US20220022723A1 - Space efficient flow controller for dishwasher - Google Patents
Space efficient flow controller for dishwasher Download PDFInfo
- Publication number
- US20220022723A1 US20220022723A1 US17/312,720 US201817312720A US2022022723A1 US 20220022723 A1 US20220022723 A1 US 20220022723A1 US 201817312720 A US201817312720 A US 201817312720A US 2022022723 A1 US2022022723 A1 US 2022022723A1
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- United States
- Prior art keywords
- water
- flow controller
- disc
- plate
- dishwasher
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- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 claims abstract description 155
- 238000005086 pumping Methods 0.000 claims abstract description 3
- 239000007921 spray Substances 0.000 claims description 29
- 238000007789 sealing Methods 0.000 description 10
- 239000012530 fluid Substances 0.000 description 8
- 238000005406 washing Methods 0.000 description 7
- 238000004891 communication Methods 0.000 description 3
- 230000005484 gravity Effects 0.000 description 2
- 238000005507 spraying Methods 0.000 description 2
- 238000000034 method Methods 0.000 description 1
- 239000007787 solid Substances 0.000 description 1
Images
Classifications
-
- A—HUMAN NECESSITIES
- A47—FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
- A47L—DOMESTIC WASHING OR CLEANING; SUCTION CLEANERS IN GENERAL
- A47L15/00—Washing or rinsing machines for crockery or tableware
- A47L15/42—Details
- A47L15/4214—Water supply, recirculation or discharge arrangements; Devices therefor
- A47L15/4219—Water recirculation
- A47L15/4221—Arrangements for redirection of washing water, e.g. water diverters to selectively supply the spray arms
Definitions
- the invention relates to a flow controller for a dishwasher.
- the present invention also relates to a dishwasher with a flow controller.
- a dishwasher typically comprises a sump disposed below a wash tub.
- the sump is configured to collect water from the dish washer.
- a number of nozzles are provided.
- the nozzles are typically provided on spray arms.
- Most dishwashers have at least an upper and a lower spray arm.
- the sump is connected to a circulating pump configured to pump water collected in the sump.
- the water pumped by the pump can be pumped via some distributing element that determines which nozzles are to spray water at a particular point in time.
- the distributing element can for example be a motor driven rotating disc configured to open and close outlets to the different spray arms.
- Such a distributing element can be termed a flow controller.
- U.S. Pat. No. 9,801,522 describes a rotating member driven by a motor to open and close holes for supplying water to spray nozzles.
- a flow controller for controlling water flow from a pump pumping water from a sump of a dish washer to a water conduit system of the dishwasher.
- the flow controller comprises a plate with openings forming water outlets to the water conduit system, and a disc rotatably arranged in relation to the plate.
- the disc comprises openings arranged for allowing closing and opening of the water outlets in the plate during rotation of the disc.
- the disc comprises at least two annulus shaped portions. The at least two annulus shaped portions are located radially displaced, and the openings are formed in the at least two annulus shaped portions.
- a space efficient configuration of openings in the disc can be obtained.
- the annulus shaped portions are typically arranged concentrically and next to each other to allow for a space efficient configuration where the flow controller can be made small.
- the plate also comprises at least two annulus shaped portions corresponding two the at least two annulus shaped portions of the disc.
- the plate By providing a matching structure in the plate, which plate typically can be circular as the rotating disc, the plate can contribute to keep the dimensions of the flow controller small. Thus, many water outlets can be opened and closed in a design that requires little space.
- the openings in the disc are shaped as annulus sectors and or the water outlets are shaped as annulus sectors.
- a high water flow can be obtained with a compact design.
- the openings providing water to the water conduit system can be relatively large and at the same time require a small amount of space. This is particularly advantageous when many water outlets are provided in the plate because otherwise the plate would need to be very large indeed.
- At least water outlet is connectable to a spray arm and wherein at least one water outlet is connectable to a water tank.
- a flow controller that is capable of distributing water to both spray arms, and potentially other water spray nozzles in the dishwasher and also to provide water to a water tank can be provided. Because the configuration of the flow controller can be small and can allow for many water outlets to be provided in the plate, it is possible to control water supply to other entities of the dishwasher via the flow controller. Hereby no separate valve for distributing water to for example a water tank is required.
- the invention also extends to a dish washer comprising a flow controller according to the above.
- the dishwasher can comprise at least one spray arm and at least one water tank. At least one water outlet in the plate can be connected to the at least one spray arm and at least one water outlet in the plate can be connected to the water tank.
- no separate valve for distributing water to the water tank is required. Instead the all water supply can be controlled via the rotating disc in the flow controller and space and components can be saved within the dishwasher.
- FIG. 1 a is a view of a dishwasher
- FIG. 1 b shows a general view of a water conduit system for a dishwasher
- FIG. 2 is a view of a sump
- FIG. 3 is a view of a flow controller
- FIG. 4 is a view of a flow controller with a disc for controlling water flow removed
- FIGS. 5 a and 5 b is a view illustrating an installed flow controller
- FIG. 6 is a view illustrating parts of a flow controller in accordance with an embodiment
- FIG. 7 is a view illustrating a rotatable disc for opening and closing water outlets of a flow controller in accordance with an embodiment.
- FIG. 1 a illustrates an example of a dishwasher 10 .
- a dishwasher 10 typically includes a tub 12 (partly broken away in FIG. 1 a to show internal details), having a plurality of walls (e.g., side wall 13 ) for forming an enclosure in which dishes, utensils, and other dishware may be placed for washing.
- the dishwasher 10 may also include slidable lower and upper racks (not shown) for holding the dishes, utensils, and dishware.
- a door 18 may be pivotably engaged with the tub 12 to selectively permit access to the interior of the tub 12 .
- the door 18 may be configured to close in order to cover and seal the tub 12 when the dishwasher is in operation.
- the tub 12 includes a sump 14 in which wash fluid or rinse fluid is collected, generally referred to as water, typically under the influence of gravity.
- the water may be pumped by a circulation pump 50 through a water conduit system 26 to one or more spray arms (e.g., lower spray arm 20 and/or middle spray arm 25 ) mounted in the interior of the tub 12 for spraying the wash fluid, under pressure, onto the dishes, utensils, and other dishware contained therein.
- spray arms e.g., lower spray arm 20 and/or middle spray arm 25
- the dishwasher 10 may also comprise a controller 40 that may be in communication with one or more of the operational components of the dishwasher 10 .
- the controller 40 may be in communication with the circulation pump 50 and may be configured to selectively operate the circulation pump 50 to pump wash fluid to at least one spray arm and/or spray nozzle.
- the controller 40 can control a flow controller as will be described in more detail below.
- the controller 40 may comprise a processor or other computing means such that operations can be performed in the dishwasher.
- the controller 40 may comprise a memory for storage of data such as routines for operation of the dishwasher 10 .
- the controller 40 may be housed in the lower end 22 of the dishwasher 10 .
- FIG. 1 b shows a general view of a water conduit system 26 for a dish washer.
- the water conduit system is provided to spray water into a wash tub housed inside the dish washer and configured to wash dishes and the like placed in the dish washer.
- a sump 14 is located below the wash tub and configured to collect water used for washing.
- a plurality of spray arms 25 are configured to spray water received when pumped from the sump 14 via the water distribution system 26 onto the dishes. While only one spray arm is depicted in FIG. 1 b any number of spray arms may be used depending on the configuration of the dish washer. Typically, two or three spray arms are located within the wash tub.
- the water distribution system can also be connected to a water tank 27 for storing hot water that for example can be used in a heat exchange process
- the sump 14 is typically positioned at the center of the bottom of the wash tube, and act to collect washing water that is used for washing.
- FIG. 2 depicts a sump.
- the sump 14 comprises a flow controller 30 configured to receive pressurized water from the circulating pump (not shown).
- the circulating pump is configured to pump washing water collected in the sump 14 to circulate the washing water into the washing machine.
- the flow controller 30 acts to distribute water to the water distribution system in accordance with some programmed setting of the dish washer so that water is released at the desired locations in the dish washer.
- an exemplary flow controller 30 is shown.
- the flow controller 30 can receive pressurized water at an inlet 31 and pressurized water can exit the flow controller via a number of water outlets 32 .
- two water outlets 32 are shown, but any number of water outlets can be provided.
- the water outlets are connectable to spray arms or other water nozzles.
- at least one of the water outlets 32 is not connected to a spray arm or a water nozzle.
- Such a water outlet can be connectable to a water tank for storing hot water.
- the hot water in the tank can be used in a heat exchanger.
- the flow controller can have a housing 33 having any suitable shape.
- the housing 33 has a generally circular shape and in particular the top part 34 of the housing 33 can be made circular.
- the flow controller can also comprise a drain outlet 35 as will be described in more detail below.
- the flow controller 30 is controlled to distribute pressurized water to some desired configuration of water outlets 32 by opening and closing the different water outlets 32 in some desired configuration. This can be obtained by rotating a disc with openings in the flow controller.
- a flow controller 30 is shown together with a disc 36 that can be made to rotate inside the flow controller 30 . By rotating the disc 36 , openings 37 in the disc 36 can allow for pressurized water to flow to the water outlets 32 . Otherwise, when no opening 37 is placed at a particular water outlet 32 , that particular water outlet 32 is closed and no pressurized water is fed to that particular water outlet 32 .
- FIG. 5 a a cross sectional view of the flow controller 30 is shown.
- the flow controller 30 can be arranged with a sealing 38 to seal the flow controller with pressurized water from the sump 14 .
- FIG. 5 b the rotatable disc 36 is seen in position when interacting with a plate 39 in which plate 39 the water outlets 32 and a drain outlet 35 is formed.
- a motor (not shown) can be provided to rotate the disc.
- the sealing 38 can be made circular when the housing 33 and in particular the top part 34 of the housing is made circular.
- the sealing 38 can rest on a flange 40 provided on the top part 34 of the housing 33 .
- FIG. 5 a Further illustrated in FIG. 5 a is the water flow inside the flow controller 30 .
- pressurized water is illustrated using solid arrows.
- Non-pressurized water is illustrated with dashed arrows.
- pressurized water entering the flow controller 30 via the inlet 31 can exit via an open water outlet such as water outlet 32 a in FIG. 5 a .
- a closed water outlet, such as water outlet 32 b can return non-pressurized water to the sump. This can be performed by providing a cavity 41 between the disc 36 and the plate 39 .
- the cavity 41 can provide a fluid connection between a water outlet 32 b closed by the disc 36 and a drain outlet 35 .
- any water on top of the plate 39 will return to the sump since the top side of the plate 39 is in fluid connection with the sump and water can return by gravity force to the sump which typically is located at a low position in the dish washer.
- Any number of cavities can be formed in this way.
- the cavities 41 can be formed as channels and arranged to lead water radially from a water outlet 32 to the drain outlet 35 .
- water in a water outlet from the flow controller 30 not provided with pressurized water can return to the sump and not stay in a water conduit not currently being supplied with pressurized water.
- the cavity 41 can be formed in the disc 36 .
- the cavity 41 is formed in the plate 39 .
- the cavity is formed both in the disc 36 and in the plate 39 .
- the flow controller 30 is shown when installed together with the sump 14 .
- the flow controller is installed in the sump 14 and the housing 33 of the flow controller 30 is fitted against the sump 14 .
- the housing 33 of the flow controller 30 can be fitted into the sump such that a part of the sump 14 will completely circumscribe the housing 33 .
- the sealing 38 that can be arranged between the housing 33 and the sump 14 will prevent any water exiting the flow controller 30 to enter a dry space of the dishwasher generally marked with reference 50 in FIG. 5 b .
- the sealing 38 prevents water from leaking to the space 50 when the flow controller 30 is fitted against the sump with the sealing 38 arranged between the housing 33 and the sump 14 .
- the sealing 38 can therefore prevent water on the topside of the flow controller to enter the space 50 and any water in the top side of the flow controller will return to the sump 14 .
- FIG. 6 another embodiment of a flow controller 30 is depicted.
- the disc 36 can, for example, be made to rotate by means of a motor driven arm 44 that co-operates with a protruding part 47 of the disc 36 to rotate the disc with respect to the plate. 39 .
- the plate 39 can in accordance with some embodiments be circular and have essentially the same size as the disc 36 .
- the disc 36 and the plate 39 can comprise annular portions to allow for an efficient use of space when opening and closing the water outlets.
- the plate 39 has three annular portions. A first portion where the drain outlet is located and two outer annular portions 48 , 49 where the water outlets are located.
- the annular portions 48 , 49 of the plate 39 can correspond to annular portions of the disc, see below in conjunction with FIG. 7 .
- the openings forming the water outlets 32 can be shaped as annulus sectors.
- the disc 36 is shown in more detail.
- the disc 36 is provided with openings 37 .
- the openings 37 can be provided on an annulus shaped portion 45 .
- the openings can advantageously be shaped as annulus sectors in the disc 36 .
- multiple, at least two annulus shaped portions 45 , 46 are provided.
- the at least two annulus shaped portions 45 , 46 are typically located radially displaced.
- the at least two annulus shaped portions thereby form ring shaped portions located next to each other.
- the openings 37 are formed in the at least two annulus shaped portions.
- the openings 37 are shaped as annulus sectors.
- the drain outlet 35 is closest to the center or at the center at a first, inner, radius, and can be in fluid communication with the five water outlets 32 when these are closed.
- the water outlets to a middle and to a top spray-arm can be placed at a second, intermediate, radius.
- the water outlets to the spray arm are preferably larger than the other water outlets to allow for a high water flow. Hence these outlets on the second radius can be large compared to the other water outlets.
- the water outlet to a bottom spray-arm and to other water outlets can be located at a third outmost radius. The water outlets on the largest radius can be smaller than the water outlets on the intermediate radius.
- the flow controller 30 can be configured such that the water outlets 32 at the largest radius is provided with a water outlet that is half the angular width of the water outlets at a radius inside the largest radius, such as the intermediate radius in the example above.
- there are 8 positions were the openings are fully opened or closed and the smaller outlets can have different combinations of openings together with the 8 positions of the two larger outlets.
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- Engineering & Computer Science (AREA)
- Water Supply & Treatment (AREA)
- Washing And Drying Of Tableware (AREA)
Abstract
A flow controller for controlling water flow from a pump pumping water from a sump of a dish washer to a water conduit system of the dishwasher is provided. The flow controller comprises a plate with openings forming water outlets to the water conduit system, and a disc rotatably arranged in relation to the plate. The disc comprises openings arranged for allowing closing and opening of the water outlets in the plate during rotation of the disc. The disc comprises at least two annulus shaped portions. The at least two annulus shaped portions are located radially displaced, and the openings are formed in the at least two annulus shaped portions.
Description
- The invention relates to a flow controller for a dishwasher. The present invention also relates to a dishwasher with a flow controller.
- A dishwasher typically comprises a sump disposed below a wash tub. The sump is configured to collect water from the dish washer. In the dishwasher a number of nozzles are provided. The nozzles are typically provided on spray arms. Most dishwashers have at least an upper and a lower spray arm. The sump is connected to a circulating pump configured to pump water collected in the sump. The water pumped by the pump can be pumped via some distributing element that determines which nozzles are to spray water at a particular point in time. Thus, by configuring the distributing element in a particular way the water can be pumped by the circulating pump to be sprayed via a determined set of spray arms. Accordingly, it is possible to independently perform an intensive wash mode of spraying water only through one of the spray arms. The distributing element can for example be a motor driven rotating disc configured to open and close outlets to the different spray arms. Such a distributing element can be termed a flow controller.
- For example, U.S. Pat. No. 9,801,522 describes a rotating member driven by a motor to open and close holes for supplying water to spray nozzles.
- There is a constant desire to improve various aspects of a flow controller. Hence there is a need for an improved flow controller.
- It is an object of the present invention to provide an improved flow controller.
- This object and/or others are obtained by a device as set out in the appended claims.
- In accordance with a first aspect of the invention a flow controller for controlling water flow from a pump pumping water from a sump of a dish washer to a water conduit system of the dishwasher is provided. The flow controller comprises a plate with openings forming water outlets to the water conduit system, and a disc rotatably arranged in relation to the plate. The disc comprises openings arranged for allowing closing and opening of the water outlets in the plate during rotation of the disc. The disc comprises at least two annulus shaped portions. The at least two annulus shaped portions are located radially displaced, and the openings are formed in the at least two annulus shaped portions. Hereby a space efficient configuration of openings in the disc can be obtained. This is because the open and closed portions of the disc that is used to open and close the water outlets are possible to locate such that a very limited amount of space is required even for a large number of water outlets in the plate. The annulus shaped portions are typically arranged concentrically and next to each other to allow for a space efficient configuration where the flow controller can be made small.
- In accordance with one embodiment, the plate also comprises at least two annulus shaped portions corresponding two the at least two annulus shaped portions of the disc. By providing a matching structure in the plate, which plate typically can be circular as the rotating disc, the plate can contribute to keep the dimensions of the flow controller small. Thus, many water outlets can be opened and closed in a design that requires little space.
- In accordance with one embodiment, the openings in the disc are shaped as annulus sectors and or the water outlets are shaped as annulus sectors. Hereby a high water flow can be obtained with a compact design. Thus, the openings providing water to the water conduit system can be relatively large and at the same time require a small amount of space. This is particularly advantageous when many water outlets are provided in the plate because otherwise the plate would need to be very large indeed.
- In accordance with one embodiment, at least water outlet is connectable to a spray arm and wherein at least one water outlet is connectable to a water tank. Hereby a flow controller that is capable of distributing water to both spray arms, and potentially other water spray nozzles in the dishwasher and also to provide water to a water tank can be provided. Because the configuration of the flow controller can be small and can allow for many water outlets to be provided in the plate, it is possible to control water supply to other entities of the dishwasher via the flow controller. Hereby no separate valve for distributing water to for example a water tank is required.
- The invention also extends to a dish washer comprising a flow controller according to the above. The dishwasher can comprise at least one spray arm and at least one water tank. At least one water outlet in the plate can be connected to the at least one spray arm and at least one water outlet in the plate can be connected to the water tank. Hereby no separate valve for distributing water to the water tank is required. Instead the all water supply can be controlled via the rotating disc in the flow controller and space and components can be saved within the dishwasher.
- The invention will now be described in more detail, by way of example, and with reference to the accompanying drawings, in which:
-
FIG. 1a is a view of a dishwasher, -
FIG. 1b shows a general view of a water conduit system for a dishwasher, -
FIG. 2 is a view of a sump, -
FIG. 3 is a view of a flow controller, -
FIG. 4 is a view of a flow controller with a disc for controlling water flow removed, -
FIGS. 5a and 5b is a view illustrating an installed flow controller, -
FIG. 6 is a view illustrating parts of a flow controller in accordance with an embodiment, and -
FIG. 7 is a view illustrating a rotatable disc for opening and closing water outlets of a flow controller in accordance with an embodiment. - The invention will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments of the invention are shown. The invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. For example, like or similar components of different embodiments can be exchanged between different embodiments. Some components can be omitted from different embodiments. Like numbers refer to like elements throughout the description.
-
FIG. 1a illustrates an example of adishwasher 10. Such adishwasher 10 typically includes a tub 12 (partly broken away inFIG. 1a to show internal details), having a plurality of walls (e.g., side wall 13) for forming an enclosure in which dishes, utensils, and other dishware may be placed for washing. Thedishwasher 10 may also include slidable lower and upper racks (not shown) for holding the dishes, utensils, and dishware. Adoor 18 may be pivotably engaged with thetub 12 to selectively permit access to the interior of thetub 12. Thedoor 18 may be configured to close in order to cover and seal thetub 12 when the dishwasher is in operation. - The
tub 12 includes asump 14 in which wash fluid or rinse fluid is collected, generally referred to as water, typically under the influence of gravity. The water may be pumped by acirculation pump 50 through awater conduit system 26 to one or more spray arms (e.g., lower spray arm 20 and/or middle spray arm 25) mounted in the interior of thetub 12 for spraying the wash fluid, under pressure, onto the dishes, utensils, and other dishware contained therein. - The
dishwasher 10 may also comprise acontroller 40 that may be in communication with one or more of the operational components of thedishwasher 10. For example, thecontroller 40 may be in communication with thecirculation pump 50 and may be configured to selectively operate thecirculation pump 50 to pump wash fluid to at least one spray arm and/or spray nozzle. In accordance with some embodiments thecontroller 40 can control a flow controller as will be described in more detail below. In some embodiments, thecontroller 40 may comprise a processor or other computing means such that operations can be performed in the dishwasher. Additionally, or alternatively, thecontroller 40 may comprise a memory for storage of data such as routines for operation of thedishwasher 10. In some embodiments, thecontroller 40 may be housed in the lower end 22 of thedishwasher 10. -
FIG. 1b shows a general view of awater conduit system 26 for a dish washer. The water conduit system is provided to spray water into a wash tub housed inside the dish washer and configured to wash dishes and the like placed in the dish washer. Asump 14 is located below the wash tub and configured to collect water used for washing. - In the wash tub, a plurality of
spray arms 25 are configured to spray water received when pumped from thesump 14 via thewater distribution system 26 onto the dishes. While only one spray arm is depicted inFIG. 1b any number of spray arms may be used depending on the configuration of the dish washer. Typically, two or three spray arms are located within the wash tub. The water distribution system can also be connected to awater tank 27 for storing hot water that for example can be used in a heat exchange process - The
sump 14 is typically positioned at the center of the bottom of the wash tube, and act to collect washing water that is used for washing.FIG. 2 depicts a sump. Thesump 14 comprises aflow controller 30 configured to receive pressurized water from the circulating pump (not shown). The circulating pump is configured to pump washing water collected in thesump 14 to circulate the washing water into the washing machine. Theflow controller 30 acts to distribute water to the water distribution system in accordance with some programmed setting of the dish washer so that water is released at the desired locations in the dish washer. - In
FIG. 3 , anexemplary flow controller 30 is shown. Theflow controller 30 can receive pressurized water at aninlet 31 and pressurized water can exit the flow controller via a number ofwater outlets 32. InFIG. 3 twowater outlets 32 are shown, but any number of water outlets can be provided. In accordance with some embodiments the water outlets are connectable to spray arms or other water nozzles. In accordance with some embodiments at least one of thewater outlets 32 is not connected to a spray arm or a water nozzle. Such a water outlet can be connectable to a water tank for storing hot water. The hot water in the tank can be used in a heat exchanger. The flow controller can have ahousing 33 having any suitable shape. In accordance with some embodiments thehousing 33 has a generally circular shape and in particular thetop part 34 of thehousing 33 can be made circular. The flow controller can also comprise adrain outlet 35 as will be described in more detail below. - The
flow controller 30 is controlled to distribute pressurized water to some desired configuration ofwater outlets 32 by opening and closing thedifferent water outlets 32 in some desired configuration. This can be obtained by rotating a disc with openings in the flow controller. InFIG. 4 aflow controller 30 is shown together with adisc 36 that can be made to rotate inside theflow controller 30. By rotating thedisc 36,openings 37 in thedisc 36 can allow for pressurized water to flow to thewater outlets 32. Otherwise, when noopening 37 is placed at aparticular water outlet 32, thatparticular water outlet 32 is closed and no pressurized water is fed to thatparticular water outlet 32. - In
FIG. 5a , a cross sectional view of theflow controller 30 is shown. Theflow controller 30 can be arranged with a sealing 38 to seal the flow controller with pressurized water from thesump 14. This is shown in more detail in conjunction withFIG. 5b . InFIG. 5a therotatable disc 36 is seen in position when interacting with aplate 39 in whichplate 39 thewater outlets 32 and adrain outlet 35 is formed. To rotate the disc, a motor (not shown) can be provided. The sealing 38 can be made circular when thehousing 33 and in particular thetop part 34 of the housing is made circular. The sealing 38 can rest on aflange 40 provided on thetop part 34 of thehousing 33. By sealing thehousing 33 of theflow controller 30, there is no need to provide sealings for theindividual water outlets 32, whereby the complexity of the flow controller can be reduced. Also, it becomes easier to reconfigure the flow controller by adding or altering water outlets in an existing configuration of water outlets. This is because only theplate 39 and therotating disc 36 needs to be reconfigured. - Further illustrated in
FIG. 5a is the water flow inside theflow controller 30. InFIG. 5a pressurized water is illustrated using solid arrows. Non-pressurized water is illustrated with dashed arrows. Thus, pressurized water entering theflow controller 30 via theinlet 31 can exit via an open water outlet such aswater outlet 32 a inFIG. 5a . A closed water outlet, such aswater outlet 32 b can return non-pressurized water to the sump. This can be performed by providing acavity 41 between thedisc 36 and theplate 39. Thecavity 41 can provide a fluid connection between awater outlet 32 b closed by thedisc 36 and adrain outlet 35. Hereby water from theclosed outlet 32 b can return to the sump via thecavity 41 and thedrain outlet 35. The drain outlet is in fluid connection with the sump. In the example ofFIG. 5a , any water on top of theplate 39 will return to the sump since the top side of theplate 39 is in fluid connection with the sump and water can return by gravity force to the sump which typically is located at a low position in the dish washer. Any number of cavities can be formed in this way. Thecavities 41 can be formed as channels and arranged to lead water radially from awater outlet 32 to thedrain outlet 35. Hereby water in a water outlet from theflow controller 30 not provided with pressurized water can return to the sump and not stay in a water conduit not currently being supplied with pressurized water. This in turn can obtain a lower water consumption in the dish washer since no water is left in an unused water conduit. Thecavity 41 can be formed in thedisc 36. In accordance with some embodiments thecavity 41 is formed in theplate 39. In yet another embodiment the cavity is formed both in thedisc 36 and in theplate 39. - In
FIG. 5b , theflow controller 30 is shown when installed together with thesump 14. The flow controller is installed in thesump 14 and thehousing 33 of theflow controller 30 is fitted against thesump 14. In particular thehousing 33 of theflow controller 30 can be fitted into the sump such that a part of thesump 14 will completely circumscribe thehousing 33. In other words, there can be a wall of thesump 14 all around thehousing 33 of the flow controller where the sealing 38 is arranged. Further, the sealing 38 that can be arranged between thehousing 33 and thesump 14 will prevent any water exiting theflow controller 30 to enter a dry space of the dishwasher generally marked withreference 50 inFIG. 5b . Thus, all water exiting theflow controller 30 will end up in thesump 14 because the sealing 38 prevents water from leaking to thespace 50 when theflow controller 30 is fitted against the sump with the sealing 38 arranged between thehousing 33 and thesump 14. The sealing 38 can therefore prevent water on the topside of the flow controller to enter thespace 50 and any water in the top side of the flow controller will return to thesump 14. - In
FIG. 6 another embodiment of aflow controller 30 is depicted. InFIG. 6 only theplate 39 and thedisc 36 are shown. The other parts of theflow controller 30 can for example be similar to the embodiment described in conjunction withFIG. 5 . In the embodiment ofFIG. 6 Thedisc 36 can, for example, be made to rotate by means of a motor drivenarm 44 that co-operates with a protrudingpart 47 of thedisc 36 to rotate the disc with respect to the plate. 39. Theplate 39 can in accordance with some embodiments be circular and have essentially the same size as thedisc 36. By opening and closing thedifferent water outlets 32 by rotating thedisc 36, water can be supplied to any desired combination of water outlets. Thedisc 36 and theplate 39 can comprise annular portions to allow for an efficient use of space when opening and closing the water outlets. InFIG. 6 theplate 39 has three annular portions. A first portion where the drain outlet is located and two outer 48, 49 where the water outlets are located. Theannular portions 48, 49 of theannular portions plate 39 can correspond to annular portions of the disc, see below in conjunction withFIG. 7 . The openings forming thewater outlets 32 can be shaped as annulus sectors. - In
FIG. 7 thedisc 36 is shown in more detail. Thedisc 36 is provided withopenings 37. Theopenings 37 can be provided on an annulus shapedportion 45. The openings can advantageously be shaped as annulus sectors in thedisc 36. In accordance with some embodiments multiple, at least two annulus shaped 45, 46, are provided. The at least two annulus shapedportions 45, 46 are typically located radially displaced. The at least two annulus shaped portions thereby form ring shaped portions located next to each other. Theportions openings 37 are formed in the at least two annulus shaped portions. In accordance with one embodiment theopenings 37 are shaped as annulus sectors. - In the embodiment depicted in
FIGS. 6 and 7 there are six different outlets, which are placed at three different radii of theflow controller 30. Thedrain outlet 35 is closest to the center or at the center at a first, inner, radius, and can be in fluid communication with the fivewater outlets 32 when these are closed. - The water outlets to a middle and to a top spray-arm can be placed at a second, intermediate, radius. The water outlets to the spray arm are preferably larger than the other water outlets to allow for a high water flow. Hence these outlets on the second radius can be large compared to the other water outlets. The water outlet to a bottom spray-arm and to other water outlets can be located at a third outmost radius. The water outlets on the largest radius can be smaller than the water outlets on the intermediate radius.
- In accordance with some embodiments the
flow controller 30 can be configured such that thewater outlets 32 at the largest radius is provided with a water outlet that is half the angular width of the water outlets at a radius inside the largest radius, such as the intermediate radius in the example above. - In the exemplary embodiment of
FIGS. 6 and 7 , the outer smaller outlet can go from open to closed in 30 deg=12 on/off per full turn. The two openings at the intermediate radius can go from open to closed in 60 deg=6 on/off full turn. In an exemplary embodiment with a 1/12 section between the two larger openings there are 8 positions were the openings are fully opened or closed and the smaller outlets can have different combinations of openings together with the 8 positions of the two larger outlets.
Claims (7)
1. A flow controller for controlling water flow from a pump pumping water from a sump of a dish washer to a water conduit system of the dishwasher, the flow controller comprising:
a plate with openings forming water outlets to the water conduit system, and
a disc rotatably arranged in relation to the plate, the disc comprising openings arranged for allowing closing and opening of the water outlets in the plate during rotation of the disc;
wherein the disc comprises at least two annulus shaped portions, the at least two annulus shaped portions being located radially displaced, and wherein the openings are formed in said at least two annulus shaped portions.
2. The flow controller according to claim 1 , wherein the plate also comprises at least two annulus shaped portions corresponding to the at least two annulus shaped portions of the disc.
3. The flow controller according to claim 1 , wherein the openings in the disc are shaped as annulus sectors.
4. The flow controller according to claim 1 , wherein the water outlets are shaped as annulus sectors.
5. The flow controller according to claim 1 , wherein at least one water outlet is configured to be connected to a spray arm and wherein at least one water outlet is configured to be connected to a water tank.
6. A dishwasher comprising the flow controller according to claim 1 .
7. The dishwasher according to claim 6 , the dishwasher comprising at least one spray arm and at least one water tank, wherein at least one water outlet in the plate is connected to said at least one spray arm and wherein at least one water outlet in the plate is connected to said water tank.
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/EP2018/086211 WO2020125997A1 (en) | 2018-12-20 | 2018-12-20 | Space efficient flow controller for dishwasher |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20220022723A1 true US20220022723A1 (en) | 2022-01-27 |
Family
ID=64900945
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US17/312,720 Abandoned US20220022723A1 (en) | 2018-12-20 | 2018-12-20 | Space efficient flow controller for dishwasher |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20220022723A1 (en) |
| EP (1) | EP3897336A1 (en) |
| AU (1) | AU2018454394A1 (en) |
| WO (1) | WO2020125997A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20250049287A1 (en) * | 2021-12-15 | 2025-02-13 | Electrolux Appliances Aktiebolag | Dishwasher including a flow controller assembly |
| US20250049286A1 (en) * | 2021-12-15 | 2025-02-13 | Electrolux Appliances Aktiebolag | Dishwasher including a flow controller assembly |
| CN118401160A (en) * | 2021-12-15 | 2024-07-26 | 伊莱克斯电器股份公司 | Dishwasher comprising a flow controller assembly |
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|---|---|---|---|---|
| US20110290282A1 (en) * | 2010-06-01 | 2011-12-01 | Tae Hee Lee | Dish washer and method of controlling the same |
| US20130000762A1 (en) * | 2011-06-28 | 2013-01-03 | General Electric Company | Fluid flow diverter for a dishwasher appliance |
| US20130319482A1 (en) * | 2012-06-01 | 2013-12-05 | Whirlpool Corporation | Heating air for drying dishes in a dishwasher using an in-line wash liquid heater |
| US20140069462A1 (en) * | 2012-09-13 | 2014-03-13 | Whirlpool Corporation | Dishwasher with controlled rotation of lower spray arm |
| US20150090306A1 (en) * | 2013-09-30 | 2015-04-02 | General Electric Company | Spray control assembly for a dishwashing appliance with directional control for spray arms |
| US20160066765A1 (en) * | 2014-09-10 | 2016-03-10 | General Electric Company | Turbine fluid diverter for an appliance |
| US20170172374A1 (en) * | 2010-10-21 | 2017-06-22 | Whirlpool Corporation | Dishwasher with controlled rotation of lower spray arm |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102007056922A1 (en) * | 2007-11-27 | 2009-05-28 | BSH Bosch und Siemens Hausgeräte GmbH | Water-carrying household appliance with a water diverter |
| ITTO20110162A1 (en) * | 2011-02-25 | 2012-08-26 | Indesit Co Spa | SELECTOR FOR A HOME WASHING MACHINE AND DOMESTIC WASHING MACHINE PROVIDED WITH THIS SELECTOR |
| EP2820997B1 (en) * | 2012-07-20 | 2016-04-06 | Indesit Company S.p.A. | Household dish-washing machine |
| US10638910B2 (en) * | 2013-06-21 | 2020-05-05 | Whirlpool Corporation | Method of variable filtration in a dishwasher |
| US9743822B2 (en) * | 2015-09-10 | 2017-08-29 | Haier Us Appliance Solutions, Inc. | Variable position diverter for an appliance |
-
2018
- 2018-12-20 EP EP18826667.0A patent/EP3897336A1/en not_active Withdrawn
- 2018-12-20 AU AU2018454394A patent/AU2018454394A1/en not_active Abandoned
- 2018-12-20 WO PCT/EP2018/086211 patent/WO2020125997A1/en not_active Ceased
- 2018-12-20 US US17/312,720 patent/US20220022723A1/en not_active Abandoned
Patent Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20110290282A1 (en) * | 2010-06-01 | 2011-12-01 | Tae Hee Lee | Dish washer and method of controlling the same |
| US20170172374A1 (en) * | 2010-10-21 | 2017-06-22 | Whirlpool Corporation | Dishwasher with controlled rotation of lower spray arm |
| US20130000762A1 (en) * | 2011-06-28 | 2013-01-03 | General Electric Company | Fluid flow diverter for a dishwasher appliance |
| US20130319482A1 (en) * | 2012-06-01 | 2013-12-05 | Whirlpool Corporation | Heating air for drying dishes in a dishwasher using an in-line wash liquid heater |
| US20140069462A1 (en) * | 2012-09-13 | 2014-03-13 | Whirlpool Corporation | Dishwasher with controlled rotation of lower spray arm |
| US20150090306A1 (en) * | 2013-09-30 | 2015-04-02 | General Electric Company | Spray control assembly for a dishwashing appliance with directional control for spray arms |
| US20160066765A1 (en) * | 2014-09-10 | 2016-03-10 | General Electric Company | Turbine fluid diverter for an appliance |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3897336A1 (en) | 2021-10-27 |
| AU2018454394A1 (en) | 2021-05-27 |
| WO2020125997A1 (en) | 2020-06-25 |
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