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WO2023165071A1 - Cage de fusion intersomatique, procédé et système de fabrication associés, dispositif de fabrication intelligent, et support - Google Patents

Cage de fusion intersomatique, procédé et système de fabrication associés, dispositif de fabrication intelligent, et support Download PDF

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Publication number
WO2023165071A1
WO2023165071A1 PCT/CN2022/106758 CN2022106758W WO2023165071A1 WO 2023165071 A1 WO2023165071 A1 WO 2023165071A1 CN 2022106758 W CN2022106758 W CN 2022106758W WO 2023165071 A1 WO2023165071 A1 WO 2023165071A1
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WIPO (PCT)
Prior art keywords
target
intervertebral fusion
fusion device
intervertebral
manufacturing
Prior art date
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Ceased
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PCT/CN2022/106758
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English (en)
Chinese (zh)
Inventor
翁远志
杨强
齐欢
吴天驰
吕维加
马信龙
李朝阳
孙逊
狄鸣远
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Bones'technology Ltd Co
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Bones'technology Ltd Co
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Publication of WO2023165071A1 publication Critical patent/WO2023165071A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS 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
    • A61F2/00Filters 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
    • A61F2/02Prostheses implantable into the body
    • A61F2/30Joints
    • A61F2/44Joints for the spine, e.g. vertebrae, spinal discs
    • A61F2/4455Joints for the spine, e.g. vertebrae, spinal discs for the fusion of spinal bodies, e.g. intervertebral fusion of adjacent spinal bodies, e.g. fusion cages

Definitions

  • the invention relates to the field of biomedicine, in particular to an intervertebral fusion device and its manufacturing method, system, intelligent manufacturing equipment and media.
  • intervertebral fusion device Since the intervertebral fusion device was used for spinal fusion and achieved success, the intervertebral fusion device has been widely used clinically and relieved pain for many patients. But present intervertebral fusion device is mass-produced by manufacturer according to fixed model and size, and its shape, size are fixed. However, the structure, size, and bone density of each patient's intervertebral disc and adjacent upper and lower endplates are different, and the surgically implanted intervertebral fusion device cannot perfectly meet the needs of the patient.
  • the technical problem to be solved by the present invention is that the intervertebral fusion device cannot perfectly meet the needs of patients. Aiming at the above-mentioned defects in the prior art, an intervertebral fusion device and its manufacturing method, system, intelligent manufacturing equipment and medium are provided, which have more advantages Good biomechanical matching performance can speed up fusion while reducing the risk of vertebral body stress deformation.
  • the technical solution adopted by the present invention to solve the technical problem is to provide a manufacturing method of an intervertebral fusion device, comprising:
  • the step of obtaining the target porosity matched with the reference Young's modulus includes.
  • the target porosity is obtained according to the following formula.
  • E represents the reference Young's modulus
  • Esolid represents the Young's modulus of the structure itself when no hole exists
  • Porosity represents the target porosity
  • a and b are constants.
  • the step of generating the target intervertebral fusion cage structure according to the size information of the intervertebral fusion cage and the target porosity includes.
  • the step of generating the porous framework structure with the target porosity includes.
  • a three-dimensional polycrystalline structure with the target porosity is generated by a method for generating a polyhedral unit structure, and a boundary line of the three-dimensional polycrystalline structure is geometrically thickened to obtain the porous skeleton structure.
  • the step of performing edge adjustment on the porous skeleton structure according to the size information of the intervertebral fusion cage to generate a target intervertebral fusion cage structure includes.
  • An intervertebral fusion frame that meets clinical needs is generated according to the size information of the intervertebral fusion.
  • porous skeleton structure and the frame of the intervertebral cage are fused into the target intervertebral cage structure through Boolean operations.
  • the step of acquiring size information of the intervertebral cage according to the medical image data includes.
  • the height information and length information of the area to be implanted are obtained according to the medical image data, and the size information of the intervertebral cage is obtained according to the height information and the length information.
  • the step of generating the frame of the intervertebral fusion device that satisfies the size information of the intervertebral fusion device it includes.
  • the step of generating the target intervertebral fusion device according to the structure of the target intervertebral fusion device includes.
  • the manufacturing file is generated according to the structure of the target intervertebral fusion device, and the manufacturing file is imported into additive manufacturing software to generate the target intervertebral fusion device through additive manufacturing.
  • the technical solution adopted by the present invention to solve the technical problem is to provide a manufacturing system of an intervertebral fusion device, comprising:
  • An acquisition module configured to acquire medical image data of a target patient, and acquire a reference bone density value of the region of interest according to the medical image data, where the region of interest includes the position to be implanted and its adjacent region.
  • a structure module configured to obtain a reference Young's modulus according to the reference bone density value, obtain a target porosity matching the reference Young's modulus, and generate a porous skeleton structure with the target porosity.
  • the generation module is used to obtain the size information of the intervertebral fusion device according to the medical image data, and adjust the edge of the porous skeleton structure according to the size information of the intervertebral fusion device to generate a target intervertebral fusion device structure.
  • the interbody cage structure creates the target interbody cage.
  • the technical solution adopted by the present invention to solve the technical problem is to provide an intervertebral fusion device, which includes a porous skeleton structure, and the intervertebral fusion device is manufactured and obtained through the above-mentioned method.
  • the technical solution adopted by the present invention to solve the technical problem is: to provide a storage medium storing a computer program, and when the computer program is executed by a processor, the processor executes the steps of the above-mentioned method.
  • the technical solution adopted by the present invention to solve the technical problem is to provide an intelligent manufacturing device, including a memory and a processor, the memory stores a computer program, and when the computer program is executed by the processor, the processing The device performs the steps of the method described above.
  • the beneficial effect of the present invention is that, compared with the prior art, the present invention acquires the reference bone density value including the target patient's region of interest (including the position to be implanted and its adjacent area), and obtains the reference bone density value according to the reference bone density value.
  • Young's modulus obtaining a target porosity matched with the reference Young's modulus, generating a porous skeleton structure with the target porosity, obtaining size information of the intervertebral cage according to the medical image data, and generating the Fusing the target intervertebral fusion device structure matched with the size information, generating the target intervertebral fusion device according to the target intervertebral fusion device structure, so that the target intervertebral fusion device matches the target patient and has better biomechanical matching performance.
  • the microstructure of the target patient's human bone it is beneficial to the osteogenesis process, which can speed up the fusion and reduce the risk of vertebral deformation under stress.
  • Fig. 1 is a schematic flowchart of the first embodiment of the manufacturing method of the intervertebral fusion device provided by the present invention.
  • FIG. 2 is a schematic diagram of an embodiment of medical image data of a viewing angle provided by the present invention.
  • Fig. 3 is a schematic diagram of an embodiment of medical image data of another perspective provided by the present invention.
  • Fig. 4 is a schematic diagram of an embodiment of medical image data from another perspective provided by the present invention.
  • Fig. 5 is a schematic structural view of an embodiment of the porous skeleton structure provided by the present invention.
  • Fig. 6a is a schematic structural view of the first embodiment of the target intervertebral fusion device provided by the present invention.
  • Fig. 6b is a schematic structural diagram of the second embodiment of the target intervertebral fusion device provided by the present invention.
  • Fig. 6c is a schematic structural diagram of a third embodiment of the target intervertebral fusion device provided by the present invention.
  • Fig. 6d is a schematic structural view of the fourth embodiment of the target intervertebral fusion device provided by the present invention.
  • Fig. 7 is a schematic flowchart of the second embodiment of the manufacturing method of the intervertebral fusion device provided by the present invention.
  • FIG. 8 is a schematic diagram of the first structure of the Voronoi three-dimensional polycrystal division method provided by the present invention.
  • FIG. 9 is a schematic diagram of the second structure of the Voronoi three-dimensional polycrystal division method and division method provided by the present invention.
  • FIG. 10 is a schematic diagram of the third structure of the Voronoi three-dimensional polycrystal division method provided by the present invention.
  • FIG. 11 is a structural schematic diagram of an embodiment of a three-dimensional polycrystalline structure divided by a Voronoi three-dimensional polycrystal division method provided by the present invention.
  • Fig. 12 is a schematic structural diagram of an embodiment of the three-dimensional polycrystalline structure provided by the present invention.
  • FIG. 13 is a schematic structural diagram of an embodiment of a porous skeleton structure generated from the three-dimensional polycrystalline structure in FIG. 12 .
  • Fig. 14 is a schematic structural view of the lower frame of the intervertebral fusion device provided by the present invention.
  • Fig. 15 is a schematic structural view of an embodiment of the intervertebral cage frame provided by the present invention.
  • Fig. 16 is a structural schematic diagram of another embodiment of the target intervertebral cage structure provided by the present invention.
  • Fig. 17 is a structural schematic diagram of another embodiment of the target intervertebral cage structure provided by the present invention.
  • Fig. 18 is a structural schematic diagram of an embodiment of the manufacturing system of the intervertebral fusion provided by the present invention.
  • Fig. 19 is a schematic structural diagram of an embodiment of an intelligent manufacturing device provided by the present invention.
  • Fig. 20 is a schematic structural diagram of an embodiment of a storage medium provided by the present invention.
  • FIG. 1 is a schematic flowchart of a first embodiment of a manufacturing method of an intervertebral fusion device provided by the present invention.
  • the manufacturing method of the intervertebral fusion device provided by the present invention includes the following steps.
  • S101 Obtain medical image data of a target patient, and obtain a reference bone density value of a region of interest according to the medical image data, where the region of interest includes a location to be implanted and its adjacent regions.
  • the region of interest of the target patient is obtained, and the region of interest includes the region where the target intervertebral fusion device is implanted, that is, the region adjacent to the position to be implanted, for example, including several nodes adjacent to the position to be implanted Vertebrae and/or muscle, adipose tissue, etc.
  • computed tomography technology computed tomography, CT
  • medical imaging data can also be obtained through other medical imaging methods. Please refer to FIG. 2-FIG. 4 in combination.
  • FIG. 2-FIG. 4 in combination.
  • FIG. 2 is a schematic diagram of an embodiment of medical image data of one viewing angle provided by the present invention
  • FIG. 3 is a schematic diagram of an embodiment of medical image data of another viewing angle provided by the present invention
  • Fig. 4 is a schematic diagram of an embodiment of medical image data from another perspective provided by the present invention. As shown in FIGS. 2-4 , the circled area is the area of interest.
  • the endplate bone density value of at least one of the upper and lower adjacent endplates in the region of interest can be obtained by CT.
  • the upper and lower adjacent endplates are the target intervertebral fusion device after implantation
  • the bone density value of the end plate can be obtained in combination with the density of muscle and fat in the medical image data.
  • the average value of the bone density values of the upper and lower endplates (for example, either the arithmetic mean value or the weighted average value) is obtained as a reference bone density value.
  • the upper The bone density value of the endplate or the lower endplate was used as the reference bone density value.
  • the reference Young's modulus is obtained according to the reference bone density value, and the Young's modulus is a physical quantity describing the ability of a solid material to resist deformation, also called tensile modulus.
  • the reference Young's modulus-bone density relationship obtained by mechanical testing in the references is as follows.
  • E is the reference Young's modulus
  • BMD is the reference bone density value
  • the target porosity is exponentially related to the reference Young's modulus, and the target porosity matching the reference Young's modulus can be obtained according to the reference Young's modulus.
  • the target porosity is calculated according to the following formula.
  • E represents the reference Young's modulus
  • Esolid represents the Young's modulus of the structure itself when no pores exist
  • Porosity represents the target porosity
  • a and b are constants.
  • the target intervertebral fusion device structure includes a porous skeleton structure with the target porosity, according to The target interbody cage structure generates the target interbody cage.
  • the target intervertebral fusion needs to be implanted at the position to be implanted, so its outline needs to match and fit with the position to be implanted and the upper and lower adjacent endplates before it can be implanted. Finally, it has a very good stability and support effect.
  • the size information of the intervertebral cage is obtained according to the medical image data (for example, any one or more of Fig. 2-Fig. 4).
  • the size information of the intervertebral fusion cage includes the shape, structure, radian, etc. of each surface of the target intervertebral fusion cage, and the included angle between the various surfaces of the target intervertebral fusion cage, and the like.
  • the target intervertebral fusion cage structure Generate the target intervertebral fusion cage structure according to the size information of the intervertebral fusion cage and the target porosity. It can use the size information of the intervertebral fusion cage as the limit range generated by the porous skeleton structure, and generate a porous skeleton structure that meets the limit range, which will meet the limit range
  • the porous skeleton structure is used as the target intervertebral fusion cage structure. It is also possible to first generate a porous skeleton structure according to the target porosity, and then adjust the edge of the porous skeleton structure according to the fusion size information to generate the target intervertebral cage structure.
  • FIG. 5 is a structural schematic diagram of an embodiment of the porous skeleton structure provided by the present invention.
  • the porous framework structure on the left has a higher target porosity
  • the porous framework structure on the right has a lower target porosity.
  • the porous skeleton structure is a cube structure as shown in FIG. 5 , and the edges of the porous skeleton structure are adjusted according to the size information of the intervertebral cage, for example, the porous skeleton structure is cut to generate the target intervertebral cage structure.
  • a target intervertebral cage is generated according to the target intervertebral cage structure.
  • the manufacturing file is generated according to the structure of the target intervertebral fusion device, and the manufacturing file is imported into the additive manufacturing software to generate the target intervertebral fusion device through additive manufacturing.
  • Fig. 6a-Fig. 6d are structural schematic diagrams of different embodiments of the target intervertebral cage structure provided by the present invention.
  • the size information of the intervertebral cage can be used as the limit range for generating the porous skeleton structure, and the target intervertebral cage structure shown in Figs. 6a-6d can be directly generated.
  • the target intervertebral cage structure can be saved as CAD (Computer Aided Design, computer-aided design) files (such as STP, STL, etc.), import CAD files into additive manufacturing software for pre-manufacturing processing; in the pre-processing stage before printing, perform layered division processing, and adjust according to the actual manufacturing materials used For layer thickness, the CAD file with layered processing will be submitted to the manufacturing equipment.
  • CAD Computer Aided Design
  • computer-aided design files such as STP, STL, etc.
  • the material for manufacturing the target intervertebral fusion cage is titanium alloy (such as Ti6Al4V) or tantalum metal (Ta) powder, and its preparation method is Selective Laser Melting (Selective Laser Melting, SLM) or Electron Beam Melting (Electron Beam Melting). Melting, EBM).
  • SLM Selective Laser Melting
  • EBM Electron Beam Melting
  • non-metallic materials such as silicon nitride (silicon nitride) or polyetheretherketone (PEEK) to manufacture the target intervertebral fusion cage, and Fused Deposition Molding (Fused Deposition Molding) can be used. Filament Modeling) to manufacture.
  • the target intervertebral fusion cage is manufactured using Ti6Al4V powder of the SLM process.
  • the reference range of the process parameters is: laser power 200 ⁇ 400kw, scanning speed 800 ⁇ 1500mm/s, and powder particles 15 ⁇ 55 micrometers.
  • post-processing such as surface treatment
  • the surface treatment process used is hydroxyapatite coating (hydroxyapatite coating, HA coating).
  • the reference bone density value including the region of interest of the target patient is obtained
  • the reference Young's modulus is obtained according to the reference bone density value
  • the target porosity matching the reference Young's modulus is obtained.
  • the size information of the intervertebral cage and the target porosity generate the target intervertebral cage structure
  • the target intervertebral cage is generated according to the target intervertebral cage structure, so that the target intervertebral cage matches the target patient and has better biomechanical matching performance , whose structure refers to the microstructure of human bone in the target patient, which is conducive to the osteogenesis process, can speed up fusion and reduce the risk of vertebral deformation under stress.
  • FIG. 7 is a schematic flowchart of a second embodiment of the manufacturing method of the intervertebral fusion device provided by the present invention.
  • the manufacturing method of the intervertebral fusion device provided by the present invention includes the following steps.
  • S201 Obtain medical image data of a target patient, and obtain reference bone density values of a region of interest according to the medical image data, where the region of interest includes a location to be implanted and its adjacent regions.
  • steps S201-S202 are basically the same as the corresponding content in steps S101-S102 in the first embodiment of the method for manufacturing an intervertebral cage provided by the present invention, and will not be repeated here.
  • S203 Generate a three-dimensional polycrystalline structure with a target porosity by using a polyhedron unit structure generation method, and perform geometric thickening processing on boundary lines of the three-dimensional polycrystalline structure to obtain a porous skeleton structure.
  • the polyhedral unit structure generation technique provides a control theory for the number of units and the unit size of the target polyhedral unit structure in a specific space.
  • the polyhedral unit structure generation technology generates a three-dimensional polycrystalline structure with a target porosity by means of Voronoi (controllable Vorowian) three-dimensional polycrystalline division.
  • the polyhedral unit structure generation technique provides a control theory for the number of units and the unit size of the target polyhedral unit structure in a specific space.
  • the polyhedral unit structure generation technology generates a three-dimensional polycrystalline structure with a target porosity by means of Voronoi (controllable Vorowian) three-dimensional polycrystalline division.
  • Fig. 8 is the first schematic structural diagram of the Voronoi three-dimensional polycrystal division mode division mode provided by the present invention
  • Fig. 9 is the second of the Voronoi three-dimensional polycrystal division mode division mode provided by the present invention Schematic diagram of the structure
  • Fig. 10 is a third structural schematic diagram of the Voronoi three-dimensional polycrystal division method provided by the present invention
  • Fig. 11 is a three-dimensional polycrystal structure of the division method of the Voronoi three-dimensional polycrystal division method provided by the present invention Schematic diagram of the structure of the embodiment.
  • a cube is used as an example for illustration.
  • the boundary range of the structure can be obtained based on experience, or the volume of the target patient's region of interest. It can also be obtained according to the size information of the intervertebral fusion cage.
  • the number of polycrystals can be obtained according to the target porosity.
  • the first structure shown in FIG. 8 can be generated by uniformly dividing the boundary range of the structure according to the number of polycrystals, and obtaining the core origin of each divided crystal. All core origins divide the core random point search range to generate the second structure shown in FIG. 9 .
  • the 3D polycrystalline structure shown in Fig. 11 can be obtained by taking the core random point as the core point of the polycrystal partition to carry out the Volovii partition.
  • Figure 12 is a schematic structural diagram of an embodiment of a three-dimensional polycrystalline structure provided by the present invention
  • Figure 13 is a structural schematic diagram of an embodiment of a porous skeleton structure generated by the three-dimensional polycrystalline structure of Figure 12
  • the boundary line of the three-dimensional polycrystalline structure is geometrically thickened, so that the three-dimensional polycrystalline structure is transformed into a porous skeleton structure in a porous shape.
  • the target porosity is achieved by changing the thickness of the pore skeleton by using geometric parameters without changing the number of pores in the three-dimensional polycrystalline structure, or by changing the size of the pores itself to adjust the porosity to achieve the target porosity.
  • the code representation of the porous skeleton structure is obtained through a software programming algorithm.
  • S204 Obtain the size information of the intervertebral fusion device according to the medical image data, and generate the frame of the intervertebral fusion device that meets the clinical needs according to the size information of the intervertebral fusion device; fuse the porous skeleton structure and the frame of the intervertebral fusion device into the target vertebral body through Boolean operations fuser structure.
  • the size information of the intervertebral fusion cage is obtained according to the medical image data. Fusion Dimensions Information. Combined with the actual clinical needs to generate the frame of the intervertebral fusion cage.
  • FIG. 14 is a schematic structural view of one side frame of the intervertebral fusion device provided by the present invention. Obtain the angle information of the upper and lower adjacent endplates of the region of interest according to the medical image data, and obtain the gap and relative angle between the frames of the intervertebral fusion cage according to the height information and angle information. According to the actual clinical needs, further adjust the gap and relative angle between the frames of the intervertebral fusion device.
  • FIG. 15 is a schematic structural view of one side frame of the intervertebral fusion device provided by the present invention.
  • FIG. 16 is a structural schematic view of another embodiment of the target intervertebral cage structure provided by the present invention.
  • the frame of the intervertebral fusion device is the frame on both sides of the upper and lower sides.
  • the frame of the intervertebral fusion device includes the frames of each surface (for example, the upper, lower, inner and outer sides) of the target intervertebral fusion device.
  • FIG. 17 is a structural schematic diagram of another embodiment of the target intervertebral cage structure provided by the present invention.
  • the target intervertebral cage structure shown in Fig. 17 has upper and lower frames and outer side frames.
  • S205 Generate the target intervertebral fusion device according to the structure of the target intervertebral fusion device.
  • step S205 is basically the same as the corresponding part in step S03 in the first embodiment of the method for manufacturing an intervertebral cage provided by the present invention, and will not be repeated here.
  • the size information of the intervertebral cage is obtained according to the height information and length information of the position to be implanted according to the medical image data, and the upper and lower adjacent endplate angles of the region of interest obtained according to the medical image data
  • the information acquires the gap and relative angle between the frames of the intervertebral fusion, and fuses the porous skeleton structure and the frame of the intervertebral fusion into the target intervertebral fusion structure through Boolean operations, which can make the structure of the target intervertebral fusion more suitable for the target patient It has better biomechanical matching performance, and its structure refers to the microstructure of human bone in the target patient, which is conducive to the osteogenesis process, can speed up fusion and reduce the risk of vertebral body stress deformation.
  • FIG. 18 is a schematic structural diagram of an embodiment of a manufacturing system for an intervertebral fusion device provided by the present invention.
  • the manufacturing system 10 of the intervertebral fusion includes: an acquisition module 11 , a structure module 12 and a generation module.
  • the acquiring module 11 is used to acquire medical image data of a target patient, and acquire reference bone density values of a region of interest according to the medical image data, and the region of interest includes the position to be implanted and its adjacent regions.
  • the structure module 12 is used to obtain the reference Young's modulus according to the reference bone density value.
  • the generation module 13 is used to obtain the size information of the intervertebral fusion device according to the medical image data, and generate the target intervertebral fusion device structure according to the size information of the intervertebral fusion device and the target porosity, and the target intervertebral fusion device structure includes a porous skeleton with a target porosity structure, generate the target intervertebral fusion cage according to the target intervertebral fusion cage structure.
  • the acquiring module 11 is further configured to acquire the endplate bone density value of at least one of the upper and lower adjacent endplates of the region of interest, and calculate a reference bone density value according to the endplate bone density value.
  • the structure module 12 is also used to obtain the target porosity according to the following formula.
  • E represents the reference Young's modulus
  • Esolid represents the Young's modulus of the structure itself when no pores exist
  • Porosity represents the target porosity
  • a and b are constants.
  • the generation module 13 is also used to generate the porous skeleton structure according to the target porosity, and adjusts the edge of the porous skeleton structure according to the fusion size information to generate the target intervertebral cage structure; the generation module 13 is also used to use the intervertebral fusion cage size information as a porous
  • the limit range of skeleton structure generation generate a porous skeleton structure that meets the limit range, and use the porous skeleton structure that meets the limit range as the target intervertebral cage structure.
  • the structure module 12 is also used to generate a three-dimensional polycrystalline structure with a target porosity through a polyhedron unit structure generation method, and perform geometric thickening on the boundary lines of the three-dimensional polycrystalline structure to obtain a porous skeleton structure.
  • the generating module 13 is also used to generate an intervertebral cage frame meeting clinical requirements according to the size information of the intervertebral cage; fuse the porous skeleton structure and the intervertebral cage frame into a target intervertebral cage structure through Boolean operations.
  • the generation module 13 is also used to obtain the height information and length information of the region of interest according to the medical image data, obtain the size information of the intervertebral cage according to the height information and the length information; obtain the upper and lower adjacent endplate angles of the region of interest according to the medical image data Information, according to the height information and angle information to obtain the gap and relative angle between the frame of the intervertebral cage.
  • the generating module 13 is also used to generate a manufacturing file according to the structure of the target intervertebral fusion device, import the manufacturing file into the additive manufacturing software, and generate the target intervertebral fusion device through additive manufacturing.
  • the manufacturing system of the intervertebral fusion device obtains the reference bone density value including the region of interest of the target patient, obtains the reference Young's modulus according to the reference bone density value, and obtains the reference Young's modulus matching
  • the target porosity of the intervertebral fusion device is obtained according to the medical imaging data, and the intervertebral fusion device structure is generated according to the intervertebral fusion device size information and the target porosity.
  • the target intervertebral fusion device structure includes a porous skeleton with a target porosity structure, the target intervertebral fusion device is generated according to the structure of the target intervertebral fusion device, so that the target intervertebral fusion device matches the target patient, and has better biomechanical matching performance.
  • Its structure refers to the microstructure of the human bone of the target patient, which is beneficial
  • the osteogenesis process can speed up fusion while reducing the risk of vertebral body stress and deformation.
  • FIG. 19 is a schematic structural diagram of an embodiment of an intelligent manufacturing device provided by the present invention.
  • the intelligent manufacturing device 20 includes a processor 21 and a memory 22 .
  • the processor 21 is coupled to the memory 22 .
  • a computer program is stored in the memory 22, and the processor 21 executes the computer program to implement the methods shown in Fig. 1 and Fig. 7 when working.
  • FIG. 19 For the detailed method, reference may be made to the above, which will not be repeated here.
  • FIG. 20 is a schematic structural diagram of an embodiment of a storage medium provided by the present invention.
  • At least one computer program 31 is stored in the storage medium 30, and the computer program 31 is used to be executed by a processor to implement the methods shown in FIG. 1 and FIG.
  • the computer-readable storage medium 30 may be a storage chip in the terminal, a hard disk, or a mobile hard disk, USB flash drive, optical disk, or other readable and writable storage tools, or a server and the like.
  • Nonvolatile memory can include read only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory.
  • Volatile memory can include random access memory (RAM) or external cache memory.
  • RAM is available in many forms such as Static RAM (SRAM), Dynamic RAM (DRAM), Synchronous DRAM (SDRAM), Double Data Rate SDRAM (DDRSDRAM), Enhanced SDRAM (ESDRAM), Synchronous Chain Synchlink DRAM (SLDRAM), memory bus (Rambus) direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM), etc.
  • SRAM Static RAM
  • DRAM Dynamic RAM
  • SDRAM Synchronous DRAM
  • DDRSDRAM Double Data Rate SDRAM
  • ESDRAM Enhanced SDRAM
  • SLDRAM Synchronous Chain Synchlink DRAM
  • Rambus direct RAM
  • DRAM direct memory bus dynamic RAM
  • RDRAM memory bus dynamic RAM

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Abstract

L'invention concerne une cage de fusion intersomatique, un procédé et un système de fabrication associés, un dispositif de fabrication intelligent et un support. Le procédé de fabrication de la cage de fusion intersomatique consiste : à acquérir des données d'image médicale pour un patient cible, et à acquérir, en fonction des données d'image médicale, une valeur de densité minérale osseuse de référence d'une région d'intérêt, la région d'intérêt comprenant une position à laquelle une implantation doit être effectuée et une région adjacente de celle-ci ; à acquérir, en fonction de la valeur de densité minérale osseuse de référence, un module de Young de référence, et à acquérir une porosité cible correspondant au module de Young de référence ; et à acquérir, en fonction des données d'image médicale, des informations de taille de cage de fusion intersomatique, à générer, en fonction des informations de taille de cage de fusion intersomatique et de la porosité cible, une structure de cage de fusion intersomatique cible, la structure de cage de fusion intersomatique cible comprenant une structure de squelette poreux ayant la porosité cible, et à générer, en fonction de la structure de cage de fusion intersomatique cible, la cage de fusion intersomatique cible. La cage de fusion intersomatique préparée par le procédé de fabrication présente une meilleure performance de correspondance biomécanique, et peut accélérer la fusion tout en réduisant le risque de déformation par contrainte du corps vertébral.
PCT/CN2022/106758 2022-03-01 2022-07-20 Cage de fusion intersomatique, procédé et système de fabrication associés, dispositif de fabrication intelligent, et support Ceased WO2023165071A1 (fr)

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