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首页> 外文期刊>Journal of Biomechanics >Design optimization of a total knee replacement for improved constraint and flexion kinematics.
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Design optimization of a total knee replacement for improved constraint and flexion kinematics.

机译:全膝关节置换的设计优化,以改善约束和屈曲运动学。

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摘要

Total knee replacement (TKR) constraint and flexion range of motion can be limiting factors in terms of kinematics performance and cause for revision. These characteristics are closely related to the shape of the implant components. No previous studies have used a rigorous and systematic design optimization method to determine the optimal shape of TKR components. Previous studies have failed to define a quantifiable objective function for optimization, have not used any optimization algorithms, and have only considered a limited design space (4 or less design variables). This study addresses these limitations and determines the optimum shape of the femoral component and ultra high molecular weight polyethylene (UHMWPE) insert in terms of kinematics. The constraint characteristics with respect to those of the natural knee, the importance of the posterior cruciate ligament, and the flexion range of motion were all considered. The kinematics optimized design featured small femoral radii of curvature in the frontal and sagittal planes, but asymmetric with slightly larger radii of curvature for the lateral condyle. This condyle was also less conforming than the medial side. Compared to a commercially available TKR design, the kinematics performance (based on constraint and flexion range of motion) was improved by 81%, with constraint characteristics generally closer to those of the natural knee and a 12.6% increase in the flexion range of motion (up to 143°). The results yielded a new TKR design while demonstrating the feasibility of design optimization in TKR design.
机译:全膝关节置换(TKR)约束条件和运动屈曲范围可能是运动学性能方面的限制因素,并可能导致翻身。这些特性与植入物部件的形状密切相关。以前没有研究使用严格而系统的设计优化方法来确定TKR组件的最佳形状。先前的研究未能定义用于优化的可量化目标函数,未使用任何优化算法,仅考虑了有限的设计空间(4个或更少的设计变量)。这项研究解决了这些局限性,并根据运动学确定了股骨组件和超高分子量聚乙烯(UHMWPE)插入物的最佳形状。相对于自然膝关节的约束特性,后交叉韧带的重要性以及运动的屈曲范围都被考虑了。运动学优化设计的特征是额骨和矢状面的股骨曲率半径小,但不对称,外侧con的曲率半径略大。该con突也比内侧小。与市售的TKR设计相比,运动学性能(基于约束和运动的弯曲范围)提高了81%,约束特性通常更接近自然膝盖的约束,运动的弯曲范围增加了12.6%(最高143°)。结果产生了新的TKR设计,同时证明了TKR设计中设计优化的可行性。

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