Initial fixation of a femoral knee component: an in vitro and finite element study

Travis Burgers, James J. Mason, H. Ploeg
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引用次数: 7

Abstract

Loosening is the primary cause of total knee arthroplasty implant failure; therefore, to investigate this failure mode, femoral knee components were implanted in vitro on three cadaveric femurs. Bone-implant finite element (FE) models were created to predict the initial fixation of the interface of each femur. Initial fixation of the femoral knee component was successfully measured with the strain-gauged implants. Specimen-specific FE models were calibrated using the in vitro strain measurements and used to assess initial fixation. Initial fixation was shown to increase with bone density. The geometry of the implant causes the distal femur to deform plastically. It also causes higher stresses in the lateral side and higher pressures on the lateral surfaces. The implementation of plasticity in the bone material model in the FE model decreased these strains and pressures considerably from a purely elastic model, which demonstrated the importance of including plasticity.
股骨膝关节组件的初始固定:一项体外和有限元研究
松动是全膝关节置换术失败的主要原因;因此,为了研究这种失效模式,我们在三具尸体股骨上体外植入了股骨膝关节假体。建立骨-种植体有限元(FE)模型来预测每个股骨界面的初始固定。用应变计植入物成功地测量了股骨膝关节组件的初始固定。使用体外应变测量校准标本特异性FE模型,并用于评估初始固定。初始固定显示随骨密度增加而增加。植入物的几何形状导致股骨远端发生塑性变形。它还会在侧面产生更高的应力,并在侧面表面产生更高的压力。在有限元模型中实现骨材料模型的可塑性大大降低了这些应变和压力,而不是纯弹性模型,这表明了包括塑性的重要性。
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