首页> 外文期刊>Journal of biomechanical engineering. >Direct Validation of Human Knee-Joint Contact Mechanics Derived From Subject-Specific Finite-Element Models of the Tibiofemoral and Patellofemoral Joints
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Direct Validation of Human Knee-Joint Contact Mechanics Derived From Subject-Specific Finite-Element Models of the Tibiofemoral and Patellofemoral Joints

机译:直接验证来自胫甲术和Patelloforal关节的主题特定有限元模型的人膝关节接触力学

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摘要

The primary aim of this study was to validate predictions of human knee-joint contact mechanics (specifically, contact pressure, contact area, and contact force) derived from finite-element models of the tibiofemoral and patellofemoral joints against corresponding measurements obtained in vitro during simulated weight-bearing activity. A secondary aim was to perform sensitivity analyses of the model calculations to identify those parameters that most significantly affect model predictions of joint contact pressure, area, and force. Joint pressures in the medial and lateral compartments of the tibiofemoral and patellofemoral joints were measured in vitro during two simulated weight-bearing activities: stair descent and squatting. Model-predicted joint contact pressure distribution maps were consistent with those obtained from experiment. Normalized root-mean-square errors between the measured and calculated contact variables were on the order of 15%. Pearson correlations between the time histories of model-predicted and measured contact variables were generally above 0.8. Mean errors in the calculated center-of-pressure locations were 3.1mm for the tibiofemoral joint and 2.1mm for the patellofemoral joint. Model predictions of joint contact mechanics were most sensitive to changes in the material properties and geometry of the meniscus and cartilage, particularly estimates of peak contact pressure. The validated finite element modeling framework offers a useful tool for noninvasive determination of knee-joint contact mechanics during dynamic activity under physiological loading conditions.
机译:本研究的主要目的是根据模拟负重活动期间在体外获得的相应测量值,验证从胫股关节和髌股关节的有限元模型得出的人类膝关节接触力学(特别是接触压力、接触面积和接触力)的预测。第二个目的是对模型计算进行灵敏度分析,以确定对关节接触压力、面积和力的模型预测影响最大的参数。在两种模拟负重活动(楼梯下降和蹲下)中,体外测量胫股关节和髌股关节内侧和外侧隔室的关节压力。模型预测的关节接触压力分布图与实验结果一致。测量和计算的接触变量之间的标准化均方根误差约为15%。模型预测和测量的接触变量的时间历程之间的Pearson相关性通常在0.8以上。计算出的压力中心位置的平均误差,胫股关节为3.1mm,髌股关节为2.1mm。关节接触力学的模型预测对半月板和软骨的材料性质和几何形状的变化最为敏感,尤其是对峰值接触压力的估计。经验证的有限元建模框架为在生理负荷条件下的动态活动期间无创测定膝关节接触力学提供了有用的工具。

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