space of the socket is less.
- the pump mechanism embodiments may easily retrofit on existing prosthetic devices and can do so without undesirably affecting their function. They are also lightweight and low-profile, advantageously contributing little to no bulk to a prosthetic foot.
- the pump mechanism embodiments can be located at or near the socket such that there is no need to move fluid drawn into the pump mechanism from the socket down to the prosthetic foot. This advantageously reduces the time required to produce an elevated vacuum in the socket. Further, it eliminates or reduces the need of a long tube extending between the prosthetic foot and the socket, reducing the likelihood of leaks and volume to generate vacuum.
- the pump mechanism embodiments can also be formed to be used with both left and right prosthetic feet or may be foot specific.
- the efficiency of the pump mechanism is determined at least in part by how effectively the volume of the fluid chamber is reduced. Since the pump mechanism begins at and returns to the original state of zero or near-zero volume at the beginning or end of each cycle in some embodiments, the volume of the fluid chamber is determined by the force applied to the pump, not by a full compression and recompression cycle as in the prior art. In addition, all fluid drawn into the pump mechanism is expelled afterwards, fully utilizing the volume of the fluid chamber.
- the vacuum suspension system also reduces volume fluctuations of the residual limb and allows for increased proprioception and reduced pistoning since there is a better attachment between the socket and the residual limb. It may also be beneficial to produce hypobaric pressure below a certain level in the socket. This may be achieved using a sealing membrane or seal component between the residual limb and the socket, instead of the conventional sealing method of using a sleeve to form an airtight connection between the residual limb and the proximal end of the socket.
- the sealing membrane may be on a prosthetic liner as described in U.S. Pat. No. 8,034,120 incorporated by reference and belonging to the assignee of this disclosure.
- a liner having a seal or seal component reduces the volume of air to be drawn out of the socket and therefore, a better suspension may be achieved in a shorter time period.
- Using a silicone liner with integrated seal also provides the added benefit that the hypobaric region is not directly applied to the skin.
- the vacuum pump mechanisms in the embodiments of the prosthetic device described are generally described as a pump system or mechanism and may include any suitable type of pump mechanism.
- the pump mechanism may be a pump as described in U.S. provisional application 62/019,674 incorporated by reference and belonging to the assignee of this disclosure.
- a piston-type pump may be used in the embodiments in place of a membrane-type pump.
- a bladder-type pump may also be used in the embodiments in place of a membrane-type pump, and a skilled person would understand that the pump mechanisms described may also be used with a bladder-type pump and vice versa.
- a bladder-type pump has an interior fluid chamber surrounded by an airtight material. When the interior chamber is expanded, the opposing walls are moved away from each other by extending at least one side wall of the pump.
- the side walls of the bladder-type pump may have an accordion-like shape or be formed of a polymeric material which allow for the increase in distance between the opposing walls.
- a membrane-type pump has at least one wall of flexible material and a second opposing wall which may be rigid or flexible. The edges of the two walls are attached to each other such that when a force applies to the pump to expand the interior fluid chamber, the force deforms at least the flexible wall, and the flexible wall arcs outward to form an interior fluid chamber.
- the flexible wall may be made of a polymeric material including elastomeric material such as rubber or plastic.
- the bladder-type pump and membrane-type pump are arranged so that when no force applies to the pump or no weight is placed on the prosthetic device the volume of the interior fluid chamber is zero or near-zero.
- the pumps described and shown have a cylindrical shape. A skilled person would understand that the pumps may have a variety of shapes, for example, a diamond, rectangular, or triangular shape.
- FIGS. 1 and 2 show a vacuum suspension system 1 comprising a pump system 2 and a prosthetic foot 4 according to an embodiment.
- the prosthetic foot 4 can be any suitable prosthetic foot but is shown having a foot member 6 that extends from a proximal section 8 terminating at a proximal end to a distal section 10 terminating at a distal end.
- the proximal section 8 can be generally vertically oriented, and the distal section 10 can be generally horizontally oriented.
- the foot member 6 can have a curved portion 12 between the proximal section 8 and the distal section 10 that is generally forwardly-facing concave.
- the curved portion 12 and/or the proximal section 8 can be generally at a location of a natural human ankle.
- the prosthetic foot 4 can have a heel member 14 that extends rearwardly from the foot member 6 and is disposed below at least a portion of the foot member 6 .
- the heel member 14 can have a curvilinear profile along its length.
- An adaptor 16 can be coupled to the anterior surface of the proximal section 8 of the foot member 6 .
- the adaptor 16 can have a hole 18 or a hollowed-out portion to reduce the weight of the adaptor 16 .
- An adhesive or bonding agent e.g., epoxy
- fasteners or other hardware can be used to secure the adaptor 16 to the foot member 6 .
- a connector 20 can be disposed on the proximal end of the adaptor 16 for coupling the foot member 6 to a prosthetic pylon 22 or socket.
- the connector 20 can be a male pyramid connector, a tube clamp, or other attachment device.
- the connector can be secured to the adaptor 16 with adhesive or bonding agent.
- the connector 20 can also be secured to the adaptor 16 with fasteners or other hardware. Additionally, or alternatively, the connector 20 can be threadedly attached to the adaptor 16 .
- the prosthetic foot 4 can expand and compress.
- the prosthetic foot 4 is in expansion when the proximal end of the foot member 6 and the heel member 14 are moved together from a resting position of the foot, reducing the distance between the foot member and the heel member.
- the prosthetic foot 4 is in compression when the proximal end of the foot member 6 and the heel member 14 are moved apart from the resting position of the foot, increasing the distance between the foot member and heel member 14 .
- Additional prosthetic foot designs that can include the pump system embodiments disclosed herein can include, but are not limited to, the following models by ⁇ ssur of Rekjavik, Iceland: AxiaTM, CeterusTM, ElationTM, LP CeterusTM, LP Vari-FlexTM, Modular IIITM, Re-Flex VSP®, CheetahTM, Flex-SprintTM, Flex-RunTM, Talux®, Vari-Flex®, Flex-Foot® Junior, Sure-Flex, Vari-Flex XC RotateTM, LP RotateTM, LP Re-Flex VSP, Re-Flex RotateTM, Re-Flex ShockTM, Flex-Foot Balance, Flex-Foot Assure, and BalanceTM Foot J.
- This disclosure is incorporated by reference and belongs to the assignee of this disclosure.
- the prosthetic foot 4 may be insertable into a foot cover 24 as seen in FIG. 1 .
- the bottom surface of the foot member 6 and/or a rear surface of the heel member 14 can be shaped to generally correspond to the curvature and shape of the inner surfaces of a foot cover.
- the gait cycle defines the movement of the leg between successive heel contacts of the same foot.
- the gait cycle has two phases: stance and swing. Of particular interest is the stance phase which generally includes heel-strike or initial contact, mid-stance, and toe-off.
- a prosthetic foot 4 It is during the stance phase that the mechanics of a prosthetic foot 4 come into play. Upon heel strike, the prosthetic foot 4 is in expansion, providing cushioning to the user. During mid-stance, at which time the weight of the user is transmitted through the prosthetic foot 4 to a supporting surface, the prosthetic foot 4 moves from expansion into compression. The prosthetic foot 4 remains in compression through toe-off until the weight of the user is removed from the prosthetic foot, at which time the prosthetic foot 4 returns to its resting position.
- the pump system 2 can be coupled to the prosthetic device at any suitable location but is shown coupled between the heel member 14 and the pylon 22 .
- the pump system 2 can be formed to be used with both left and right prosthetic feet. Alternatively, the pump system 2 can be formed to be used specifically on a left or right prosthetic foot.
- the pump system 2 can include a pump mechanism 26 made generally from carbon fiber and/or plastic, and an elastomeric compound (e.g., a membrane) providing durable yet lightweight components.
- a pump mechanism 26 made generally from carbon fiber and/or plastic, and an elastomeric compound (e.g., a membrane) providing durable yet lightweight components.
- elastomeric compound e.g., a membrane
- Prior art pump mechanisms are of heavy metal construction, which imposes a significant weight burden on the user when walking.
- the pump mechanism can be secured to the pylon 22 .
- the pump mechanism 26 can be located between a support member 28 extending rearwardly from the pylon 22 and a movable member 30 connected to the pylon 22 below the support member 28 . Because the pump mechanism is secured to the pylon 22 , it advantageously does not add volume to the prosthetic foot 4 and/or foot cover 24 .
- the pump mechanism 26 includes a housing 32 containing one or more valve assemblies 34 , a membrane 36 , a connector 38 , and a connecting system 40 .
- the one or more valve assemblies 34 can include a one-way valve, also referred to as a check valve.
- a preferred type of one-way valve used is a duckbill valve. It should be appreciated however that other types of one-way valves are possible.
- the one or more valve assemblies 34 can include an inlet valve assembly arranged to only allow fluid to enter the pump mechanism 26 and can optionally be connected to a tube.
- the pump mechanism 26 can be in fluid communication with the cavity of a prosthetic socket. When the volume of the pump mechanism 26 increases, fluid (e.g., air) can be drawn out from the socket via the inlet valve assembly.
- the at least one valve assembly 34 can include an outlet valve assembly arranged to only allow fluid to be expelled out of the pump mechanism 26 , preferably to atmosphere.
- the outlet valve assembly may include a silencer.
- the pump mechanism 26 is located away from the foot 4 and toward the socket, there is no need to move the fluid drawn into the pump mechanism from the socket down to the prosthetic foot, advantageously reducing the time required to produce an elevated vacuum in the socket. Further, it eliminates the need of a long tube extending between the prosthetic foot and the socket and the likelihood of leaks in the pump system 2 .
- the top surface of the housing 32 defines a cavity 42 that is provided with an undercut circumferential groove 44 between an open end of the cavity 42 and a closed bottom of the cavity.
- An outer radial edge of the membrane 36 can be situated in the circumferential groove 44 such that a seal is formed between the membrane 36 and the housing 32 .
- an adhesive can be applied between the housing 32 and the outer radial edge of the membrane 36 , increasing the sealing effect.
- the bottom of the cavity has one or more openings 46 which extend into the housing 32 to form internal passageways providing fluid communication between a fluid chamber 48 defined between the bottom of the cavity and a bottom surface of the membrane 36 , and the at least one valve assembly 34 .
- the pump mechanism 36 relies upon deformation of the membrane 36 to move between an original configuration (shown in FIG. 2 ) in which the volume of the fluid chamber 48 is zero or near-zero, and an expanded configuration (shown in FIG. 3 ) in which the volume of the fluid chamber 48 is increased.
- the pump mechanism 26 moves toward the expanded configuration (shown in FIG. 3 ) as the force F pulls the bottom of the cavity away from a portion of the membrane 26 , causing deformation of the membrane 36 and an increase in volume of the fluid chamber 48 .
- This increase in volume of the fluid chamber 48 can draw fluid into the fluid chamber from the socket through the one or more valve assemblies 34 .
- the housing 32 may be formed of metal such as stainless steel, carbon fiber, or plastic or any other material which would provide sufficient strength to resist deformation when pulled away from the membrane 36 .
- the pump mechanism 26 returns toward its original configuration (shown in FIG. 2 ) as the membrane 36 returns toward the bottom of the cavity and fluid within the fluid chamber 48 is expelled out of the one or more valve assemblies 34 .
- the membrane 36 can be elastomeric and can use at least in part its material properties to naturally or elastically return to its original position on the bottom of the cavity.
- the membrane 36 may have any desired shape, but is shown having a generally circular or elliptical shape.
- the membrane 36 can be operatively attached at or near its center point to the support member 28 while the outer radial edge portion of the membrane 36 is attached to the housing 32 such that when the housing 32 is pulled away from the membrane 36 a pocket forms in a middle area of the membrane 36 due to the deformation of the membrane 36 .
- the formation of the pocket increases the volume of the fluid chamber 48 .
- the pump mechanism 26 thus uses a compliant membrane to create suction.
- the connector 38 can be an insert having a lower radial flange 50 embedded in the membrane 36 and a shaft portion 52 extending between the lower flange 50 and support member 28 .
- the connector 38 may be of a two-piece construction such that the shaft portion 52 can be threadedly removed from the lower flange embedded in the membrane 36 .
- the connector 38 may be formed of metal, plastic, or any suitable other material.
- the lower flange may extend substantially into the membrane 36 or may be formed of a material that is part of the membrane 36 (e.g. a flexible metal member).
- the support member 28 can include a generally upright section 42 attached to the pylon 22 and a generally horizontal section 44 extending rearwardly from the section 42 and connected to the membrane 36 via the connector 38 .
- the sections 42 , 44 can extend at any suitable angle relative to the pylon 22 .
- the support member 28 can define an opening or slot for receiving the connector 38 .
- the shaft portion of the connector 38 can be received in the opening or slot such that the section 44 of the support member 28 is connected to the connector 38 .
- the connector 38 can be threadedly attached to the support member 28 .
- the connector 38 can be attached to the support 38 via a pin, nut, or other fastener.
- the movable member 30 can be secured to the pylon 22 at a location below the support member 28 and movable relative to the support member 28 .
- the movable member 30 can be a plate pivotally connected to the pylon 22 at a pivot point 54 .
- the movable member 30 can be a plate arranged to flexibly rotate relative to the support member 38 .
- the membrane 36 can rest within an opening 56 defined in the movable member 30 .
- the housing 32 can have a portion which extends beyond the membrane 36 to engage the bottom surface of the movable member 30 surrounding the opening 56 and allows the movable member 30 to pull the housing 32 away from the membrane 36 when flexed.
- a tensioning system 58 operatively connects the pump mechanism 26 to the prosthetic foot 4 .
- the tensioning system 58 can include a tensioning element 60 that is secured to and adjusted by a tensioning control mechanism 62 to adjust the length of the tensioning element 60 .
- the tensioning element 60 can be a cable, a lace, wire or any other suitable member and may refer to a relatively long and relatively thin shaped metals or polymers, which may be single strand or multi-strand, and which may include friction reducing coatings thereon.
- the tensioning element 60 translates action of the prosthetic foot 4 to the pump mechanism 26 .
- the tensioning control mechanism 62 can be a dial-tensioning control mechanism arranged for incremental and preselected adjustment in the tension of the tensioning element 60 .
- the tensioning control mechanism 62 is not limited to the example provided above but can include any system that permits adjusting tension in the tensioning element 60 .
- the tensioning control mechanism 62 also allows the tensioning element 60 to be fixed at a desired length.
- the dial-tensioning control mechanism 62 can be secured to the posterior surface of the proximal section 8 of the foot member 6 , with the tensioning element 60 extending from both the proximal and distal sides of the dial-tensioning control mechanism 62 . It should be noted that the ends of the tensioning element 60 can be retained within the dial-tensioning control mechanism 62 and the portion of the tensioning element 60 outside the dial-tensioning control mechanism 62 extends continuously between the connecting system 40 , the heel member 14 , and the dial-tensioning control mechanism 62 without interruption.
- the connecting system 40 of the pump system 2 can include at least one arm member 64 attached to the housing 32 .
- the arm member 64 can include a first portion extending rearwardly from the housing 32 and a second portion curving downwardly toward the heel member 14 .
- a first end of the tensioning element 60 is attached to the dial-tensioning control mechanism 62 .
- the tensioning element 60 extends through the connecting system 40 .
- the tensioning element 60 extends downwardly toward the heel member 14 .
- the tensioning element 60 then passes an anchor point 66 on the heel member 14 which in turn directs the tensioning element 60 back toward the dial-tensioning control mechanism 62 .
- a second end of the tensioning element 60 is attached to the dial-tensioning control mechanism 62 .
- the pump mechanism 26 When the prosthetic foot 4 is in the resting position (shown in FIG. 1 ), the pump mechanism 26 is in its original configuration. Upon heel strike, the prosthetic foot 4 moves into expansion, which, in turn, creates slack in the tensioning element 60 . With the prosthetic foot 4 in expansion, the pump mechanism 26 remains in its original configuration.
- the prosthetic foot 4 moves into compression.
- the proximal end of the foot member 6 moves away from the heel member 14 causing the tensioning element 60 to tighten and apply a downward or pulling force on the connecting system 40 of the pump system 2 as shown in FIG. 4 .
- the downward force on the connecting system 40 causes the housing 32 and the movable member 30 to pivot and/or flex away from the support member 28 .
- This moves the housing 32 away from the membrane 36 , moving the pump mechanism 26 to the expanded configuration.
- the support member 28 pulls the housing 32 away from the membrane 36 , increasing the volume of the fluid chamber 48 .
- a spring member may be serially connected to the tensioning element 60 which allows for movement without changing the stiffness of the prosthetic foot 4 too much. Further, the spring member can also reduce the likelihood of the tensioning element 60 pulling too hard on the pump mechanism 26 .
- This increase in volume of the fluid chamber 48 creates a vacuum in the pump mechanism 26 , pulling fluid into the pump mechanism 26 through the one or more valve assemblies 34 . Compression of the prosthetic foot thus automatically creates a vacuum in the pump mechanism 26 .
- the pump mechanism 26 does not need to be first compressed before it can create a vacuum upon decompression, the pump mechanism 26 can achieve smaller fluctuations in air pressure than the prior art devices, so the difference between the greatest pressure and lowest pressure in the vacuum space of the socket is less than compared to the prior art devices.
- the prosthetic foot 4 At the end of the stance phase or when the weight of the user is removed from the prosthetic foot 4 , the prosthetic foot 4 returns to its resting position and a biasing mechanism 68 extending between the pylon 22 and the connecting system 40 can help return the movable member 30 to its resting position, moving the pump mechanism 26 back toward its original configuration and decreasing the volume of the fluid chamber to a zero or near zero volume.
- the pump mechanism 26 expels fluid in the fluid chamber 48 out of the one or more valve assemblies 34 . Because of the pump mechanism 26 returns to its original configuration of zero or near-zero volume in the fluid chamber at the beginning or end of each gait cycle, substantially all fluid drawn into the pump mechanism 26 is automatically expelled. This is advantageous because prior art devices rely on complete compression of the pump in expelling air in each gait cycle to use the pump to its maximum capacity. It is difficult for complete compression to occur in every cycle using the gait of a user as the actuating force since the impact and displacement of the pump is not consistent and varies between users.
- the dial-tensioning control mechanism 62 may be rotated in a first direction to decrease the length of the tensioning element 60 and thereby increase the tension in the tensioning element 60 . To increase the length of the tensioning element 60 and thereby decrease the tension in the tensioning element 60 , the dial-tensioning control mechanism 62 may be rotated in a second direction.
- the sensitivity of the pump mechanism 26 can be varied. For instance, by increasing the tension in the tensioning element 60 , the level of pre-load applied to the housing 32 may be increased, increasing the sensitivity of the pump mechanism 26 to the action of the prosthetic foot 4 , It will be appreciated that the sensitivity of the pump mechanism 26 may be varied based on user activity level, weight, and/or other factors, advantageously providing greater control and versatility.
- FIGS. 5-8 show a prosthetic device or a vacuum suspension system 70 including a pump system 72 according to another embodiment.
- the vacuum suspension system 70 has a socket 76 , a liner 78 preferably including a seal component, and a prosthetic foot 74 .
- the socket 76 defines an interior space, and an interior wall delimiting the interior shape.
- the vacuum suspension system 70 includes an adapter system 80 for coupling the socket 76 to a prosthetic pylon, prosthetic foot, a rotation module, a shock module, or other suitable component.
- the vacuum suspension system 70 provides improved proprioception and volume control.
- the vacuum suspension system 70 includes a pump mechanism 82 , as discussed in earlier embodiments, which provides a vacuum assisted suspension by generating a negative pressure (vacuum) inside the socket 76 .
- the pump mechanism 82 can be attached directly to the socket 76 .
- An actuator comprising a cable member 104 extends between the pump mechanism 82 and a heel member of the prosthetic foot 74 . Because the pump mechanism 82 is located on the socket 76 , fluid drawn into the pump mechanism 82 from the socket 76 does not have to be drawn down to the prosthetic foot 74 , advantageously increasing efficiency and reducing the time required to produce an elevated vacuum in the socket 76 .
- the pump mechanism 82 includes a housing 84 containing two one-way valve assemblies 86 , 88 , a membrane 90 , and a connector 92 .
- the valve assembly 86 is arranged to only allow fluid to enter the pump mechanism 82 , which can be in fluid communication with the cavity of the socket 76 .
- the valve assembly 88 is arranged to only allow fluid to be expelled out of the pump mechanism 82 , preferably to atmosphere.
- the connector 92 is connected to the membrane 90 and includes an attachment portion 94 above the membrane 90 , and a shaft portion extending from the membrane 90 to the attachment portion.
- the housing 84 can include at least one fastener hole 96 arranged to receive at least one fastener for attaching the pump mechanism 82 to the socket 76 .
- FIGS. 7 and 8 show cross section views of the pump mechanism 82 . Similar to the pump mechanism 26 , the pump mechanism 82 relies upon deformation of the membrane 90 to move between an original configuration (shown in FIG. 7 ) in which the volume of a fluid chamber 98 defined between the top surface of the membrane 90 and the bottom of the housing 84 is zero or near-zero, and an expanded configuration (shown in FIG. 8 ) in which the volume of the fluid chamber 98 is increased.
- the membrane 90 can be positioned in a cavity of the housing 84 .
- the housing 84 surrounds the outer radial edge portion of the membrane 90 and creates a seal with the membrane 90 . For instance, the cavity is provided with an undercut circumferential groove 87 within which the outer radial edge of the membrane 90 is situated.
- the bottom surface of the cavity defines a pair of openings 102 which extend into the housing 84 to form internal passageways to provide fluid communication between the fluid chamber 98 and the two one-way valve assemblies 86 , 88 .
- the cable 104 is connected at a first end to the connector 92 and at a second end to anchor point 106 on the prosthetic foot 74 . Because only the cable 104 is attached to the prosthetic foot 74 , the likelihood of the pump system 82 undesirably impeding action of the prosthetic foot 74 is advantageously reduced. Further, the pump system 82 does not add additional volume to the prosthetic foot 74 and/or a foot cover.
- the cable 104 can include a core 108 slidably positioned within a tubular casing or sheath 110 .
- the sheath 110 is arranged to provide axial stiffness to the core 108 such that a force on the second end of the cable 104 forces the core 108 upward or downward relative to the sheath 110 , moving the pump mechanism 82 between the original configuration and the expanded configuration.
- the cable 104 can be wrapped around the adaptor system 80 and/or another component extending between the socket 76 and the adaptor system 80 .
- the function of the vacuum suspension system 70 can be fully automatic.
- compression of the prosthetic foot 74 causes the cable 104 to pull the membrane 90 away from the housing 84 , which, in turn, expands the pump mechanism 82 to efficiently draw fluid out of the socket 76 .
- decompression of the prosthetic foot 74 permits the pump mechanism 82 to return to its original position, expelling the fluid drawn from the socket 76 to atmosphere.
- the pump mechanism 82 thus can create a negative pressure inside the socket 76 , resulting in a secure and reliable elevated vacuum suspension that provides an intimate suspension as the negative pressure formed inside of the socket 76 holds the liner and the residuum firmly to the socket wall.
- FIGS. 9-12 show a prosthetic device or a vacuum suspension system 110 including a pump system 112 according to another embodiment.
- the vacuum suspension system 110 has a socket 114 , a valve 116 , and a tube 118 connecting a pump mechanism 126 of the pump system 112 to the socket 114 , and a prosthetic foot 120 .
- the vacuum suspension system 110 includes an adaptor system 124 for coupling the socket 114 to a prosthetic pylon 122 attached to the prosthetic foot 120 .
- the vacuum suspension system 110 includes the pump system 112 , as discussed in earlier embodiments, which provides a vacuum suspension by generating a vacuum inside the socket 114 .
- the pump system 112 can comprise a prosthetic connector adapted to form at least part of a load bearing connection between the foot 120 and the socket 114 .
- the prosthetic connector can connect the socket 114 to the pylon 122 , which is attached to the foot 120 .
- the pump system 112 can help support loads exerted on the socket 114 and transfer such loads to the ground or other underlying surface via the pylon 122 and the foot 120 .
- the pump system 112 can easily retrofit on existing prosthetic devices and can be formed for right and left prosthetic devices.
- the pump system 112 can easily retrofit on an existing prosthetic device by selecting a pylon compatible with the pump system 112 .
- the pump system 112 can be substantially in axial alignment with the pylon 122 .
- the pump mechanism 126 of the pump system 112 can be located at or near the socket 114 , fluid drawn from the socket 114 by the pump mechanism 126 does not have to be moved down to the foot 122 . This has the effect of reducing the time required to generate an elevated vacuum in the socket 114 . This also reduces the length of the tube 118 , reducing the likelihood of leaks in the pump system 112 . It further helps reduce the overall volume of the pump system 112 .
- the pump mechanism 126 can be integrated into the attachment between the prosthetic foot 120 and another component. In other embodiments, the pump mechanism 126 can be integrated into a prosthetic pylon 122 .
- the pump system 112 includes an upper section 130 , a lower section 132 , and a pump mechanism 126 .
- the upper section 130 and the lower section 132 are arranged to move in an axial direction relative to one another.
- the upper section 130 can define an adaptor 134 having a female configuration arranged to receive a male adaptor, a tube, or other component.
- the lower section 132 can define an adaptor 136 having a similar configuration.
- the adaptors 134 , 136 can be male adaptors or other type of connectors.
- the upper section 130 defines a cavity 138 having a peripheral internal cavity wall 140 extending between a bottom opening 142 at or near the bottom of the upper section 130 and a closed end 144 (shown in FIG. 11 ).
- the cavity 138 is shown having a generally cylindrical shape but can have any suitable shape.
- a pin member 146 protrudes downward from the upper wall 144 of the cavity 138 .
- the pin member 146 can have a hollow configuration defining an internal channel extending through the pin member 146 .
- the upper section 130 includes valve assemblies 160 , 162 .
- the valve assembly 160 is arranged to only allow fluid to enter the pump mechanism 126 and can be connected to the tube 118 .
- the valve assembly 162 is arranged to only allow fluid to be expelled out of the pump mechanism 126 , preferably to atmosphere.
- An internal passageway 152 is arranged to provide fluid communication between the valve assemblies 160 , 162 and the pin member 146 .
- a lower end section of the pin member 146 can define one or more perforations providing fluid communication between the internal passageway 152 and a fluid chamber defined below.
- the lower section 132 is sized and configured to fit into the cavity 138 of the upper section 130 via the bottom opening 142 .
- the lower section 132 defines a cavity 154 to accommodate a membrane described below.
- the pump mechanism 126 includes a housing 148 and a membrane 152 .
- the housing 148 defines a through opening 150 arranged to allow the pin member 146 to slidably pass therethrough.
- the housing 148 can have a rigid configuration.
- the membrane 152 is positioned below the housing 148 .
- the cavity 154 can be dimensioned to allow a center portion of the membrane 152 to move in a downward direction within the lower section 132 when the membrane 152 is pushed downward by the pin member 146 as described below.
- An outer radial edge of the membrane 152 can be attached to the housing 148 such that a seal is formed between the membrane 152 and the housing 148 .
- an adhesive can be applied between the housing 148 and the outer radial edge of the membrane 152 , increasing the sealing effect.
- the fluid passageway 152 can be in fluid communication with a fluid chamber 158 defined between the upper surface of the membrane 152 and the bottom of the housing 148 .
- the pump mechanism 126 relies upon deformation of the membrane 152 to move between an original configuration (shown in FIG. 11 ) in which the volume of the fluid chamber 158 is zero or near-zero, and an expanded configuration (shown in FIG. 12 ) in which the volume of the fluid chamber 158 is increased.
- the pump mechanism 126 moves toward the expanded configuration (shown in FIG. 12 ). More particularly, the upper section 130 and the lower section 132 move toward one another, which, in turn, causes the pin member 146 to push the center portion of the membrane 152 away from the bottom of the housing 148 , increasing the volume of the fluid chamber 158 . This increase in volume of the fluid chamber 158 creates a vacuum in the pump mechanism 126 , pulling fluid into the pump mechanism 126 through the inlet valve assembly 160 . Weight bearing on the prosthetic connector thus automatically creates a vacuum in the pump mechanism 126 .
- the pump mechanism 136 After weight bearing (e.g., in swing phase), the pump mechanism 136 returns toward the original configuration (shown in FIG. 11 ) as the upper and lower sections 130 , 132 move away from one another. This moves the pin member 146 away from the membrane 152 , allowing the membrane 152 to return toward the bottom of the housing 148 and to expel fluid within the fluid chamber 158 out of the valve assembly 162 .
- the pin member 146 can be attached to the membrane 152 such that it can pull the membrane 152 back to its original position after weight bearing.
- the membrane 152 can be elastomeric and can use at least in part its material properties to naturally or elastically return to the its original position on the bottom of the housing 148 .
- the membrane 152 can have any desired shape.
- the weight of the prosthesis or foot 120 below the pump mechanism 126 can help move the pump mechanism 126 toward the original configuration.
- the pump mechanism 126 can include a biasing mechanism 164 arranged to bias the pump mechanism 126 toward the original configuration.
- the biasing mechanism 164 can comprise a ring member having a compressible configuration situated in the cavity 138 .
- the biasing mechanism 164 can be resilient such as an elastomeric material and/or any other material that deforms under a load and returns to its original form or position when the load is released.
- the biasing mechanism 164 can compress between the housing 148 and the upper section 130 . After weight bearing, the biasing mechanism 164 can decompress and stored energy in the biasing mechanism 164 can drive the pump mechanism 126 toward the original configuration.
- the pump mechanism 126 can thus generate a vacuum in the socket 114 during stance without undesirably affecting the functionality of the prosthetic foot 120 or significantly increasing the bulk of the prosthetic device.
- the pump mechanism 126 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle.
- the pump system 112 can include at least one sensor 129 including, but not limited to, one or more Hall Effect sensors, linear variable displacement transducers, differential variable reluctance transducers, or reed switches.
- the at least one sensor 129 can be incorporated in the upper section 130 and/or the lower section 132 and arranged to measure one or more relationships between the two components.
- the at least one sensor 129 can be used to measure force or positional changes between the upper and lower sections 130 , 132 .
- a Hall Effect sensor can be used to monitor angular changes between the upper and lower sections 130 , 132 .
- the output from the at least one sensor 129 can be used to regulate pressure in the socket 114 .
- the output from the at least one sensor 129 can be used for general sensory feedback information on gait and performance characteristics.
- FIGS. 13-15 illustrate a pump system 163 according to another embodiment that can be integrated in the adaptor system of a prosthetic device.
- the pump system 163 can comprise a prosthetic connector adapted to form a connection between a prosthetic foot and a socket.
- the pump system 163 can include a pump mechanism 164 , an upper section 172 , and a lower section 174 . At least one of the upper and lower sections 172 , 174 is movable axially relative to the other.
- the upper section 172 can include an adaptor 176 and the lower section 174 can include an adaptor 178 .
- the adaptors 176 , 178 are shown as female adaptors but can be male adaptors or other types of connectors.
- the pump mechanism 164 includes a housing 166 , a membrane 168 , and a connector 170 . It will be appreciated that the pump mechanism 164 may include one or more valve assemblies similar to the other embodiments arranged to control movement of fluid into and from the pump mechanism 126 .
- the housing 166 can be located in the upper section 172 .
- the housing 166 defines a cavity 180 provided with an undercut circumferential groove 182 between an open end of the cavity 182 and a closed end 184 of the cavity 180 .
- An outer radial edge portion of the membrane 168 can be situated in the circumferential groove 182 such that a seal is formed between the membrane 168 and the housing 166 .
- the closed end 184 of the cavity 180 can define one or more openings which extend into the housing 166 to form internal passageways providing fluid communication between a fluid chamber defined below and one or more valve assemblies.
- the pump mechanism 164 is movable between an original configuration ( FIG. 14 ) in which the volume of a fluid chamber 186 defined between the bottom surface of the membrane 168 and the closed end 184 of the cavity 180 is zero or near-zero, and an expanded configuration (shown in FIG. 15 ) in which the volume of the fluid chamber 186 is increased.
- the bottom 184 of the cavity 180 substantially complements the bottom surface of the membrane 168 such that when no force is exerted on the pump mechanism 164 it is in the original position.
- the lower section 174 includes a base 188 and arms 190 on each side of the base 188 that extend upwardly from the base 188 .
- a cross member 192 is formed between the arms 190 .
- the cross member 192 extends through an open space 194 formed of the upper section 174 over the housing 166 .
- a resilient element 196 connects the upper section 172 to the lower section 174 .
- the resilient element 196 can be a spring member.
- the spring member can have a folded structure.
- the membrane 168 may have any desired shape, but is shown having a generally circular or elliptical shape.
- the membrane 168 can be operatively attached at or near its center point to the cross member 192 of the lower section 174 while the outer radial edge portion of the membrane 168 is attached to the upper section 172 such that when the membrane 168 is pulled away from the upper section 172 a pocket forms in a middle area of the membrane 168 due to the deformation of the membrane 168 .
- the formation of the pocket increases the volume of the fluid chamber 186 .
- the upper section 172 moves downward relative to the lower section 174 as shown in FIG. 15 .
- the cross member 192 pulls the membrane 168 away from the closed end 184 of the cavity 180 to deform the membrane 168 between the cross member 192 and the upper section 172 , increasing the volume of the fluid chamber 186 .
- the pump mechanism 164 After weight bearing or when the load is removed (e.g., in swing phase), the pump mechanism 164 returns toward the original configuration as the upper section 172 moves upward relative to the lower section 174 as shown in FIG. 14 . This allows the membrane 168 to return toward the bottom 184 of the cavity 180 , expelling fluid within the fluid chamber 186 out of the fluid chamber 186 .
- the resilient element 196 can be a biasing mechanism arranged to bias the pump mechanism 164 toward the original configuration. During weight bearing, the resilient element 196 can compress between the upper section 172 and the lower section 174 . After weight bearing, the resilient element 196 can decompress and stored energy in the biasing mechanism 196 can drive the pump mechanism 164 toward the original configuration.
- the connector 170 can include a lower radial flange 198 embedded in the membrane 168 , an upper radial flange 202 above the membrane 168 and attached to the cross member 192 , and a shaft portion 204 extending between the lower flange 198 and the upper flange 202 .
- the connector 170 may be of a two-piece construction such that the upper flange 202 can be threadedly removed from the lower flange 198 embedded in the membrane 168 .
- the cross member 192 can define an opening for attaching the connector 170 to the cross member 192 .
- the pump mechanism 164 can thus generate a vacuum in a socket during stance without significantly increasing the bulk of the prosthetic device. It can also provide a dampening or shock absorbing effect to the prosthetic device.
- FIGS. 16-18 illustrate a pump system 205 according to another embodiment that can be integrated in an adaptor system of a prosthetic device.
- the pump system 205 can comprise a prosthetic connector.
- the pump system 205 includes a pump mechanism 206 , an upper section 218 , and a lower section 220 . At least one of the upper and lower sections 218 , 220 is arranged to move axially relative to the other.
- the upper section 218 can include an adaptor 222 and the lower section 220 can include an adaptor 224 .
- the adaptors 222 , 224 are shown as female adaptors but can be male adaptors or other types of prosthetic connector.
- the upper section 218 can be connected to the lower section 220 via a resilient element comprising a flexible enclosure 226 .
- the flexible enclosure 226 includes a generally horizontal top 226 A attached to the upper section 218 and a generally horizontal bottom 226 B attached to the lower section 220 .
- the top and bottom 226 A, 226 B are connected together by convex side 226 C, 226 D.
- the top 226 A, bottom 226 B, and sides 226 C, 226 D collectively define an inner space 227 of the flexible enclosure 226 .
- the flexible enclosure 226 can be made of a durable but flexible material such as carbon fiber cloth, unidirectional composites, plastic, and/or metal.
- the configuration of the flexible enclosure 226 can be adjusted based on the weight of the user and/or other factors.
- the flexible enclosure 226 can be formed of a single part, two parts, three parts, or any other suitable number of parts.
- the pump mechanism 206 can include a housing 208 , a membrane 210 , and one or more valve assemblies arranged to allow fluid to enter and exit the pump mechanism 206 .
- the pump mechanism 206 can be situated within the inner space 227 of the flexible enclosure 226 .
- the flexible enclosure 226 can be attached to the housing 208 via a first connector 228 extending between the housing 208 and the side 226 C of the flexible enclosure 226 .
- the flexible enclosure 226 can be attached to a center portion of the membrane 210 via a second connector 230 extending between the membrane 210 and the side 226 D of the flexible enclosure 226 .
- FIGS. 17 and 18 show cross section views of the pump mechanism 206 .
- the pump mechanism 206 relies upon deformation of the membrane 210 to move between an original configuration (shown in FIG. 17 ) in which the volume of a fluid chamber 228 defined between the housing 208 and the membrane 210 is zero or near-zero, and an expanded configuration (shown in FIG. 18 ) in which the volume of the fluid chamber 228 is increased.
- the membrane 210 can be positioned in a cavity 212 of the housing 208 .
- the housing 208 surrounds the outer radial edge portion of the membrane 210 and creates a seal with the membrane 210 .
- the bottom of the cavity 212 can define one or more openings to form internal passageways to provide fluid communication between the fluid chamber 228 and the one or more valve assemblies.
- the pump mechanism 206 moves toward the expanded configuration (shown in FIG. 18 ). More particularly, the upper section 218 and the lower section 220 move toward one another, which, in turn, causes the flexible enclosure 226 to compress between the upper and lower sections 218 , 220 .
- the sides 226 C, 226 D of the flexible enclosure 226 bow out or are forced apart, which in turn, causes at least the second connector 230 to pull the membrane 210 away from the bottom of the cavity 212 , increasing the volume of the fluid chamber 228 .
- the pump mechanism 206 can return toward the original configuration (shown in FIG. 17 ).
- Stored energy in the flexible enclosure 226 forces the upper and lower sections 218 , 220 away from one another. This moves the first and second sides 226 A, 226 B back toward one another, forcing the membrane 210 toward the bottom of the cavity 212 and expel fluid within the fluid chamber 238 out of the pump mechanism 206 .
- the flexible enclosure 226 can both move the pump mechanism 206 between the original and expanded configurations when loaded, and bias the pump mechanism 206 from the expanded configuration toward the original configuration.
- the pump system 205 can thus generate a vacuum in a socket in response to a load on the socket or pylon without undesirably affecting the functionality of a prosthetic foot or significantly increasing the bulk of the prosthetic device.
- FIG. 19 illustrates a pump system 240 according to another embodiment. It will be similar that the pump system 240 is similar in structure and function to the pump system 205 except that the flexible enclosure has a different shape.
- the pump system 240 includes a pump mechanism 242 , an upper section 244 , and a lower section 246 .
- the upper section 244 and lower section 246 are connected to one another via a resilient element comprising a flexible enclosure 248 .
- the flexible enclosure 248 includes a first part 250 and a second part 252 spaced from the first part 250 .
- Each of the first and second parts 250 , 252 includes a top 254 attached to the upper section 244 , a bottom 256 attached to the lower section 246 , and a convex intermediate segment 258 extending between the top 254 and the bottom 256 .
- the top 254 extends radially inward from an outer edge of the upper section 244 to where it connects with the intermediate segment 258 near a middle of the upper section 244 .
- the bottom 256 also extends radially inward from an outer edge of the lower section 246 to where it connects with the intermediate segment 258 near a middle of the lower section 246 .
- the upper and lower sections 244 , 246 move toward one another, which, in turn, causes the flexible enclosure 248 to compress.
- the intermediate segments 258 of the first and second parts 250 , 252 bow out or are forced apart, which, in turn, moves the pump mechanism 242 toward the expanded configuration.
- stored energy in the flexible enclosure 248 forces the upper and lower sections 244 , 246 away from one another. This moves the intermediate segments 258 back toward one another, returning the pump mechanism 242 toward the original configuration.
- FIGS. 20 and 21 illustrate a pump system 260 according to another embodiment that can be integrated in an adaptor system of a prosthetic device.
- the pump system 260 can comprise a prosthetic connector.
- the pump system 260 includes a pump mechanism 262 , an upper section 264 , and a lower section 266 . At least one of the upper and lower sections 264 , 266 is arranged to move axially relative to the other.
- the upper section 264 has a female configuration and the lower section 266 has a male configuration arranged to fit in the upper section 264 .
- the upper section 264 can include an adaptor 268 and the lower section 266 can include an adaptor 270 .
- the adaptors 268 , 270 are shown as male adaptors but can be female adaptors or any other type of connector.
- the lower section 266 defines a cavity 272 having a peripheral internal cavity wall 274 extending between a top opening at or near the top of the lower section 266 and a closed end 276 .
- the cavity 272 is shown having a generally cylindrical shape but can have any suitable shape.
- a channel 278 extends through the lower section 266 and traverses the cavity 272 .
- the upper section 264 defines a cavity 280 having a peripheral internal cavity wall 282 extending between a bottom opening 284 at or near the bottom of the upper section 264 and a closed end 286 .
- the lower section 266 is sized and configured to be received in the cavity 280 of the upper section 264 .
- the upper section 264 includes a cross member 288 extending through the channel 278 of the lower section 266 .
- the cross member 288 can be a pin member.
- the cross member 288 can extend in a generally horizontal direction.
- the channel 278 and the cross member 288 can be sized and configured such that the cross member 288 can move up and down within the channel 278 but also holds the upper section 264 on the lower section 266 .
- the range of axial movement between the upper and lower sections 264 , 266 can be limited by a height of the channel 278 and/or the cross member 288 .
- the pump mechanism 262 is positioned on the top of the lower section 266 within the cavity 280 of the upper section 264 .
- the pump mechanism 262 includes a housing 290 , a membrane 292 , and a connector 294 .
- the pump mechanism 262 may include one or more valve assemblies 296 arranged to control movement into and from the pump mechanism 262 .
- a fluid passageway 298 is defined in the adaptor 268 of the upper section 264 that is fluid communication with the pump mechanism 262 . This facilitates fluid entering and exiting the pump mechanism 262 to pass through the adaptor 268 .
- the housing 290 defines a cavity 302 provided with an undercut circumferential groove 304 between an open end of the cavity 302 and a closed end 306 of the cavity 302 .
- An outer radial edge portion of the membrane 292 can be situated in the circumferential groove 304 such that a seal is formed between the membrane 292 and the housing 290 .
- a center portion of the membrane 292 can be attached to the cross member 288 of the upper section 264 .
- the connector 294 can attach the center portion of the membrane 292 to the cross member 288 .
- the closed end 306 of the cavity 302 can define one or more openings which extend into the housing 290 to form internal passageways providing fluid communication between the one or more valve assemblies 296 and a fluid chamber defined below.
- the pump mechanism 262 is movable between an original configuration ( FIG. 20 ) in which the volume of a fluid chamber 308 defined between the top of the membrane 292 and the closed end 306 of the cavity 302 is zero or near-zero, and an expanded configuration (shown in FIG. 21 ) in which the volume of the fluid chamber 308 is increased.
- the upper section 264 moves downward relative to the lower section 266 as shown in FIG. 21 .
- the cross member 288 of the upper section 264 moves downward within the channel 278 and pulls the center portion of the membrane 282 away from the closed end 306 of the cavity 302 to deform the membrane 282 , increasing the volume of the fluid chamber 308 .
- the pump mechanism 262 can return toward the original configuration as the upper section 264 and cross member 288 move upward relative to the lower section 266 as shown in FIG. 20 . This allows the membrane 292 to return towards the closed end 306 of the cavity 302 , expelling fluid within the fluid chamber 308 .
- the pump system 260 can include a biasing mechanism 310 arranged to bias the pump mechanism 262 toward the original configuration.
- the biasing mechanism 310 can comprise a spring member disposed between the closed end 276 of the lower section 266 and the cross member 288 of the upper section 264 .
- the spring member can be positioned on a stem portion extending downwardly from the cross member 288 .
- the biasing mechanism 310 can compress between the closed end 276 of the lower section 266 and the cross member 288 of the upper section 264 .
- the biasing mechanism 310 can decompress and stored energy in the biasing mechanism 310 can drive the pump mechanism 260 toward the original configuration.
- the housing 290 can be threadedly attached to the lower section 266 .
- the housing 290 can define a plurality of external threads arranged to mesh with a plurality of internal threads defined by the lower section 266 .
- the adaptor portion 268 can be threadedly attached to the upper section 264 and the adaptor portion 270 can be threadedly attached to the lower portion 266 .
- FIGS. 22-24 illustrate a pump system 312 according to another embodiment that can be integrated in an adaptor system of a prosthetic device.
- the pump system 312 can comprise a prosthetic connector.
- the pump system 312 includes a pump mechanism 314 , an upper section 316 , and a lower section 318 . At least one of the upper and lower sections 316 , 318 is arranged to move relative to the other.
- the upper section 316 includes an adaptor 320 and the lower section 318 includes an adaptor 322 .
- the adaptors 320 , 322 are shown as female adaptors but can be male adaptors or any other suitable connectors.
- a resilient element 324 connects the upper section 316 and the lower section 318 .
- the resilient element 324 can be any suitable member but is shown as a blade having a semicircular configuration with an upper arm 326 attached to the upper section 316 and a lower arm 328 attached to the lower section 318 .
- the pump mechanism 314 is positioned between the upper and lower sections 316 , 318 .
- the pump mechanism 314 includes a housing 330 and a membrane 332 .
- the pump mechanism 314 may include one or more valve assemblies 334 arranged to control movement of fluid into and from the pump mechanism 314 .
- the housing 330 defines an internal passageway 336 providing fluid communication between the one or more valve assemblies 334 .
- An outer edge portion of the membrane 332 is attached to the housing 330 such that a seal is formed between the membrane 332 and the housing 330 .
- a center portion of the membrane 332 can be attached to the upper arm 326 of the resilient element 324 .
- the pump mechanism 314 is movable between an original configuration (shown in FIG. 23 ) in which the volume of a fluid chamber 338 defined between the bottom of the membrane 332 and the housing 330 is zero or near-zero, and an expanded configuration (shown in FIG. 24 ) in which the volume of the fluid chamber 338 is increased.
- the pump mechanism 314 moves toward the expanded configuration. More particularly, the upper arm 326 of the resilient element 324 pulls the center portion of the membrane 332 away from the housing 330 , increasing the volume of the fluid chamber 338 . This increase in volume of the fluid chamber 338 creates a vacuum in the pump mechanism 314 , pulling fluid into pump mechanism 314 through the one or more valve assemblies 334 .
- the pump mechanism 314 moves toward the original configuration. More particular, the resilient element 324 forces the pump mechanism 314 toward the original configuration and decreases the volume of the fluid chamber 338 . During the return of the membrane 332 toward the housing 330 , the pump mechanism 314 expels fluid in the fluid chamber 338 out of the one or more valve assemblies 334 .
- FIGS. 25 and 26 illustrate a pump system 340 according to another embodiment that can be integrated in an adaptor system of a prosthetic device.
- the pump system 340 can comprise a prosthetic connector.
- the pump system 340 includes a pump mechanism 342 , an upper section 344 , and a lower section 346 .
- the upper section 344 is arranged to move axially relative to the pump mechanism 342 and the lower section 346 .
- the upper section 344 includes an adaptor 348 and the lower section 346 includes an adaptor 350 .
- the adaptors 348 , 350 are shown as male adaptors but can be female adaptors or any other suitable connectors.
- the upper section 344 includes a pin member 352 extending in a downward direction and a through-hole 360 .
- a horizontal member 361 attached to the lower section 346 and protrudes through the through-hole 360 of the upper section 344 to help maintain the upper section 344 on the lower section 346 .
- the through-hole 360 and the horizontal member 361 can be sized and configured such that the horizontal member 361 can move up and down within the through-hole 360 .
- the pump mechanism 342 is attached to an upper surface of the lower section 346 and positioned within an open cavity 354 defined by the upper section 344 .
- the pump mechanism 342 includes a housing 356 and a membrane 358 .
- the pump mechanism 342 may include one or more valve assemblies similar to the other embodiments arranged to control movement of fluid into and from the pump mechanism 342 .
- the housing 356 can define passageways providing fluid communication between the one or more valve assemblies.
- the housing 356 can define an internal chamber 362 and through opening 364 arranged to allow the pin member 352 to pass therethrough.
- the membrane 358 is disposed in the internal chamber 362 .
- An outer edge of the membrane 358 of the membrane 358 is attached to the upper internal wall of the internal chamber 362 .
- a center portion of the membrane 358 can be attached to the pin member 352 .
- the pump mechanism 342 is movable between an original configuration (shown in FIG. 25 ) in which the volume of a fluid chamber 366 defined between the top of the membrane 358 and the housing 356 is zero or near-zero, and an expanded configuration (shown in FIG. 26 ) in which the volume of the fluid chamber 366 is increased.
- the upper section 344 moves downward relative to the lower section 346 , which, in turn, causes the pin member 352 to push the center portion of the membrane 358 away from the upper internal wall of the internal chamber 362 , increasing the volume of the fluid chamber 366 .
- This increase in volume of the fluid chamber 366 creates a vacuum in the pump mechanism 342 , pulling fluid into the pump mechanism 342 .
- Weight bearing on a prosthetic device thus automatically creates a vacuum in the pump mechanism 342 .
- the pump mechanism 342 After weight bearing, the pump mechanism 342 returns toward the original configuration as the upper section 344 moves upward relative to the lower section 346 . This moves the pin member 352 in the upward direction, pulling the membrane 358 toward the upper internal wall of the internal chamber 362 and expelling fluid within the fluid chamber 366 out of the pump assembly 342 .
- the pump system 340 can include a biasing mechanism 368 arranged to bias the pump mechanism 342 toward the original configuration.
- the biasing mechanism 368 can comprise a spring member positioned between the bottom of the membrane 358 and the bottom of the internal chamber 362 .
- the biasing mechanism 368 can compress between the membrane 358 and the bottom of the housing 356 .
- the biasing mechanism 368 can decompress and stored energy in the biasing mechanism 368 can drive the pump mechanism 342 toward the original configuration.
- the pump mechanism 342 can thus generate a vacuum in a socket during stance without undesirably affecting the functionality of the prosthetic foot or significantly increasing the bulk of the prosthetic device.
- the pump mechanism 342 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle.
- FIGS. 27 and 28 show a vacuum suspension system 375 comprising a pump system 370 and a foot cover 372 according to another embodiment.
- the pump system 370 can include a pump mechanism 374 (shown in FIG. 28 ) disposed in a heel portion 376 of the foot cover 372 and a tube system 378 integrated with the foot cover 372 .
- the tube system 378 is in fluid communication with the pump mechanism 374 and a socket.
- the tube system 378 can extend from the heel portion 376 and through a hole 380 formed in a top portion of the foot cover 372 defining a foot opening of the foot cover 372 .
- FIG. 28 is a cross section view of the vacuum suspension system 375 .
- the pump system 370 can be similar to the pump system 340 except the upper and lower sections 382 , 384 do not include adaptors.
- the pump mechanism 374 utilizes the space within the body of the foot cover 372 such that it does not add any additional volume to the prosthetic device or the foot cover 372 .
- the pump mechanism 374 can easily retrofit to existing foot covers and can be formed to be used with right or left foot covers.
- the pump system 370 is formed within a thickness of the foot cover 372 , it reduces the likelihood of the pump system 370 undesirably affecting the functionality of a prosthetic foot, providing a more natural gait.
- the pump mechanism 374 can be in fluid communication with one or more valve assemblies 385 associated with the tube system 378 . Similar to the other embodiments, the one or more valve assemblies 385 are arranged to control fluid flow into and out of the pump mechanism 374 .
- the pump mechanism 374 is movable between an original configuration in which the volume of a fluid chamber 386 defined between a membrane 388 and a housing 390 is zero or near-zero, and an expanded configuration in which the volume of the fluid chamber 386 is increased.
- the upper section 382 moves downward relative to the lower section 384 , which, in turn, causes a pin member 392 to push the center portion of the membrane 388 away from the housing 390 , increasing the volume of the fluid chamber 386 .
- This increase in volume of the fluid chamber 386 creates a vacuum in the pump mechanism 374 , pulling fluid into the pump mechanism 374 .
- Weight bearing during gait thus automatically creates a vacuum in the pump mechanism 374 .
- the pump mechanism 374 After weight bearing, the pump mechanism 374 returns toward the original configuration as the upper section 382 moves upward relative to the lower section 384 . This moves the pin member 392 in the upward direction, pulling the membrane 388 toward the upper wall of the housing 290 and expelling fluid within the fluid chamber 386 out of the pump assembly 374 .
- the pump system 370 can include a biasing mechanism 394 arranged to bias the pump mechanism 374 toward the original configuration.
- the prosthetic device thus automatically creates a vacuum in the pump mechanism 374 during stance and automatically expels fluid to atmosphere during the swing phase.
- FIG. 29 shows a vacuum suspension system 395 comprising a pump system 396 , a prosthetic foot 398 , and a foot cover 402 according to another embodiment.
- the prosthetic foot 398 has an upper foot member 404 and a lower foot member 406 , which is disposed generally below the upper foot member 404 .
- the prosthetic foot 398 can have a heel member 408 that extends rearwardly to a free end and is disposed below at least a portion of the lower foot member 406 .
- the prosthetic foot 398 may be insertable into the foot cover 402 as seen. In use, the prosthetic foot 398 can expand and compress.
- the pump system 396 includes a pump mechanism 410 that is operable between the heel member 408 and a support member 412 coupled to the foot cover 402 .
- the pump mechanism 410 can be positioned in the space between the heel member 408 and the bottom surface of the lower foot member 406 , making it unlikely that the pump mechanism 410 will negatively affect the functionality of the prosthetic foot 398 . Further, the pump mechanism 410 can be formed to be used with both left and right prosthetic feet.
- the pump mechanism 410 includes a housing 414 containing two one-way valve assemblies 416 , 418 , a membrane, and a connector.
- the valve assembly 416 only allows fluid to enter the pump mechanism 410 which can be in fluid communication with the cavity of a socket.
- the valve assembly 418 only allows fluid to be expelled out of the pump mechanism 410 , preferably to atmosphere.
- the connector can be attached to the membrane and the heel member and can exhibit any suitable configuration. For instance, the connector may be a single fastener or screw, allowing the pump mechanism 410 to easily retrofit on a prosthetic foot.
- the housing 414 can be attached to the support member 412 .
- the pump mechanism 410 relies upon deformation of the membrane to move between an original configuration in which the volume of a fluid chamber defined between an upper surface of the membrane and the bottom of the housing 414 is zero or near-zero, and an expanded configuration in which the volume of the fluid chamber is increased.
- the housing 414 is arranged to surround the outer radial edge portion of the membrane and creates a seal with the membrane.
- the bottom of the housing 414 defines a pair of openings which extend into the housing 414 to form internal passageways to provide fluid communication between the fluid chamber and the two one-way valve assemblies 416 , 418 .
- the support member 412 can be coupled to the foot cover 402 .
- the support member 412 can be any suitable member but is shown as a metal rod having a cross member 420 extending in a transverse direction across the foot cover 402 above the heel member 408 and side members 422 extending downwardly along the sides of the foot cover 402 toward the ground.
- the foot cover 402 can include one or more reinforcements where the side members 422 extend along the sides of the foot cover 402 .
- the outer surface of the foot cover 402 can define slots 424 to receive the side members 422 of the support member 412 , helping to maintain the position of the support member 412 on the foot cover 402 . This also lowers the profile of the support member 412 , reducing the likelihood of the support member 412 interfering with footwear.
- the support member 412 can be pivotally connected to the housing 414 .
- the cross member 420 of the support member 412 can extend through a channel or hole 426 defined by the housing 414 such that the housing 414 is pivotally connected to the support member 412 .
- the prosthetic foot 398 moves into expansion, which, in turn, causes the heel member 408 and the cross member 420 of the support member 412 to move apart. This separation causes the housing 414 to pivot around the cross member 420 , which, in turn, rotates the housing 414 away from the heel member 408 .
- the heel member 408 pulls the membrane away from the housing 414 , increasing the volume of the fluid chamber. This increase in volume of the fluid chamber creates a vacuum in the pump mechanism 410 , pulling fluid into the pump mechanism 410 through the valve assembly 104 . Expansion of the prosthetic foot thus automatically creates a vacuum in the pump mechanism 410 .
- the prosthetic foot 398 moves into compression.
- the heel member 408 and the cross member 420 of the support member 412 move toward one another, which, in turn, forces the pump mechanism 410 back toward its original configuration and decreases the volume of the fluid chamber to a zero or near-zero volume.
- the pump mechanism 410 expels fluid in the fluid chamber out of the valve assembly 424 . Because the pump mechanism 410 returns to its original configuration of zero or near-zero volume in the fluid chamber at mid-stance and/or toe-off, all fluid drawn into the pump mechanism 410 can be automatically expelled rather than relying on complete compression cycle of the pump to expel air drawn in from the socket as in the prior art.
- the pump system 396 can include a biasing mechanism 428 arranged to help the pump mechanism 410 return to its configuration.
- a biasing mechanism 428 arranged to help the pump mechanism 410 return to its configuration.
- at least one band member having an elastomeric configuration can extend around the heel member 408 and the housing 414 , biasing the housing 414 toward the heel member 408 and/or biasing the support member 412 and the foot cover 402 together.
- valve assemblies are described being attached to the housing, in other embodiments, one or more of the valve assemblies can be in fluid communication with the pump mechanism via a tubular fluid conduit.
- the housing can be made of any suitable material such as carbon fiber cloth, unidirectional composites, plastic, or metal.
- embodiments of the pump system described herein can include at least one sensor (e.g., a Hall Effect Sensor or gap-sensor) arranged to measure one or more relationships such as displacement or force between two components of the pump system.
- the at least one sensor can be incorporated in the upper section 268 and/or the lower section 270 of the pump system 260 .
- Output from the at least one sensor can be used to regulate pressure in a socket, for general sensory feedback information on gait and performance characteristics, or for another suitable purpose.
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Abstract
Description
- The disclosure relates to the field of prosthetic devices, and more particularly to a prosthetic device, system and pump mechanism for increasing vacuum in a vacuum assisted suspension system.
- An ongoing challenge in the development of prosthetic devices is the attachment of the prosthetic device to the residual limb of a user. For prosthetic legs, it is often difficult to securely attach the prosthetic leg to the residual leg without exerting too much or uneven pressure on the residual limb. On the one hand, the lack of a secure attachment can adversely affect the user's ability to walk. On the other hand, an improper fit can cause sores, swelling and pain for the user.
- One approach for overcoming this challenge has been the application of a negative pressure vacuum in a space between the limb (or a liner donned on the limb) and a socket or receptacle coupled to the prosthetic limb. Two conventional ways to apply such a vacuum are by a mechanical pump or an electronic pump.
- Mechanical pumps are often in-line systems that utilize the movement of the user to generate the negative pressure vacuum in the socket. For example, the force generated by contacting the ground during a user's walking motion can be used to generate a vacuum in the socket space to hold the prosthesis to the user's limb. However, in utilizing the motion of the user, known pumps rely on complete compression of the pump to expel air from the pump before the pump can be decompressed to generate the vacuum. Because the impact and displacement of the pump is not consistent and varies between users, the vacuum and thus attachment between residual limb and the socket can be unpredictable and/or inadequate, causing the user discomfort, grief and even injury.
- Yet another drawback is that many known pumps are integrated into the prosthetic limb in such a way that any failure of the pump would greatly impair the user's ability to walk. Many of such pumps are also bulky and significantly contribute to the weight of the prosthetic limb, imposing a significant weight burden on the user when walking.
- There is a need for a vacuum suspension system that provides freedom of vacuum suspension for a prosthetic system. There is also a call for a vacuum suspension system that provides a secure vacuum without losing suction and confidence to the user over a period of user. It is also desirable for vacuum suspension systems to draw a vacuum while being lightweight and streamlined.
- Embodiments of the vacuum suspension system provide vacuum assisted suspension by generating negative pressure inside a prosthetic socket worn over a residual limb, and reducing sliding movement between the liner and the socket. The function of the embodiments is automatic as it is activated during gait. The weight placed on a prosthetic device of the system expands a pump mechanism that efficiently draws air out from the socket in each step, and expels it into the atmosphere during swing phase as the pump mechanism returns to an original configuration. The prosthetic device can be the socket, a prosthetic pylon, a prosthetic foot, an adaptor system, a prosthetic knee, or any other suitable device.
- The pump mechanism utilizes the user's loading on the prosthetic device to create negative pressure into the socket without substantially affecting the functionality of the prosthetic device. It also does so without the use of complicated and bulky components as in the prior art, resulting in more secure and reliable elevated vacuum suspension. Furthermore, the pump mechanism can be a separate add-on module to the prosthetic system and can be adapted to fit a number of different prosthetic devices, providing versatility.
- According to an embodiment, the vacuum suspension system includes a pump system arranged to be in fluid communication with a prosthetic socket. The pump system includes a pump mechanism having a housing and a membrane situated on the housing such that a fluid chamber is defined between the membrane and the housing. The pump mechanism is movable between an original configuration in which the volume of the fluid chamber is zero or near-zero, and an expanded configuration in which the volume of the fluid chamber is increased.
- According to a variation, the pump system comprises a prosthetic adaptor adapted to form at least part of a load bearing connection between a prosthetic foot and the prosthetic socket. The pump system can include upper and lower sections arranged to move in an axial direction relative to one another, and the pump mechanism operatively connected to and positioned between the upper and lower sections such that when the pump system is loaded in stance the pump mechanism moves from the original configuration toward the expanded configuration.
- During weight bearing (e.g., in stance phase), the upper section and the lower section move toward one another, which, in turn, moves the pump mechanism toward the expanded configuration and increases the volume of the fluid chamber. This increase in the volume of the fluid chamber creates a vacuum in the pump mechanism, pulling fluid into the pump mechanism from the socket. Weight bearing on the prosthetic connector thus automatically creates a vacuum in the pump mechanism.
- After weight bearing (e.g., in swing phase), the pump mechanism returns toward the original configuration as the upper and lower sections move away from one another, expelling fluid within the fluid chamber. The pump mechanism can thus generate a vacuum in the socket during stance without undesirably affecting the functionality of the prosthetic foot or significantly increasing the bulk of the prosthetic device. In addition, the
pump mechanism 126 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle. - According to a variation, the pump mechanism can be located at or near the socket such that there is no need to move fluid drawn into the pump mechanism from the socket down to the prosthetic foot. This advantageously reduces the time required to produce an elevated vacuum in the socket. Further, it eliminates or reduces the need of a long tube extending between the pump mechanism and the socket, reducing the likelihood of leaks and volume to generate vacuum. The pump mechanism embodiments can also be formed to be used with both left and right prosthetic feet or may be foot specific.
- According to a variation, the pump system can include a biasing mechanism arranged to bias the pump mechanism toward the original configuration. When the pump system is loaded, the biasing mechanism can compress between the upper and lower sections. When the pump system is unloaded, the biasing mechanism decompresses and stored energy in the biasing mechanism drives the pump mechanism toward the original configuration.
- These and other features, aspects, and advantages of the present disclosure will become better understood regarding the following description, appended claims, and accompanying drawings.
-
FIG. 1 shows a side view of a vacuum suspension system according to an embodiment. -
FIG. 2 shows a detailed side view of the pump system inFIG. 1 . -
FIG. 3 shows another detailed side view of the pump system inFIG. 1 . -
FIG. 4 shows partial cutaway view of the vacuum suspension system inFIG. 1 . -
FIG. 5 shows a side isometric view of a vacuum suspension system according to an embodiment. -
FIG. 6 shows a front view of the pump system inFIG. 5 . -
FIG. 7 shows a cross section view of the pump system inFIG. 5 . -
FIG. 8 shows another cross section view of the pump system inFIG. 5 . -
FIG. 9 shows a side isometric view of a vacuum suspension system according to another embodiment. -
FIG. 10 shows a side isometric view of the pump system inFIG. 9 . -
FIG. 11 shows a cross section view of the pump system inFIG. 9 . -
FIG. 12 shows another cross section view of the pump system inFIG. 9 . -
FIG. 13 shows a side isometric view of a pump system according to another embodiment. -
FIG. 14 shows a cross section view of the pump system inFIG. 13 . -
FIG. 15 shows another cross section view of the pump system inFIG. 13 . -
FIG. 16 shows a side isometric view of a pump system according to another embodiment. -
FIG. 17 shows a cross section view of the pump system inFIG. 16 . -
FIG. 18 shows another cross section view of the pump system inFIG. 16 . -
FIG. 19 shows a side isometric view of a pump system according to another embodiment. -
FIG. 20 shows a cross section view of a pump system according to another embodiment. -
FIG. 21 shows another cross section view of the pump system inFIG. 20 . -
FIG. 22 shows a side view of a pump system according to another embodiment. -
FIG. 23 shows a cross section view of the pump system inFIG. 22 . -
FIG. 24 shows another cross section view of the pump system inFIG. 22 . -
FIG. 25 shows a cross section view of a pump system according to another embodiment. -
FIG. 26 shows another cross section view of the pump system inFIG. 25 . -
FIG. 27 shows a side isometric view of a vacuum suspension system according to another embodiment. -
FIG. 28 is a cross section view of the vacuum suspension system inFIG. 27 . -
FIG. 29 shows a partial side isometric view of a vacuum suspension system according to another embodiment. - It will be understood that, unless a term is expressly defined in this disclosure to possess a described meaning, there is no intent to limit the meaning of such term, either expressly or indirectly, beyond its plain or ordinary meaning.
- Any element in a claim that does not explicitly state “means for” performing a specified function, or “step for” performing a specific function, is not to be interpreted as a “means” or “step” clause as specified in 35 U.S.C. § 112,
paragraph 6. - The embodiments of one or more components of a vacuum suspension system will be described. A pump system having a fluid connection with a socket assists in creating a vacuum between a residual limb and the socket by pumping fluid out of the socket. The fluid can be pumped out of the socket when the user puts his weight on a prosthetic device (e.g., a prosthetic foot, a pylon, or prosthetic knee). The user's load on the prosthetic device can cause a pump mechanism of the pump system to increase the volume of a fluid chamber in the pump mechanism. The increase in volume of the pump mechanism draws in fluid from the vacuum space between the residual limb and the socket of a prosthetic limb. In this manner, the pump mechanism decreases the air pressure within the vacuum space causing a vacuum effect.
- After the load is removed, and/or shifted on the prosthetic device, the volume of the fluid chamber in the pump mechanism is automatically decreased. The connection between the vacuum space and the pump mechanism may have a one-way valve assembly, so all of the air within the volume of the pump mechanism is expelled out of an outlet to another space or to atmosphere. The outlet is provided with a one-way valve assembly so the vacuum space is the only source of air.
- The vacuum suspension system of the present disclosure produces a vacuum effect in a prosthetic socket that is advantageous over prior art devices that require compression of the pump to expel air before the pump can be decompressed to draw in air. The present disclosure also achieves smaller fluctuations in air pressure than the prior art systems, so the difference between the greatest pressure and lowest pressure in the vacuum space of the socket is less.
- The pump mechanism embodiments may easily retrofit on existing prosthetic devices and can do so without undesirably affecting their function. They are also lightweight and low-profile, advantageously contributing little to no bulk to a prosthetic foot. Optionally, the pump mechanism embodiments can be located at or near the socket such that there is no need to move fluid drawn into the pump mechanism from the socket down to the prosthetic foot. This advantageously reduces the time required to produce an elevated vacuum in the socket. Further, it eliminates or reduces the need of a long tube extending between the prosthetic foot and the socket, reducing the likelihood of leaks and volume to generate vacuum. The pump mechanism embodiments can also be formed to be used with both left and right prosthetic feet or may be foot specific.
- The efficiency of the pump mechanism is determined at least in part by how effectively the volume of the fluid chamber is reduced. Since the pump mechanism begins at and returns to the original state of zero or near-zero volume at the beginning or end of each cycle in some embodiments, the volume of the fluid chamber is determined by the force applied to the pump, not by a full compression and recompression cycle as in the prior art. In addition, all fluid drawn into the pump mechanism is expelled afterwards, fully utilizing the volume of the fluid chamber.
- The vacuum suspension system also reduces volume fluctuations of the residual limb and allows for increased proprioception and reduced pistoning since there is a better attachment between the socket and the residual limb. It may also be beneficial to produce hypobaric pressure below a certain level in the socket. This may be achieved using a sealing membrane or seal component between the residual limb and the socket, instead of the conventional sealing method of using a sleeve to form an airtight connection between the residual limb and the proximal end of the socket. The sealing membrane may be on a prosthetic liner as described in U.S. Pat. No. 8,034,120 incorporated by reference and belonging to the assignee of this disclosure.
- The benefit of using a liner having a seal or seal component reduces the volume of air to be drawn out of the socket and therefore, a better suspension may be achieved in a shorter time period. Using a silicone liner with integrated seal also provides the added benefit that the hypobaric region is not directly applied to the skin.
- The vacuum pump mechanisms in the embodiments of the prosthetic device described are generally described as a pump system or mechanism and may include any suitable type of pump mechanism. For instance, the pump mechanism may be a pump as described in U.S.
provisional application 62/019,674 incorporated by reference and belonging to the assignee of this disclosure. A piston-type pump may be used in the embodiments in place of a membrane-type pump. A bladder-type pump may also be used in the embodiments in place of a membrane-type pump, and a skilled person would understand that the pump mechanisms described may also be used with a bladder-type pump and vice versa. - A bladder-type pump has an interior fluid chamber surrounded by an airtight material. When the interior chamber is expanded, the opposing walls are moved away from each other by extending at least one side wall of the pump. The side walls of the bladder-type pump may have an accordion-like shape or be formed of a polymeric material which allow for the increase in distance between the opposing walls.
- A membrane-type pump has at least one wall of flexible material and a second opposing wall which may be rigid or flexible. The edges of the two walls are attached to each other such that when a force applies to the pump to expand the interior fluid chamber, the force deforms at least the flexible wall, and the flexible wall arcs outward to form an interior fluid chamber. To allow for deformation, the flexible wall may be made of a polymeric material including elastomeric material such as rubber or plastic.
- The bladder-type pump and membrane-type pump are arranged so that when no force applies to the pump or no weight is placed on the prosthetic device the volume of the interior fluid chamber is zero or near-zero. The pumps described and shown have a cylindrical shape. A skilled person would understand that the pumps may have a variety of shapes, for example, a diamond, rectangular, or triangular shape.
- The specific embodiments of the prosthetic device will now be described regarding the figures.
-
FIGS. 1 and 2 show a vacuum suspension system 1 comprising apump system 2 and aprosthetic foot 4 according to an embodiment. As seen inFIG. 1 , theprosthetic foot 4 can be any suitable prosthetic foot but is shown having afoot member 6 that extends from aproximal section 8 terminating at a proximal end to adistal section 10 terminating at a distal end. Theproximal section 8 can be generally vertically oriented, and thedistal section 10 can be generally horizontally oriented. - The
foot member 6 can have acurved portion 12 between theproximal section 8 and thedistal section 10 that is generally forwardly-facing concave. Thecurved portion 12 and/or theproximal section 8 can be generally at a location of a natural human ankle. Theprosthetic foot 4 can have aheel member 14 that extends rearwardly from thefoot member 6 and is disposed below at least a portion of thefoot member 6. Theheel member 14 can have a curvilinear profile along its length. - An
adaptor 16 can be coupled to the anterior surface of theproximal section 8 of thefoot member 6. Advantageously, theadaptor 16 can have ahole 18 or a hollowed-out portion to reduce the weight of theadaptor 16. An adhesive or bonding agent (e.g., epoxy) can be applied to theproximal section 8 or the posterior surface of theadaptor 16 to secure theadaptor 16 to theproximal section 8 of thefoot member 6. Alternatively, fasteners or other hardware can be used to secure theadaptor 16 to thefoot member 6. - A
connector 20 can be disposed on the proximal end of theadaptor 16 for coupling thefoot member 6 to aprosthetic pylon 22 or socket. Theconnector 20 can be a male pyramid connector, a tube clamp, or other attachment device. The connector can be secured to theadaptor 16 with adhesive or bonding agent. Theconnector 20 can also be secured to theadaptor 16 with fasteners or other hardware. Additionally, or alternatively, theconnector 20 can be threadedly attached to theadaptor 16. - In use, the
prosthetic foot 4 can expand and compress. Theprosthetic foot 4 is in expansion when the proximal end of thefoot member 6 and theheel member 14 are moved together from a resting position of the foot, reducing the distance between the foot member and the heel member. Theprosthetic foot 4 is in compression when the proximal end of thefoot member 6 and theheel member 14 are moved apart from the resting position of the foot, increasing the distance between the foot member andheel member 14. - Additional prosthetic foot designs that can include the pump system embodiments disclosed herein can include, but are not limited to, the following models by Össur of Rekjavik, Iceland: Axia™, Ceterus™, Elation™, LP Ceterus™, LP Vari-Flex™, Modular III™, Re-Flex VSP®, Cheetah™, Flex-Sprint™, Flex-Run™, Talux®, Vari-Flex®, Flex-Foot® Junior, Sure-Flex, Vari-Flex XC Rotate™, LP Rotate™, LP Re-Flex VSP, Re-Flex Rotate™, Re-Flex Shock™, Flex-Foot Balance, Flex-Foot Assure, and Balance™ Foot J. This disclosure is incorporated by reference and belongs to the assignee of this disclosure.
- Optionally, the
prosthetic foot 4 may be insertable into afoot cover 24 as seen inFIG. 1 . The bottom surface of thefoot member 6 and/or a rear surface of theheel member 14 can be shaped to generally correspond to the curvature and shape of the inner surfaces of a foot cover. - In order to better understand the operation of the
prosthetic foot 4, a basic discussion of the gait cycle is required. The gait cycle defines the movement of the leg between successive heel contacts of the same foot. The gait cycle has two phases: stance and swing. Of particular interest is the stance phase which generally includes heel-strike or initial contact, mid-stance, and toe-off. - It is during the stance phase that the mechanics of a
prosthetic foot 4 come into play. Upon heel strike, theprosthetic foot 4 is in expansion, providing cushioning to the user. During mid-stance, at which time the weight of the user is transmitted through theprosthetic foot 4 to a supporting surface, theprosthetic foot 4 moves from expansion into compression. Theprosthetic foot 4 remains in compression through toe-off until the weight of the user is removed from the prosthetic foot, at which time theprosthetic foot 4 returns to its resting position. - The
pump system 2 can be coupled to the prosthetic device at any suitable location but is shown coupled between theheel member 14 and thepylon 22. Thepump system 2 can be formed to be used with both left and right prosthetic feet. Alternatively, thepump system 2 can be formed to be used specifically on a left or right prosthetic foot. - The
pump system 2 can include apump mechanism 26 made generally from carbon fiber and/or plastic, and an elastomeric compound (e.g., a membrane) providing durable yet lightweight components. Prior art pump mechanisms are of heavy metal construction, which imposes a significant weight burden on the user when walking. - The pump mechanism can be secured to the
pylon 22. For instance, thepump mechanism 26 can be located between asupport member 28 extending rearwardly from thepylon 22 and amovable member 30 connected to thepylon 22 below thesupport member 28. Because the pump mechanism is secured to thepylon 22, it advantageously does not add volume to theprosthetic foot 4 and/orfoot cover 24. - The
pump mechanism 26 includes ahousing 32 containing one ormore valve assemblies 34, amembrane 36, aconnector 38, and a connectingsystem 40. The one ormore valve assemblies 34 can include a one-way valve, also referred to as a check valve. A preferred type of one-way valve used is a duckbill valve. It should be appreciated however that other types of one-way valves are possible. - The one or
more valve assemblies 34 can include an inlet valve assembly arranged to only allow fluid to enter thepump mechanism 26 and can optionally be connected to a tube. Thepump mechanism 26 can be in fluid communication with the cavity of a prosthetic socket. When the volume of thepump mechanism 26 increases, fluid (e.g., air) can be drawn out from the socket via the inlet valve assembly. The at least onevalve assembly 34 can include an outlet valve assembly arranged to only allow fluid to be expelled out of thepump mechanism 26, preferably to atmosphere. The outlet valve assembly may include a silencer. - Because the
pump mechanism 26 is located away from thefoot 4 and toward the socket, there is no need to move the fluid drawn into the pump mechanism from the socket down to the prosthetic foot, advantageously reducing the time required to produce an elevated vacuum in the socket. Further, it eliminates the need of a long tube extending between the prosthetic foot and the socket and the likelihood of leaks in thepump system 2. - Referring to
FIG. 2 , the top surface of thehousing 32 defines acavity 42 that is provided with an undercutcircumferential groove 44 between an open end of thecavity 42 and a closed bottom of the cavity. An outer radial edge of themembrane 36 can be situated in thecircumferential groove 44 such that a seal is formed between themembrane 36 and thehousing 32. Optionally, an adhesive can be applied between thehousing 32 and the outer radial edge of themembrane 36, increasing the sealing effect. The bottom of the cavity has one ormore openings 46 which extend into thehousing 32 to form internal passageways providing fluid communication between afluid chamber 48 defined between the bottom of the cavity and a bottom surface of themembrane 36, and the at least onevalve assembly 34. - The
pump mechanism 36 relies upon deformation of themembrane 36 to move between an original configuration (shown inFIG. 2 ) in which the volume of thefluid chamber 48 is zero or near-zero, and an expanded configuration (shown inFIG. 3 ) in which the volume of thefluid chamber 48 is increased. - When a force F is exerted on the
membrane 36 in a direction away from thehousing 32, thepump mechanism 26 moves toward the expanded configuration (shown inFIG. 3 ) as the force F pulls the bottom of the cavity away from a portion of themembrane 26, causing deformation of themembrane 36 and an increase in volume of thefluid chamber 48. This increase in volume of thefluid chamber 48 can draw fluid into the fluid chamber from the socket through the one ormore valve assemblies 34. Thehousing 32 may be formed of metal such as stainless steel, carbon fiber, or plastic or any other material which would provide sufficient strength to resist deformation when pulled away from themembrane 36. - Once the force is removed from the
membrane 36, thepump mechanism 26 returns toward its original configuration (shown inFIG. 2 ) as themembrane 36 returns toward the bottom of the cavity and fluid within thefluid chamber 48 is expelled out of the one ormore valve assemblies 34. Themembrane 36 can be elastomeric and can use at least in part its material properties to naturally or elastically return to its original position on the bottom of the cavity. - The
membrane 36 may have any desired shape, but is shown having a generally circular or elliptical shape. Themembrane 36 can be operatively attached at or near its center point to thesupport member 28 while the outer radial edge portion of themembrane 36 is attached to thehousing 32 such that when thehousing 32 is pulled away from the membrane 36 a pocket forms in a middle area of themembrane 36 due to the deformation of themembrane 36. The formation of the pocket increases the volume of thefluid chamber 48. Thepump mechanism 26 thus uses a compliant membrane to create suction. - As seen in
FIG. 2 , theconnector 38 can be an insert having a lowerradial flange 50 embedded in themembrane 36 and ashaft portion 52 extending between thelower flange 50 andsupport member 28. In some embodiments, theconnector 38 may be of a two-piece construction such that theshaft portion 52 can be threadedly removed from the lower flange embedded in themembrane 36. Theconnector 38 may be formed of metal, plastic, or any suitable other material. In other embodiments, the lower flange may extend substantially into themembrane 36 or may be formed of a material that is part of the membrane 36 (e.g. a flexible metal member). - Other examples of the pump mechanism are described in U.S. patent application Ser. Nos. 13/873,394; 13/873,315; 13/766,086; 62/101,154; and 62/151,518, and commercially available as the Unity Vacuum System by Össur hf. This disclosure is incorporated by reference and belongs to the assignee of this disclosure.
- The
support member 28 can include a generallyupright section 42 attached to thepylon 22 and a generallyhorizontal section 44 extending rearwardly from thesection 42 and connected to themembrane 36 via theconnector 38. The 42, 44 can extend at any suitable angle relative to thesections pylon 22. - The
support member 28 can define an opening or slot for receiving theconnector 38. To attach thesupport member 28 to themembrane 36, the shaft portion of theconnector 38 can be received in the opening or slot such that thesection 44 of thesupport member 28 is connected to theconnector 38. Theconnector 38 can be threadedly attached to thesupport member 28. Theconnector 38 can be attached to thesupport 38 via a pin, nut, or other fastener. Through the structure of theconnector 38 and thesupport member 28, thepump mechanism 26 has the benefit of being easily and quickly removed and/or replaced from theprosthetic foot 4. - The
movable member 30 can be secured to thepylon 22 at a location below thesupport member 28 and movable relative to thesupport member 28. Themovable member 30 can be a plate pivotally connected to thepylon 22 at apivot point 54. In other embodiments, themovable member 30 can be a plate arranged to flexibly rotate relative to thesupport member 38. - The
membrane 36 can rest within anopening 56 defined in themovable member 30. Thehousing 32 can have a portion which extends beyond themembrane 36 to engage the bottom surface of themovable member 30 surrounding theopening 56 and allows themovable member 30 to pull thehousing 32 away from themembrane 36 when flexed. - Referring to
FIGS. 3 and 4 , atensioning system 58 operatively connects thepump mechanism 26 to theprosthetic foot 4. Thetensioning system 58 can include atensioning element 60 that is secured to and adjusted by atensioning control mechanism 62 to adjust the length of thetensioning element 60. Thetensioning element 60 can be a cable, a lace, wire or any other suitable member and may refer to a relatively long and relatively thin shaped metals or polymers, which may be single strand or multi-strand, and which may include friction reducing coatings thereon. Thetensioning element 60 translates action of theprosthetic foot 4 to thepump mechanism 26. - The
tensioning control mechanism 62 can be a dial-tensioning control mechanism arranged for incremental and preselected adjustment in the tension of thetensioning element 60. Thetensioning control mechanism 62 is not limited to the example provided above but can include any system that permits adjusting tension in thetensioning element 60. Thetensioning control mechanism 62 also allows thetensioning element 60 to be fixed at a desired length. - The dial-tensioning
control mechanism 62 can be secured to the posterior surface of theproximal section 8 of thefoot member 6, with thetensioning element 60 extending from both the proximal and distal sides of the dial-tensioningcontrol mechanism 62. It should be noted that the ends of thetensioning element 60 can be retained within the dial-tensioningcontrol mechanism 62 and the portion of thetensioning element 60 outside the dial-tensioningcontrol mechanism 62 extends continuously between the connectingsystem 40, theheel member 14, and the dial-tensioningcontrol mechanism 62 without interruption. - As seen, the connecting
system 40 of thepump system 2 can include at least onearm member 64 attached to thehousing 32. Thearm member 64 can include a first portion extending rearwardly from thehousing 32 and a second portion curving downwardly toward theheel member 14. - A first end of the
tensioning element 60 is attached to the dial-tensioningcontrol mechanism 62. From the dial-tensioningcontrol mechanism 62, thetensioning element 60 extends through the connectingsystem 40. From the connectingsystem 40, thetensioning element 60 extends downwardly toward theheel member 14. Thetensioning element 60 then passes ananchor point 66 on theheel member 14 which in turn directs thetensioning element 60 back toward the dial-tensioningcontrol mechanism 62. At the dial-tensioningcontrol mechanism 62, a second end of thetensioning element 60 is attached to the dial-tensioningcontrol mechanism 62. - Because only the
tensioning element 60 is attached to theprosthetic foot 4, the likelihood of thepump system 2 undesirably affecting theprosthetic foot 4 is advantageously reduced. - When the
prosthetic foot 4 is in the resting position (shown inFIG. 1 ), thepump mechanism 26 is in its original configuration. Upon heel strike, theprosthetic foot 4 moves into expansion, which, in turn, creates slack in thetensioning element 60. With theprosthetic foot 4 in expansion, thepump mechanism 26 remains in its original configuration. - As the
prosthetic foot 4 moves from heel strike through mid-stance and/or toe-off, theprosthetic foot 4 moves into compression. In compression, the proximal end of thefoot member 6 moves away from theheel member 14 causing thetensioning element 60 to tighten and apply a downward or pulling force on the connectingsystem 40 of thepump system 2 as shown inFIG. 4 . - The downward force on the connecting
system 40 causes thehousing 32 and themovable member 30 to pivot and/or flex away from thesupport member 28. This moves thehousing 32 away from themembrane 36, moving thepump mechanism 26 to the expanded configuration. More particularly, thesupport member 28 pulls thehousing 32 away from themembrane 36, increasing the volume of thefluid chamber 48. Optionally, a spring member may be serially connected to thetensioning element 60 which allows for movement without changing the stiffness of theprosthetic foot 4 too much. Further, the spring member can also reduce the likelihood of thetensioning element 60 pulling too hard on thepump mechanism 26. - This increase in volume of the
fluid chamber 48 creates a vacuum in thepump mechanism 26, pulling fluid into thepump mechanism 26 through the one ormore valve assemblies 34. Compression of the prosthetic foot thus automatically creates a vacuum in thepump mechanism 26. This is advantageous over prior art prosthetic devices that require compression of the pump to expel air before the pump can be decompressed to draw in air. Further, because thepump mechanism 26 does not need to be first compressed before it can create a vacuum upon decompression, thepump mechanism 26 can achieve smaller fluctuations in air pressure than the prior art devices, so the difference between the greatest pressure and lowest pressure in the vacuum space of the socket is less than compared to the prior art devices. - At the end of the stance phase or when the weight of the user is removed from the
prosthetic foot 4, theprosthetic foot 4 returns to its resting position and abiasing mechanism 68 extending between thepylon 22 and the connectingsystem 40 can help return themovable member 30 to its resting position, moving thepump mechanism 26 back toward its original configuration and decreasing the volume of the fluid chamber to a zero or near zero volume. - During the return of the
membrane 36 toward thehousing 32, thepump mechanism 26 expels fluid in thefluid chamber 48 out of the one ormore valve assemblies 34. Because of thepump mechanism 26 returns to its original configuration of zero or near-zero volume in the fluid chamber at the beginning or end of each gait cycle, substantially all fluid drawn into thepump mechanism 26 is automatically expelled. This is advantageous because prior art devices rely on complete compression of the pump in expelling air in each gait cycle to use the pump to its maximum capacity. It is difficult for complete compression to occur in every cycle using the gait of a user as the actuating force since the impact and displacement of the pump is not consistent and varies between users. - The dial-tensioning
control mechanism 62 may be rotated in a first direction to decrease the length of thetensioning element 60 and thereby increase the tension in thetensioning element 60. To increase the length of thetensioning element 60 and thereby decrease the tension in thetensioning element 60, the dial-tensioningcontrol mechanism 62 may be rotated in a second direction. - By adjusting the tension in the
tensioning element 60, the sensitivity of thepump mechanism 26 can be varied. For instance, by increasing the tension in thetensioning element 60, the level of pre-load applied to thehousing 32 may be increased, increasing the sensitivity of thepump mechanism 26 to the action of theprosthetic foot 4, It will be appreciated that the sensitivity of thepump mechanism 26 may be varied based on user activity level, weight, and/or other factors, advantageously providing greater control and versatility. -
FIGS. 5-8 show a prosthetic device or avacuum suspension system 70 including apump system 72 according to another embodiment. Thevacuum suspension system 70 has asocket 76, aliner 78 preferably including a seal component, and aprosthetic foot 74. Thesocket 76 defines an interior space, and an interior wall delimiting the interior shape. Thevacuum suspension system 70 includes anadapter system 80 for coupling thesocket 76 to a prosthetic pylon, prosthetic foot, a rotation module, a shock module, or other suitable component. - The
vacuum suspension system 70 provides improved proprioception and volume control. Thevacuum suspension system 70 includes apump mechanism 82, as discussed in earlier embodiments, which provides a vacuum assisted suspension by generating a negative pressure (vacuum) inside thesocket 76. As seen, thepump mechanism 82 can be attached directly to thesocket 76. - An actuator comprising a
cable member 104 extends between thepump mechanism 82 and a heel member of theprosthetic foot 74. Because thepump mechanism 82 is located on thesocket 76, fluid drawn into thepump mechanism 82 from thesocket 76 does not have to be drawn down to theprosthetic foot 74, advantageously increasing efficiency and reducing the time required to produce an elevated vacuum in thesocket 76. - Referring to
FIGS. 6-8 , thepump mechanism 82 includes ahousing 84 containing two one- 86, 88, away valve assemblies membrane 90, and aconnector 92. Thevalve assembly 86 is arranged to only allow fluid to enter thepump mechanism 82, which can be in fluid communication with the cavity of thesocket 76. Thevalve assembly 88 is arranged to only allow fluid to be expelled out of thepump mechanism 82, preferably to atmosphere. Theconnector 92 is connected to themembrane 90 and includes anattachment portion 94 above themembrane 90, and a shaft portion extending from themembrane 90 to the attachment portion. Thehousing 84 can include at least onefastener hole 96 arranged to receive at least one fastener for attaching thepump mechanism 82 to thesocket 76. -
FIGS. 7 and 8 show cross section views of thepump mechanism 82. Similar to thepump mechanism 26, thepump mechanism 82 relies upon deformation of themembrane 90 to move between an original configuration (shown inFIG. 7 ) in which the volume of afluid chamber 98 defined between the top surface of themembrane 90 and the bottom of thehousing 84 is zero or near-zero, and an expanded configuration (shown inFIG. 8 ) in which the volume of thefluid chamber 98 is increased. Themembrane 90 can be positioned in a cavity of thehousing 84. Thehousing 84 surrounds the outer radial edge portion of themembrane 90 and creates a seal with themembrane 90. For instance, the cavity is provided with an undercutcircumferential groove 87 within which the outer radial edge of themembrane 90 is situated. - The bottom surface of the cavity defines a pair of
openings 102 which extend into thehousing 84 to form internal passageways to provide fluid communication between thefluid chamber 98 and the two one- 86, 88.way valve assemblies - As seen in
FIG. 5 , thecable 104 is connected at a first end to theconnector 92 and at a second end to anchorpoint 106 on theprosthetic foot 74. Because only thecable 104 is attached to theprosthetic foot 74, the likelihood of thepump system 82 undesirably impeding action of theprosthetic foot 74 is advantageously reduced. Further, thepump system 82 does not add additional volume to theprosthetic foot 74 and/or a foot cover. - Referring to
FIGS. 7 and 8 , thecable 104 can include acore 108 slidably positioned within a tubular casing orsheath 110. Thesheath 110 is arranged to provide axial stiffness to thecore 108 such that a force on the second end of thecable 104 forces the core 108 upward or downward relative to thesheath 110, moving thepump mechanism 82 between the original configuration and the expanded configuration. Optionally, thecable 104 can be wrapped around theadaptor system 80 and/or another component extending between thesocket 76 and theadaptor system 80. - The function of the
vacuum suspension system 70 can be fully automatic. During mid-stance and/or toe-off, compression of theprosthetic foot 74 causes thecable 104 to pull themembrane 90 away from thehousing 84, which, in turn, expands thepump mechanism 82 to efficiently draw fluid out of thesocket 76. During the swing phase, decompression of theprosthetic foot 74 permits thepump mechanism 82 to return to its original position, expelling the fluid drawn from thesocket 76 to atmosphere. Thepump mechanism 82 thus can create a negative pressure inside thesocket 76, resulting in a secure and reliable elevated vacuum suspension that provides an intimate suspension as the negative pressure formed inside of thesocket 76 holds the liner and the residuum firmly to the socket wall. -
FIGS. 9-12 show a prosthetic device or avacuum suspension system 110 including apump system 112 according to another embodiment. Thevacuum suspension system 110 has asocket 114, avalve 116, and atube 118 connecting apump mechanism 126 of thepump system 112 to thesocket 114, and aprosthetic foot 120. Thevacuum suspension system 110 includes anadaptor system 124 for coupling thesocket 114 to aprosthetic pylon 122 attached to theprosthetic foot 120. - The
vacuum suspension system 110 includes thepump system 112, as discussed in earlier embodiments, which provides a vacuum suspension by generating a vacuum inside thesocket 114. As seen, thepump system 112 can comprise a prosthetic connector adapted to form at least part of a load bearing connection between thefoot 120 and thesocket 114. For instance, the prosthetic connector can connect thesocket 114 to thepylon 122, which is attached to thefoot 120. As such, thepump system 112 can help support loads exerted on thesocket 114 and transfer such loads to the ground or other underlying surface via thepylon 122 and thefoot 120. Thepump system 112 can easily retrofit on existing prosthetic devices and can be formed for right and left prosthetic devices. For instance, thepump system 112 can easily retrofit on an existing prosthetic device by selecting a pylon compatible with thepump system 112. Thepump system 112 can be substantially in axial alignment with thepylon 122. - Because the
pump mechanism 126 of thepump system 112 can be located at or near thesocket 114, fluid drawn from thesocket 114 by thepump mechanism 126 does not have to be moved down to thefoot 122. This has the effect of reducing the time required to generate an elevated vacuum in thesocket 114. This also reduces the length of thetube 118, reducing the likelihood of leaks in thepump system 112. It further helps reduce the overall volume of thepump system 112. In other embodiments, thepump mechanism 126 can be integrated into the attachment between theprosthetic foot 120 and another component. In other embodiments, thepump mechanism 126 can be integrated into aprosthetic pylon 122. - Referring to
FIGS. 10-12 , thepump system 112 includes anupper section 130, alower section 132, and apump mechanism 126. Theupper section 130 and thelower section 132 are arranged to move in an axial direction relative to one another. Theupper section 130 can define anadaptor 134 having a female configuration arranged to receive a male adaptor, a tube, or other component. Thelower section 132 can define anadaptor 136 having a similar configuration. In other embodiments, the 134, 136 can be male adaptors or other type of connectors.adaptors - The
upper section 130 defines acavity 138 having a peripheralinternal cavity wall 140 extending between abottom opening 142 at or near the bottom of theupper section 130 and a closed end 144 (shown inFIG. 11 ). Thecavity 138 is shown having a generally cylindrical shape but can have any suitable shape. Apin member 146 protrudes downward from theupper wall 144 of thecavity 138. Thepin member 146 can have a hollow configuration defining an internal channel extending through thepin member 146. - The
upper section 130 includes 160, 162. Thevalve assemblies valve assembly 160 is arranged to only allow fluid to enter thepump mechanism 126 and can be connected to thetube 118. Thevalve assembly 162 is arranged to only allow fluid to be expelled out of thepump mechanism 126, preferably to atmosphere. Aninternal passageway 152 is arranged to provide fluid communication between the 160, 162 and thevalve assemblies pin member 146. Optionally, a lower end section of thepin member 146 can define one or more perforations providing fluid communication between theinternal passageway 152 and a fluid chamber defined below. - The
lower section 132 is sized and configured to fit into thecavity 138 of theupper section 130 via thebottom opening 142. Thelower section 132 defines acavity 154 to accommodate a membrane described below. - The
pump mechanism 126 includes ahousing 148 and amembrane 152. Thehousing 148 defines a throughopening 150 arranged to allow thepin member 146 to slidably pass therethrough. Thehousing 148 can have a rigid configuration. Themembrane 152 is positioned below thehousing 148. Thecavity 154 can be dimensioned to allow a center portion of themembrane 152 to move in a downward direction within thelower section 132 when themembrane 152 is pushed downward by thepin member 146 as described below. - An outer radial edge of the
membrane 152 can be attached to thehousing 148 such that a seal is formed between themembrane 152 and thehousing 148. Optionally, an adhesive can be applied between thehousing 148 and the outer radial edge of themembrane 152, increasing the sealing effect. Thefluid passageway 152 can be in fluid communication with afluid chamber 158 defined between the upper surface of themembrane 152 and the bottom of thehousing 148. - Similar to the other embodiments, the
pump mechanism 126 relies upon deformation of themembrane 152 to move between an original configuration (shown inFIG. 11 ) in which the volume of thefluid chamber 158 is zero or near-zero, and an expanded configuration (shown inFIG. 12 ) in which the volume of thefluid chamber 158 is increased. - During weight bearing (e.g., in stance phase), the
pump mechanism 126 moves toward the expanded configuration (shown inFIG. 12 ). More particularly, theupper section 130 and thelower section 132 move toward one another, which, in turn, causes thepin member 146 to push the center portion of themembrane 152 away from the bottom of thehousing 148, increasing the volume of thefluid chamber 158. This increase in volume of thefluid chamber 158 creates a vacuum in thepump mechanism 126, pulling fluid into thepump mechanism 126 through theinlet valve assembly 160. Weight bearing on the prosthetic connector thus automatically creates a vacuum in thepump mechanism 126. - After weight bearing (e.g., in swing phase), the
pump mechanism 136 returns toward the original configuration (shown inFIG. 11 ) as the upper and 130, 132 move away from one another. This moves thelower sections pin member 146 away from themembrane 152, allowing themembrane 152 to return toward the bottom of thehousing 148 and to expel fluid within thefluid chamber 158 out of thevalve assembly 162. Optionally, thepin member 146 can be attached to themembrane 152 such that it can pull themembrane 152 back to its original position after weight bearing. - It will be appreciated that the
membrane 152 can be elastomeric and can use at least in part its material properties to naturally or elastically return to the its original position on the bottom of thehousing 148. Themembrane 152 can have any desired shape. In other embodiments, the weight of the prosthesis orfoot 120 below thepump mechanism 126 can help move thepump mechanism 126 toward the original configuration. - Optionally, the
pump mechanism 126 can include abiasing mechanism 164 arranged to bias thepump mechanism 126 toward the original configuration. Thebiasing mechanism 164 can comprise a ring member having a compressible configuration situated in thecavity 138. Thebiasing mechanism 164 can be resilient such as an elastomeric material and/or any other material that deforms under a load and returns to its original form or position when the load is released. During weight bearing, thebiasing mechanism 164 can compress between thehousing 148 and theupper section 130. After weight bearing, thebiasing mechanism 164 can decompress and stored energy in thebiasing mechanism 164 can drive thepump mechanism 126 toward the original configuration. - The
pump mechanism 126 can thus generate a vacuum in thesocket 114 during stance without undesirably affecting the functionality of theprosthetic foot 120 or significantly increasing the bulk of the prosthetic device. In addition, thepump mechanism 126 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle. - According to a variation, at least one sensor can be incorporated into the
pump system 112. For instance, thepump system 112 can include at least onesensor 129 including, but not limited to, one or more Hall Effect sensors, linear variable displacement transducers, differential variable reluctance transducers, or reed switches. The at least onesensor 129 can be incorporated in theupper section 130 and/or thelower section 132 and arranged to measure one or more relationships between the two components. For instance, the at least onesensor 129 can be used to measure force or positional changes between the upper and 130, 132. In an embodiment, a Hall Effect sensor can be used to monitor angular changes between the upper andlower sections 130, 132. The output from the at least onelower sections sensor 129 can be used to regulate pressure in thesocket 114. In other embodiments, the output from the at least onesensor 129 can be used for general sensory feedback information on gait and performance characteristics. -
FIGS. 13-15 illustrate apump system 163 according to another embodiment that can be integrated in the adaptor system of a prosthetic device. In the illustrated embodiment, thepump system 163 can comprise a prosthetic connector adapted to form a connection between a prosthetic foot and a socket. Thepump system 163 can include apump mechanism 164, anupper section 172, and alower section 174. At least one of the upper and 172, 174 is movable axially relative to the other. Thelower sections upper section 172 can include anadaptor 176 and thelower section 174 can include anadaptor 178. The 176, 178 are shown as female adaptors but can be male adaptors or other types of connectors.adaptors - The
pump mechanism 164 includes ahousing 166, amembrane 168, and aconnector 170. It will be appreciated that thepump mechanism 164 may include one or more valve assemblies similar to the other embodiments arranged to control movement of fluid into and from thepump mechanism 126. Referring toFIG. 14 , thehousing 166 can be located in theupper section 172. Thehousing 166 defines a cavity 180 provided with an undercutcircumferential groove 182 between an open end of thecavity 182 and a closed end 184 of the cavity 180. An outer radial edge portion of themembrane 168 can be situated in thecircumferential groove 182 such that a seal is formed between themembrane 168 and thehousing 166. The closed end 184 of the cavity 180 can define one or more openings which extend into thehousing 166 to form internal passageways providing fluid communication between a fluid chamber defined below and one or more valve assemblies. - The
pump mechanism 164 is movable between an original configuration (FIG. 14 ) in which the volume of afluid chamber 186 defined between the bottom surface of themembrane 168 and the closed end 184 of the cavity 180 is zero or near-zero, and an expanded configuration (shown inFIG. 15 ) in which the volume of thefluid chamber 186 is increased. The bottom 184 of the cavity 180 substantially complements the bottom surface of themembrane 168 such that when no force is exerted on thepump mechanism 164 it is in the original position. - The
lower section 174 includes abase 188 andarms 190 on each side of the base 188 that extend upwardly from thebase 188. Across member 192 is formed between thearms 190. Thecross member 192 extends through anopen space 194 formed of theupper section 174 over thehousing 166. Aresilient element 196 connects theupper section 172 to thelower section 174. Theresilient element 196 can be a spring member. The spring member can have a folded structure. - The
membrane 168 may have any desired shape, but is shown having a generally circular or elliptical shape. Themembrane 168 can be operatively attached at or near its center point to thecross member 192 of thelower section 174 while the outer radial edge portion of themembrane 168 is attached to theupper section 172 such that when themembrane 168 is pulled away from the upper section 172 a pocket forms in a middle area of themembrane 168 due to the deformation of themembrane 168. The formation of the pocket increases the volume of thefluid chamber 186. - During weight bearing or when a load is applied to a socket or pylon (e.g., in stance phase), the
upper section 172 moves downward relative to thelower section 174 as shown inFIG. 15 . This pulls themembrane 168 away from thehousing 166, moving thepump mechanism 164 toward the expanded configuration. More particularly, thecross member 192 pulls themembrane 168 away from the closed end 184 of the cavity 180 to deform themembrane 168 between thecross member 192 and theupper section 172, increasing the volume of thefluid chamber 186. - After weight bearing or when the load is removed (e.g., in swing phase), the
pump mechanism 164 returns toward the original configuration as theupper section 172 moves upward relative to thelower section 174 as shown inFIG. 14 . This allows themembrane 168 to return toward the bottom 184 of the cavity 180, expelling fluid within thefluid chamber 186 out of thefluid chamber 186. - The
resilient element 196 can be a biasing mechanism arranged to bias thepump mechanism 164 toward the original configuration. During weight bearing, theresilient element 196 can compress between theupper section 172 and thelower section 174. After weight bearing, theresilient element 196 can decompress and stored energy in thebiasing mechanism 196 can drive thepump mechanism 164 toward the original configuration. - The
connector 170 can include a lowerradial flange 198 embedded in themembrane 168, an upperradial flange 202 above themembrane 168 and attached to thecross member 192, and ashaft portion 204 extending between thelower flange 198 and theupper flange 202. In some embodiments, theconnector 170 may be of a two-piece construction such that theupper flange 202 can be threadedly removed from thelower flange 198 embedded in themembrane 168. Thecross member 192 can define an opening for attaching theconnector 170 to thecross member 192. - The
pump mechanism 164 can thus generate a vacuum in a socket during stance without significantly increasing the bulk of the prosthetic device. It can also provide a dampening or shock absorbing effect to the prosthetic device. -
FIGS. 16-18 illustrate apump system 205 according to another embodiment that can be integrated in an adaptor system of a prosthetic device. For instance, thepump system 205 can comprise a prosthetic connector. Thepump system 205 includes apump mechanism 206, anupper section 218, and alower section 220. At least one of the upper and 218, 220 is arranged to move axially relative to the other. Thelower sections upper section 218 can include anadaptor 222 and thelower section 220 can include anadaptor 224. The 222, 224 are shown as female adaptors but can be male adaptors or other types of prosthetic connector.adaptors - The
upper section 218 can be connected to thelower section 220 via a resilient element comprising aflexible enclosure 226. Theflexible enclosure 226 includes a generally horizontal top 226A attached to theupper section 218 and a generallyhorizontal bottom 226B attached to thelower section 220. The top and bottom 226A, 226B are connected together by 226C, 226D. The top 226A, bottom 226B, and sides 226C, 226D collectively define anconvex side inner space 227 of theflexible enclosure 226. Theflexible enclosure 226 can be made of a durable but flexible material such as carbon fiber cloth, unidirectional composites, plastic, and/or metal. The configuration of theflexible enclosure 226 can be adjusted based on the weight of the user and/or other factors. Theflexible enclosure 226 can be formed of a single part, two parts, three parts, or any other suitable number of parts. - Similar to the other embodiments, the
pump mechanism 206 can include ahousing 208, amembrane 210, and one or more valve assemblies arranged to allow fluid to enter and exit thepump mechanism 206. - The
pump mechanism 206 can be situated within theinner space 227 of theflexible enclosure 226. Theflexible enclosure 226 can be attached to thehousing 208 via afirst connector 228 extending between thehousing 208 and theside 226C of theflexible enclosure 226. Theflexible enclosure 226 can be attached to a center portion of themembrane 210 via asecond connector 230 extending between themembrane 210 and theside 226D of theflexible enclosure 226. -
FIGS. 17 and 18 show cross section views of thepump mechanism 206. Thepump mechanism 206 relies upon deformation of themembrane 210 to move between an original configuration (shown inFIG. 17 ) in which the volume of afluid chamber 228 defined between thehousing 208 and themembrane 210 is zero or near-zero, and an expanded configuration (shown inFIG. 18 ) in which the volume of thefluid chamber 228 is increased. Themembrane 210 can be positioned in acavity 212 of thehousing 208. Thehousing 208 surrounds the outer radial edge portion of themembrane 210 and creates a seal with themembrane 210. The bottom of thecavity 212 can define one or more openings to form internal passageways to provide fluid communication between thefluid chamber 228 and the one or more valve assemblies. - During weight bearing or when a load is applied to the socket (e.g., in stance phase), the
pump mechanism 206 moves toward the expanded configuration (shown inFIG. 18 ). More particularly, theupper section 218 and thelower section 220 move toward one another, which, in turn, causes theflexible enclosure 226 to compress between the upper and 218, 220. When thelower sections flexible enclosure 226 compresses, the 226C, 226D of thesides flexible enclosure 226 bow out or are forced apart, which in turn, causes at least thesecond connector 230 to pull themembrane 210 away from the bottom of thecavity 212, increasing the volume of thefluid chamber 228. This increase in volume of thefluid chamber 228 creates a vacuum in thepump mechanism 206, pulling fluid into thepump mechanism 206. Weight bearing on a prosthetic device thus automatically creates a vacuum in thepump mechanism 206. It will be appreciated that in other embodiments themembrane 210 can be pulled away from the bottom of thecavity 212 by thefirst connector 228 or the first and 228, 230 together.second connectors - After weight bearing or when the load is removed (e.g., in swing phase), the
pump mechanism 206 can return toward the original configuration (shown inFIG. 17 ). Stored energy in theflexible enclosure 226 forces the upper and 218, 220 away from one another. This moves the first andlower sections 226A, 226B back toward one another, forcing thesecond sides membrane 210 toward the bottom of thecavity 212 and expel fluid within thefluid chamber 238 out of thepump mechanism 206. As such, theflexible enclosure 226 can both move thepump mechanism 206 between the original and expanded configurations when loaded, and bias thepump mechanism 206 from the expanded configuration toward the original configuration. - The
pump system 205 can thus generate a vacuum in a socket in response to a load on the socket or pylon without undesirably affecting the functionality of a prosthetic foot or significantly increasing the bulk of the prosthetic device. -
FIG. 19 illustrates apump system 240 according to another embodiment. It will be similar that thepump system 240 is similar in structure and function to thepump system 205 except that the flexible enclosure has a different shape. For instance, thepump system 240 includes apump mechanism 242, anupper section 244, and alower section 246. Theupper section 244 andlower section 246 are connected to one another via a resilient element comprising aflexible enclosure 248. - In the illustrated embodiment, the
flexible enclosure 248 includes afirst part 250 and asecond part 252 spaced from thefirst part 250. Each of the first and 250, 252 includes a top 254 attached to thesecond parts upper section 244, a bottom 256 attached to thelower section 246, and a convexintermediate segment 258 extending between the top 254 and the bottom 256. The top 254 extends radially inward from an outer edge of theupper section 244 to where it connects with theintermediate segment 258 near a middle of theupper section 244. The bottom 256 also extends radially inward from an outer edge of thelower section 246 to where it connects with theintermediate segment 258 near a middle of thelower section 246. - During weight bearing, the upper and
244, 246 move toward one another, which, in turn, causes thelower sections flexible enclosure 248 to compress. When theflexible enclosure 248 compresses, theintermediate segments 258 of the first and 250, 252 bow out or are forced apart, which, in turn, moves thesecond parts pump mechanism 242 toward the expanded configuration. After weight bearing, stored energy in theflexible enclosure 248 forces the upper and 244, 246 away from one another. This moves thelower sections intermediate segments 258 back toward one another, returning thepump mechanism 242 toward the original configuration. -
FIGS. 20 and 21 illustrate apump system 260 according to another embodiment that can be integrated in an adaptor system of a prosthetic device. For instance, thepump system 260 can comprise a prosthetic connector. Thepump system 260 includes apump mechanism 262, anupper section 264, and alower section 266. At least one of the upper and 264, 266 is arranged to move axially relative to the other. In the illustrated embodiment, thelower sections upper section 264 has a female configuration and thelower section 266 has a male configuration arranged to fit in theupper section 264. As seen, theupper section 264 can include anadaptor 268 and thelower section 266 can include anadaptor 270. The 268, 270 are shown as male adaptors but can be female adaptors or any other type of connector.adaptors - The
lower section 266 defines acavity 272 having a peripheralinternal cavity wall 274 extending between a top opening at or near the top of thelower section 266 and aclosed end 276. Thecavity 272 is shown having a generally cylindrical shape but can have any suitable shape. Achannel 278 extends through thelower section 266 and traverses thecavity 272. - The
upper section 264 defines acavity 280 having a peripheralinternal cavity wall 282 extending between abottom opening 284 at or near the bottom of theupper section 264 and aclosed end 286. Thelower section 266 is sized and configured to be received in thecavity 280 of theupper section 264. Theupper section 264 includes across member 288 extending through thechannel 278 of thelower section 266. Thecross member 288 can be a pin member. Thecross member 288 can extend in a generally horizontal direction. Thechannel 278 and thecross member 288 can be sized and configured such that thecross member 288 can move up and down within thechannel 278 but also holds theupper section 264 on thelower section 266. The range of axial movement between the upper and 264, 266 can be limited by a height of thelower sections channel 278 and/or thecross member 288. - The
pump mechanism 262 is positioned on the top of thelower section 266 within thecavity 280 of theupper section 264. Thepump mechanism 262 includes ahousing 290, amembrane 292, and aconnector 294. Thepump mechanism 262 may include one ormore valve assemblies 296 arranged to control movement into and from thepump mechanism 262. According to a variation, afluid passageway 298 is defined in theadaptor 268 of theupper section 264 that is fluid communication with thepump mechanism 262. This facilitates fluid entering and exiting thepump mechanism 262 to pass through theadaptor 268. - The
housing 290 defines a cavity 302 provided with an undercutcircumferential groove 304 between an open end of the cavity 302 and a closed end 306 of the cavity 302. An outer radial edge portion of themembrane 292 can be situated in thecircumferential groove 304 such that a seal is formed between themembrane 292 and thehousing 290. A center portion of themembrane 292 can be attached to thecross member 288 of theupper section 264. For instance, theconnector 294 can attach the center portion of themembrane 292 to thecross member 288. The closed end 306 of the cavity 302 can define one or more openings which extend into thehousing 290 to form internal passageways providing fluid communication between the one ormore valve assemblies 296 and a fluid chamber defined below. - The
pump mechanism 262 is movable between an original configuration (FIG. 20 ) in which the volume of afluid chamber 308 defined between the top of themembrane 292 and the closed end 306 of the cavity 302 is zero or near-zero, and an expanded configuration (shown inFIG. 21 ) in which the volume of thefluid chamber 308 is increased. - During weight bearing or when a load is applied to a socket or pylon, the
upper section 264 moves downward relative to thelower section 266 as shown inFIG. 21 . This pulls themembrane 292 away from the closed end 306 of the cavity 302, moving thepump mechanism 262 toward the expanded configuration. More particularly, thecross member 288 of theupper section 264 moves downward within thechannel 278 and pulls the center portion of themembrane 282 away from the closed end 306 of the cavity 302 to deform themembrane 282, increasing the volume of thefluid chamber 308. - After weight bearing or when the load is removed, the
pump mechanism 262 can return toward the original configuration as theupper section 264 andcross member 288 move upward relative to thelower section 266 as shown inFIG. 20 . This allows themembrane 292 to return towards the closed end 306 of the cavity 302, expelling fluid within thefluid chamber 308. - According to a variation, the
pump system 260 can include abiasing mechanism 310 arranged to bias thepump mechanism 262 toward the original configuration. Thebiasing mechanism 310 can comprise a spring member disposed between theclosed end 276 of thelower section 266 and thecross member 288 of theupper section 264. In an embodiment, the spring member can be positioned on a stem portion extending downwardly from thecross member 288. When thepump system 260 is loaded, thebiasing mechanism 310 can compress between theclosed end 276 of thelower section 266 and thecross member 288 of theupper section 264. When thepump system 260 is unloaded, thebiasing mechanism 310 can decompress and stored energy in thebiasing mechanism 310 can drive thepump mechanism 260 toward the original configuration. - According to a variation, the
housing 290 can be threadedly attached to thelower section 266. For instance, thehousing 290 can define a plurality of external threads arranged to mesh with a plurality of internal threads defined by thelower section 266. In an embodiment, theadaptor portion 268 can be threadedly attached to theupper section 264 and theadaptor portion 270 can be threadedly attached to thelower portion 266. -
FIGS. 22-24 illustrate apump system 312 according to another embodiment that can be integrated in an adaptor system of a prosthetic device. In an embodiment, thepump system 312 can comprise a prosthetic connector. Thepump system 312 includes apump mechanism 314, anupper section 316, and alower section 318. At least one of the upper and 316, 318 is arranged to move relative to the other. In an embodiment, thelower sections upper section 316 includes anadaptor 320 and thelower section 318 includes anadaptor 322. The 320, 322 are shown as female adaptors but can be male adaptors or any other suitable connectors.adaptors - A
resilient element 324 connects theupper section 316 and thelower section 318. Theresilient element 324 can be any suitable member but is shown as a blade having a semicircular configuration with anupper arm 326 attached to theupper section 316 and alower arm 328 attached to thelower section 318. - The
pump mechanism 314 is positioned between the upper and 316, 318. Thelower sections pump mechanism 314 includes ahousing 330 and amembrane 332. Thepump mechanism 314 may include one ormore valve assemblies 334 arranged to control movement of fluid into and from thepump mechanism 314. Thehousing 330 defines aninternal passageway 336 providing fluid communication between the one ormore valve assemblies 334. - An outer edge portion of the
membrane 332 is attached to thehousing 330 such that a seal is formed between themembrane 332 and thehousing 330. A center portion of themembrane 332 can be attached to theupper arm 326 of theresilient element 324. - The
pump mechanism 314 is movable between an original configuration (shown inFIG. 23 ) in which the volume of afluid chamber 338 defined between the bottom of themembrane 332 and thehousing 330 is zero or near-zero, and an expanded configuration (shown inFIG. 24 ) in which the volume of thefluid chamber 338 is increased. - During moment or rotation of the upper and
316, 318 away from one another (e.g., after heel strike), thelower sections pump mechanism 314 moves toward the expanded configuration. More particularly, theupper arm 326 of theresilient element 324 pulls the center portion of themembrane 332 away from thehousing 330, increasing the volume of thefluid chamber 338. This increase in volume of thefluid chamber 338 creates a vacuum in thepump mechanism 314, pulling fluid intopump mechanism 314 through the one ormore valve assemblies 334. - During moment or rotation of the upper and
316, 318 toward one another, thelower sections pump mechanism 314 moves toward the original configuration. More particular, theresilient element 324 forces thepump mechanism 314 toward the original configuration and decreases the volume of thefluid chamber 338. During the return of themembrane 332 toward thehousing 330, thepump mechanism 314 expels fluid in thefluid chamber 338 out of the one ormore valve assemblies 334. -
FIGS. 25 and 26 illustrate apump system 340 according to another embodiment that can be integrated in an adaptor system of a prosthetic device. As seen, thepump system 340 can comprise a prosthetic connector. Thepump system 340 includes apump mechanism 342, anupper section 344, and alower section 346. Theupper section 344 is arranged to move axially relative to thepump mechanism 342 and thelower section 346. According to a variation, theupper section 344 includes anadaptor 348 and thelower section 346 includes anadaptor 350. The 348, 350 are shown as male adaptors but can be female adaptors or any other suitable connectors. Theadaptors upper section 344 includes apin member 352 extending in a downward direction and a through-hole 360. Ahorizontal member 361 attached to thelower section 346 and protrudes through the through-hole 360 of theupper section 344 to help maintain theupper section 344 on thelower section 346. The through-hole 360 and thehorizontal member 361 can be sized and configured such that thehorizontal member 361 can move up and down within the through-hole 360. - The
pump mechanism 342 is attached to an upper surface of thelower section 346 and positioned within anopen cavity 354 defined by theupper section 344. Thepump mechanism 342 includes ahousing 356 and amembrane 358. Thepump mechanism 342 may include one or more valve assemblies similar to the other embodiments arranged to control movement of fluid into and from thepump mechanism 342. Thehousing 356 can define passageways providing fluid communication between the one or more valve assemblies. - The
housing 356 can define aninternal chamber 362 and throughopening 364 arranged to allow thepin member 352 to pass therethrough. Themembrane 358 is disposed in theinternal chamber 362. An outer edge of themembrane 358 of themembrane 358 is attached to the upper internal wall of theinternal chamber 362. A center portion of themembrane 358 can be attached to thepin member 352. - The
pump mechanism 342 is movable between an original configuration (shown inFIG. 25 ) in which the volume of afluid chamber 366 defined between the top of themembrane 358 and thehousing 356 is zero or near-zero, and an expanded configuration (shown inFIG. 26 ) in which the volume of thefluid chamber 366 is increased. - During weight bearing or when a load is applied to a socket or pylon, the
upper section 344 moves downward relative to thelower section 346, which, in turn, causes thepin member 352 to push the center portion of themembrane 358 away from the upper internal wall of theinternal chamber 362, increasing the volume of thefluid chamber 366. This increase in volume of thefluid chamber 366 creates a vacuum in thepump mechanism 342, pulling fluid into thepump mechanism 342. Weight bearing on a prosthetic device thus automatically creates a vacuum in thepump mechanism 342. - After weight bearing, the
pump mechanism 342 returns toward the original configuration as theupper section 344 moves upward relative to thelower section 346. This moves thepin member 352 in the upward direction, pulling themembrane 358 toward the upper internal wall of theinternal chamber 362 and expelling fluid within thefluid chamber 366 out of thepump assembly 342. - According to a variation, the
pump system 340 can include abiasing mechanism 368 arranged to bias thepump mechanism 342 toward the original configuration. Thebiasing mechanism 368 can comprise a spring member positioned between the bottom of themembrane 358 and the bottom of theinternal chamber 362. During weight bearing, thebiasing mechanism 368 can compress between themembrane 358 and the bottom of thehousing 356. After weight bearing, thebiasing mechanism 368 can decompress and stored energy in thebiasing mechanism 368 can drive thepump mechanism 342 toward the original configuration. - The
pump mechanism 342 can thus generate a vacuum in a socket during stance without undesirably affecting the functionality of the prosthetic foot or significantly increasing the bulk of the prosthetic device. In addition, thepump mechanism 342 can advantageously provide a dampening or shock absorbing effect to the prosthetic device, allowing for a more comfortable gait cycle. -
FIGS. 27 and 28 show avacuum suspension system 375 comprising apump system 370 and afoot cover 372 according to another embodiment. Thepump system 370 can include a pump mechanism 374 (shown inFIG. 28 ) disposed in aheel portion 376 of thefoot cover 372 and atube system 378 integrated with thefoot cover 372. Thetube system 378 is in fluid communication with thepump mechanism 374 and a socket. In an embodiment, thetube system 378 can extend from theheel portion 376 and through ahole 380 formed in a top portion of thefoot cover 372 defining a foot opening of thefoot cover 372. -
FIG. 28 is a cross section view of thevacuum suspension system 375. Thepump system 370 can be similar to thepump system 340 except the upper and 382, 384 do not include adaptors. As seen, thelower sections pump mechanism 374 utilizes the space within the body of thefoot cover 372 such that it does not add any additional volume to the prosthetic device or thefoot cover 372. In addition, thepump mechanism 374 can easily retrofit to existing foot covers and can be formed to be used with right or left foot covers. In addition, because thepump system 370 is formed within a thickness of thefoot cover 372, it reduces the likelihood of thepump system 370 undesirably affecting the functionality of a prosthetic foot, providing a more natural gait. - The
pump mechanism 374 can be in fluid communication with one ormore valve assemblies 385 associated with thetube system 378. Similar to the other embodiments, the one ormore valve assemblies 385 are arranged to control fluid flow into and out of thepump mechanism 374. - The
pump mechanism 374 is movable between an original configuration in which the volume of afluid chamber 386 defined between amembrane 388 and ahousing 390 is zero or near-zero, and an expanded configuration in which the volume of thefluid chamber 386 is increased. - During gait or when a load is applied to the
foot cover 372, theupper section 382 moves downward relative to thelower section 384, which, in turn, causes apin member 392 to push the center portion of themembrane 388 away from thehousing 390, increasing the volume of thefluid chamber 386. This increase in volume of thefluid chamber 386 creates a vacuum in thepump mechanism 374, pulling fluid into thepump mechanism 374. Weight bearing during gait thus automatically creates a vacuum in thepump mechanism 374. - After weight bearing, the
pump mechanism 374 returns toward the original configuration as theupper section 382 moves upward relative to thelower section 384. This moves thepin member 392 in the upward direction, pulling themembrane 388 toward the upper wall of thehousing 290 and expelling fluid within thefluid chamber 386 out of thepump assembly 374. - According to a variation, the
pump system 370 can include abiasing mechanism 394 arranged to bias thepump mechanism 374 toward the original configuration. The prosthetic device thus automatically creates a vacuum in thepump mechanism 374 during stance and automatically expels fluid to atmosphere during the swing phase. - While the pump system is generally described as being separate from a prosthetic foot, in other embodiments, the pump system can be adapted to be located on the prosthetic foot. For instance,
FIG. 29 shows avacuum suspension system 395 comprising apump system 396, aprosthetic foot 398, and afoot cover 402 according to another embodiment. - The
prosthetic foot 398 has anupper foot member 404 and alower foot member 406, which is disposed generally below theupper foot member 404. Theprosthetic foot 398 can have aheel member 408 that extends rearwardly to a free end and is disposed below at least a portion of thelower foot member 406. Theprosthetic foot 398 may be insertable into thefoot cover 402 as seen. In use, theprosthetic foot 398 can expand and compress. - The
pump system 396 includes apump mechanism 410 that is operable between theheel member 408 and asupport member 412 coupled to thefoot cover 402. Thepump mechanism 410 can be positioned in the space between theheel member 408 and the bottom surface of thelower foot member 406, making it unlikely that thepump mechanism 410 will negatively affect the functionality of theprosthetic foot 398. Further, thepump mechanism 410 can be formed to be used with both left and right prosthetic feet. - Similar to the other embodiments, the
pump mechanism 410 includes ahousing 414 containing two one- 416, 418, a membrane, and a connector. Theway valve assemblies valve assembly 416 only allows fluid to enter thepump mechanism 410 which can be in fluid communication with the cavity of a socket. Thevalve assembly 418 only allows fluid to be expelled out of thepump mechanism 410, preferably to atmosphere. The connector can be attached to the membrane and the heel member and can exhibit any suitable configuration. For instance, the connector may be a single fastener or screw, allowing thepump mechanism 410 to easily retrofit on a prosthetic foot. Thehousing 414 can be attached to thesupport member 412. - Similar to the previously described pump mechanisms, the
pump mechanism 410 relies upon deformation of the membrane to move between an original configuration in which the volume of a fluid chamber defined between an upper surface of the membrane and the bottom of thehousing 414 is zero or near-zero, and an expanded configuration in which the volume of the fluid chamber is increased. - The
housing 414 is arranged to surround the outer radial edge portion of the membrane and creates a seal with the membrane. The bottom of thehousing 414 defines a pair of openings which extend into thehousing 414 to form internal passageways to provide fluid communication between the fluid chamber and the two one- 416, 418.way valve assemblies - The
support member 412 can be coupled to thefoot cover 402. Thesupport member 412 can be any suitable member but is shown as a metal rod having across member 420 extending in a transverse direction across thefoot cover 402 above theheel member 408 andside members 422 extending downwardly along the sides of thefoot cover 402 toward the ground. According to a variation, thefoot cover 402 can include one or more reinforcements where theside members 422 extend along the sides of thefoot cover 402. The outer surface of thefoot cover 402 can defineslots 424 to receive theside members 422 of thesupport member 412, helping to maintain the position of thesupport member 412 on thefoot cover 402. This also lowers the profile of thesupport member 412, reducing the likelihood of thesupport member 412 interfering with footwear. - The
support member 412 can be pivotally connected to thehousing 414. For instance, thecross member 420 of thesupport member 412 can extend through a channel orhole 426 defined by thehousing 414 such that thehousing 414 is pivotally connected to thesupport member 412. - Upon heel strike, the
prosthetic foot 398 moves into expansion, which, in turn, causes theheel member 408 and thecross member 420 of thesupport member 412 to move apart. This separation causes thehousing 414 to pivot around thecross member 420, which, in turn, rotates thehousing 414 away from theheel member 408. - As the
housing 414 rotates away from theheel member 408, theheel member 408 pulls the membrane away from thehousing 414, increasing the volume of the fluid chamber. This increase in volume of the fluid chamber creates a vacuum in thepump mechanism 410, pulling fluid into thepump mechanism 410 through thevalve assembly 104. Expansion of the prosthetic foot thus automatically creates a vacuum in thepump mechanism 410. - As the
prosthetic foot 398 moves from heel strike through mid-stance and/or toe-off, theprosthetic foot 398 moves into compression. In compression, theheel member 408 and thecross member 420 of thesupport member 412 move toward one another, which, in turn, forces thepump mechanism 410 back toward its original configuration and decreases the volume of the fluid chamber to a zero or near-zero volume. - During the return of the membrane toward the
housing 414, thepump mechanism 410 expels fluid in the fluid chamber out of thevalve assembly 424. Because thepump mechanism 410 returns to its original configuration of zero or near-zero volume in the fluid chamber at mid-stance and/or toe-off, all fluid drawn into thepump mechanism 410 can be automatically expelled rather than relying on complete compression cycle of the pump to expel air drawn in from the socket as in the prior art. - According to a variation, the
pump system 396 can include abiasing mechanism 428 arranged to help thepump mechanism 410 return to its configuration. For instance, at least one band member having an elastomeric configuration can extend around theheel member 408 and thehousing 414, biasing thehousing 414 toward theheel member 408 and/or biasing thesupport member 412 and thefoot cover 402 together. - It will be appreciated that the prosthetic devices described herein are to be regarded as exemplary only, as any prosthetic device is possible. For instance, while the valve assemblies are described being attached to the housing, in other embodiments, one or more of the valve assemblies can be in fluid communication with the pump mechanism via a tubular fluid conduit. It will be appreciated that the housing can be made of any suitable material such as carbon fiber cloth, unidirectional composites, plastic, or metal. It will be appreciated that embodiments of the pump system described herein can include at least one sensor (e.g., a Hall Effect Sensor or gap-sensor) arranged to measure one or more relationships such as displacement or force between two components of the pump system. For instance, the at least one sensor can be incorporated in the
upper section 268 and/or thelower section 270 of thepump system 260. Output from the at least one sensor can be used to regulate pressure in a socket, for general sensory feedback information on gait and performance characteristics, or for another suitable purpose. - While various aspects and embodiments have been disclosed herein, other aspects and embodiments are contemplated. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting. Additionally, the words “including,” “having,” and variants thereof (e.g., “includes” and “has”) as used herein, including the claims, shall be open ended and have the same meaning as the word “comprising” and variants thereof (e.g., “comprise” and “comprises”).
Claims (20)
Priority Applications (1)
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| US17/573,364 US20220125607A1 (en) | 2015-05-21 | 2022-01-11 | Pump system |
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| US201562164646P | 2015-05-21 | 2015-05-21 | |
| US15/161,464 US9943421B2 (en) | 2015-05-21 | 2016-05-23 | Membrane pump system for use with a prosthetic system |
| US15/914,369 US10561508B2 (en) | 2015-05-21 | 2018-03-07 | Vacuum pump system with heel pump for a prosthetic leg |
| US16/738,780 US11246725B2 (en) | 2015-05-21 | 2020-01-09 | Pump system |
| US17/573,364 US20220125607A1 (en) | 2015-05-21 | 2022-01-11 | Pump system |
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| US15/914,369 Active 2036-08-01 US10561508B2 (en) | 2015-05-21 | 2018-03-07 | Vacuum pump system with heel pump for a prosthetic leg |
| US16/738,780 Active 2036-07-07 US11246725B2 (en) | 2015-05-21 | 2020-01-09 | Pump system |
| US17/573,364 Pending US20220125607A1 (en) | 2015-05-21 | 2022-01-11 | Pump system |
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| US15/161,464 Active US9943421B2 (en) | 2015-05-21 | 2016-05-23 | Membrane pump system for use with a prosthetic system |
| US15/914,369 Active 2036-08-01 US10561508B2 (en) | 2015-05-21 | 2018-03-07 | Vacuum pump system with heel pump for a prosthetic leg |
| US16/738,780 Active 2036-07-07 US11246725B2 (en) | 2015-05-21 | 2020-01-09 | Pump system |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10842653B2 (en) | 2007-09-19 | 2020-11-24 | Ability Dynamics, Llc | Vacuum system for a prosthetic foot |
| US9198780B2 (en) | 2012-02-14 | 2015-12-01 | Ossur Hf | Vacuum assisted suspension system |
| EP2844195B1 (en) | 2012-04-30 | 2019-03-20 | Össur HF | Prosthetic device, system and method for increasing vacuum attachment |
| WO2016003711A1 (en) | 2014-07-01 | 2016-01-07 | Ossur Hf | Pump mechanism for vacuum suspension system |
| US10028845B2 (en) * | 2015-01-08 | 2018-07-24 | Ossur Iceland Ehf | Pump mechanism |
| EP3302371B1 (en) | 2015-05-29 | 2024-10-16 | Ossur Iceland EHF | Pump system for use with a prosthetic device |
| US9925072B2 (en) | 2015-08-25 | 2018-03-27 | Ossur Iceland Ehf | Prosthetic system for removing fluid or sweat from inside of a liner with first and second independently sealed volumes |
| US10413429B2 (en) | 2015-08-27 | 2019-09-17 | Ossur Iceland Ehf | Pump system |
| US10512554B2 (en) | 2016-08-26 | 2019-12-24 | Ossur Iceland Ehf | Pump system |
| EP3547984B1 (en) | 2016-12-01 | 2022-05-18 | Össur Iceland EHF | Crutch with energy storage and energy return |
| USD851388S1 (en) * | 2017-05-31 | 2019-06-18 | Össur Iceland Ehf | Crutch |
| WO2019079143A1 (en) | 2017-10-20 | 2019-04-25 | Ossur Iceland Ehf | Heat and sweat management system |
| KR101994242B1 (en) * | 2018-01-05 | 2019-06-28 | 한국기계연구원 | Robot artificial leg |
| US11298249B2 (en) | 2018-06-07 | 2022-04-12 | Ossur Iceland Ehf | Prosthetic interface |
| US11253378B2 (en) | 2019-05-24 | 2022-02-22 | Tim Lee Stevenson | Hands-free apparatus to apply a liner to an amputated appendage |
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2016
- 2016-05-23 WO PCT/US2016/033707 patent/WO2016187608A1/en not_active Ceased
- 2016-05-23 EP EP16727907.4A patent/EP3297582B1/en active Active
- 2016-05-23 US US15/161,464 patent/US9943421B2/en active Active
-
2018
- 2018-03-07 US US15/914,369 patent/US10561508B2/en active Active
-
2020
- 2020-01-09 US US16/738,780 patent/US11246725B2/en active Active
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2022
- 2022-01-11 US US17/573,364 patent/US20220125607A1/en active Pending
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Also Published As
| Publication number | Publication date |
|---|---|
| US20200146851A1 (en) | 2020-05-14 |
| US11246725B2 (en) | 2022-02-15 |
| EP3297582B1 (en) | 2019-04-17 |
| WO2016187608A1 (en) | 2016-11-24 |
| EP3297582A1 (en) | 2018-03-28 |
| US10561508B2 (en) | 2020-02-18 |
| US20160338859A1 (en) | 2016-11-24 |
| US9943421B2 (en) | 2018-04-17 |
| US20180193173A1 (en) | 2018-07-12 |
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