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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Improved mathematical model of the wear of the cup articular surface in hip joint prostheses and comparison with retrieved components
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Improved mathematical model of the wear of the cup articular surface in hip joint prostheses and comparison with retrieved components

机译:髋关节假体中杯状关节面磨损的改进数学模型,并与取回的部件进行比较

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摘要

This paper presents an analytical model of the cobalt-based alloy-ultra-high molecular weight polyethylene (UHMWPF) wear coupling. Based on a previous model in which the cup wear volume over a gait cycle (WG) was calculated under the simplifying assumption of an ideal rigid coupling, the current version proposes a more realistic wear simulation. All three components of the hip loading force were considered for the contact pressure calculation and all three components of the hip motion were taken into account for the sliding distance calculation. The contact pressure distribution was calculated on the basis of the Hertzian theory for the elastic contact of two bodies with non-conforming geometrical shapes. The wear factor was taken from hip simulator wear tests. The calculated WG is 67 × 10{sup}(-6) mm{sup}3 for a standard reference patient. The parametric model simulations show that WG increases linearly with the patient weight, femoral head diameter and surface roughness. It increases non-linearly to a maximum and decreases to an asymptotic value with increasing cup/head clearance and with cup isotropic elastic modulus. The cup orientation in the pelvis affects only slightly the total amount of WG whereas it is the dominant factor affecting the shape of the wear distribution. The iso-wear maps show paracentral patterns at low cup inclination angles and marginal patterns at higher inclination angles. The maximum wear depth is supero-posterior when the cup is in neutral alignment and supero-anterior at increasing anteversion angles. Complex patterns with a combination of paracentral and marginal wear were obtained at specific clearance values and cup orientations. The results of the simulations are discussed in relation to the wear distribution measured on the articular surface of 12 UHMWPE components retrieved from failed hip joint prostheses, after a period of in situ functioning.
机译:本文提出了钴基合金-超高分子量聚乙烯(UHMWPF)磨损耦合的分析模型。基于先前的模型,其中在理想刚性连接的简化假设下计算了整个步态周期(WG)的杯子磨损量,当前版本提出了更现实的磨损模拟。髋部压力的所有三个分量都用于接触压力计算,而髋部运动的所有三个分量都在计算滑动距离时考虑在内。接触压力分布是根据赫兹理论对两个几何形状不一致的物体进行弹性接触而计算的。磨损因子来自髋关节模拟器磨损测试。对于标准参考患者,计算出的WG为67×10 {sup}(-6)mm {sup} 3。参数模型仿真表明,WG随患者体重,股骨头直径和表面粗糙度线性增加。随着杯/头间隙的增加以及杯各向同性弹性模量的增加,它非线性地增加到最大值,并减小到渐近值。骨盆中的杯定位只会对WG的总量产生轻微影响,而它是影响磨损分布形状的主要因素。等值线图显示了在低杯倾斜角时的准中心模式和在较高倾斜角时的边缘模式。当杯子处于中性对齐时,最大磨损深度为上后倾斜,而前倾角增大时,最大磨损深度为上前倾斜。在特定的间隙值和杯形方向上获得了结合了副中心磨损和边缘磨损的复杂图形。在经过一段时间的原位功能后,将讨论与从受损髋关节假体中回收的12种UHMWPE组件在关节表面上测得的磨损分布有关的仿真结果。

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