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Finite element analysis of resurfacing depth and obliquity on patella stress and stability in TKA

机译:TKA重铺深度和倾斜度对骨应力和稳定性的有限元分析

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摘要

Patella resurfacing in total knee arthroplasty (TKA) reduces postoperative complications and revisions; however, the optimal cutting depth and angle that minimize patellar strain and fracture remain unclear. We performed three-dimensional finite element analysis (FEA) of resurfacing cutting depth and obliquity to assess the stresses in each component of the knee joint, and fatigue testing to determine cyclic loading conditions over the expected life span of the implant. Maximum stress on the patella increased as cutting depth increased up to 8. mm; peak stresses on the idealized button further increased at 10-mm depth. Medial superior obliquities below 3° showed the lowest stress on the patella and button and the highest fatigue life. An oblique cut of 3° with respect to the inferior end increased patellar stress and reduced fatigue life, making this the least successful approach. Taken together, our FEA supports the use of minimal cutting depths at -. 3° with respect to the superior end for patellar resurfacing in TKA in order to minimize stresses in the structure and improve TKA durability. Future studies will assess the effect of patella button placement to account for real-world practice variations.
机译:全膝关节置换术(TKA)中的骨表面置换术可减少术后并发症和翻修;然而,将pa骨张力和骨折最小化的最佳切割深度和角度仍不清楚。我们对表面切削深度和倾斜度进行了三维有限元分析(FEA),以评估膝关节各部分的应力,并进行了疲劳测试,以确定植入物预期寿命内的循环载荷条件。 cutting骨的最大应力随着切割深度增加到8毫米而增加。理想按钮上的峰值应力在10毫米深度处进一步增加。低于3°的内侧上斜度显示showed骨和button骨上的应力最小,疲劳寿命最高。相对于下端倾斜3°的切口会增加pa骨应力并缩短疲劳寿命,这是最不成功的方法。综上所述,我们的FEA支持在-处使用最小切削深度。相对于TKA pa骨翻修的上端为3°,以最大程度地减少结构中的应力并提高TKA的耐用性。未来的研究将评估of骨按钮放置的影响,以解决实际操作中的差异。

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