Biomechanics Research Laboratory, School of Mechanical and Materials Engineering, Indian Institute of Technology Mandi, Mandi, Himachal Pradesh, India.
Proc Inst Mech Eng H. 2024 Aug-Sep;238(8-9):874-885. doi: 10.1177/09544119241272839. Epub 2024 Aug 20.
The conical stem tibial design of total ankle replacement (TAR) has high implant-bone micromotion. This may lead to aseptic loosening which can be avoided by improving the tibial design. The objective was to propose the best stem design parameters to reduce implant-bone micromotion along with minimizing stress shielding using an integrated Finite Element-Multi Criteria Decision Making (FE-MCDM) approach. FE models of implanted tibia bones were prepared by changing the height of the stem, the diameter of the stem, and the slant of the stem. Weighted Aggregated Sum Product Assessment (WASPAS), Technique for Order of Preference by Similarities to Ideal Solution (TOPSIS), Evaluation based on Distance from Average Solution (EDAS), and VIseKriterijumska Optimizacija I Kompromisno Resenje (VIKOR) MCDM techniques with equal weights for micromotion and stress shielding were considered. The micromotion and stress shielding were greater when the height of the stem was increased. Whereas, the increase in diameter and slant affected them marginally. The best-performing design was the Model with stem height 6 mm (diameter 6.4 mm and slant 4°) and after that was the Model with stem height 8 mm (diameter 6.4 mm and slant 4°), and then the Model with stem height 10 mm (diameter 6.4 mm and slant 4°). The height of the stem is the most important stem design parameter. Shorter height, moderate thickness, and moderate slanting stem designs are recommended.
全踝关节置换术(TAR)的圆锥形胫骨柄设计具有较高的植入物-骨微动。这可能导致无菌性松动,通过改进胫骨设计可以避免这种情况。目的是提出最佳的柄设计参数,通过使用集成有限元-多准则决策分析(FE-MCDM)方法来减少植入物-骨微动并最小化应力遮挡。通过改变柄的高度、柄的直径和柄的倾斜度来制备植入胫骨骨的 FE 模型。考虑了加权和积评估(WASPAS)、相似偏好排序技术(TOPSIS)、基于平均解距离的评估(EDAS)和 VIseKriterijumska Optimizacija I Kompromisno Resenje(VIKOR)多准则决策分析(MCDM)技术,这些技术对微动和应力遮挡的权重相等。当柄的高度增加时,微动和应力遮挡更大。然而,直径和倾斜度的增加对它们的影响较小。表现最好的设计是柄高 6mm(直径 6.4mm,倾斜度 4°)的模型,其次是柄高 8mm(直径 6.4mm,倾斜度 4°)的模型,然后是柄高 10mm(直径 6.4mm,倾斜度 4°)的模型。柄的高度是最重要的柄设计参数。建议采用较短的高度、适中的厚度和适度倾斜的柄设计。