DESIGN OF AN IMPLANT FOR CARTILAGE REPAIR
Embodiments of the present disclosure relate to design methods for designing the surface of an individually customized implant for cartilage repair, comprising receiving image data representing a three dimensional image of a joint, identifying cartilage damage in the image data, determining the position of an implant to be used for cartilage repair, simulating a healthy surface at the determined implant position, and designing the surface of the implant to match the simulated healthy surface.
1 . A design method for designing the surface of an individually customized implant for cartilage repair, comprising:
receiving image data representing a three dimensional image of a joint;
identifying cartilage damage in the image data;
determining the position of an implant to be used for cartilage repair;
simulating a healthy surface at the determined implant position; and
designing the surface of the implant to match the simulated healthy surface.
2 . The design method of claim 1 , wherein the healthy surface is simulated based on the curvature of the cartilage immediately surrounding the area of damaged cartilage.
3 . The design method of claim 1 , wherein the simulation comprises an interpolation.
4 . The design method of claim 3 , wherein the interpolation is a tangent interpolation.
5 . The design method of claim 1 , wherein an implant is designed based on the determined implant position and the designed surface.
6 . The design method of claim 1 , wherein the determining of the position of the implant involves positioning the implant so that the implant hat (H) will at all points be thick enough to ensure mechanical stability, and preferably also thick enough to ensure firm anchoring towards cartilage and bone.
7 . The design method of claim 6 , wherein the positioning of the implant involves positioning the implant so that the implant hat (H) at each point of its circumference penetrates at least a predetermined minimum depth into the bone.
8 . The design method of claim 6 , wherein the positioning of the implant involves tilting the implant axis (A) so that the maximum penetration depth into the bone along the circumference of the implant hat (H) is minimized.
9 . The design method of claim 6 , wherein the positioning of the implant involves minimizing the total volume of bone and/or cartilage to be removed for implanting the implant.
10 . The design method of claim 6 , wherein the positioning of the implant involves minimizing the surface area of the implant penetration into the bone.