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Dynamic modeling and analysis of wear in spatial hard-on-hard couple hip replacements using multibody systems methodologies

机译:使用多体系统方法对空间硬对硬髋关节置换进行磨损的动态建模和分析

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摘要

Wear plays a key role in primary failure of artificial hip articulations. Thus, the main goal of this work is to investigate the influence of friction-induced vibration on the predicted wear of hard hip arthroplasties. This desideratum is reached by developing a three-dimensional multibody dynamic model for a hip prosthesis taking the spatial nature of the physiological loading and motion of the human body into account. The calculation of the intra-joint contact forces developed is based on a continuous contact force approach that accounts for the geometrical and materials properties of the contacting surfaces. In addition, the friction effects due to the contact between hip components are also taken into account. The vibration of the femoral head inside the cup associated with stick-slip friction, negative-sloping friction and dynamic variation in intra-joint contact force has been also incorporated in the present hip articulation model. The friction-induced vibration increases the sliding distance of the contact point between the head and cup surfaces by altering its micro- and macro-trajectories, and consequently affects the wear. In the present work, the Archard's wear law is considered and embedded in the dynamic hip multibody model, which allows for the prediction of the wear developed in the hip joint. With the purpose of having more realistic wear simulation conditions, the geometries of the acetabular cup and femoral head are updated throughout the dynamic analysis. The main results obtained from computational simulations for ceramic-on-ceramic and metal-on-metal hip prostheses are compared and validated with those available in the best-published literature. Finally, from the study performed in the present work, it can be concluded that an important source of the high wear rates observed clinically may be due to friction-induced vibration.
机译:磨损在人工髋关节的主要衰竭中起关键作用。因此,这项工作的主要目的是研究摩擦引起的振动对硬性髋关节置换术的预期磨损的影响。通过开发一种针对髋关节假体的三维多体动力学模型来达到这一目标,同时考虑到人体的生理负荷和运动的空间特性。产生的关节内接触力的计算基于连续接触力方法,该方法考虑了接触表面的几何和材料特性。此外,还考虑了由于髋部组件之间的接触而产生的摩擦效果。杯内股骨头的振动与粘滑摩擦,负向倾斜摩擦和关节内接触力的动态变化有关,也已纳入本髋关节模型中。摩擦引起的振动通过改变其微观和宏观轨迹,增加了头部和杯形表面之间接触点的滑动距离,从而影响了磨损。在当前的工作中,考虑了Archard的磨损定律并将其嵌入到动态髋关节多体模型中,该模型可以预测髋关节中产生的磨损。为了具有更逼真的磨损模拟条件,在整个动态分析过程中更新髋臼杯和股骨头的几何形状。比较了陶瓷-陶瓷和金属-金属髋关节假体的计算结果,并与最新出版的文献进行了比较。最后,从目前的研究中可以得出结论,临床上观察到的高磨损率的重要来源可能是由于摩擦引起的振动。

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