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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine >Prediction of micromotion initiation of an implanted femur under physiological loads and constraints using the finite element method
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Prediction of micromotion initiation of an implanted femur under physiological loads and constraints using the finite element method

机译:使用有限元方法预测在生理负荷和约束下股骨的微动起始

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摘要

In cementless total hip replacement surgery the conditions for micromotion initiation at the bone–stem interface and the role of stair climbing versus gait in promoting incipient slipping deserve attention. The goal of the present paper was to propose a finite element approach for analysing the structural behaviour of hip joint prostheses under physiological loadings and boundary conditions, which allows the prediction of micromotion initiation with low computational effort. In this paper, three-dimensional (3D) finite element analyses were performed of intact and implanted human femurs in order to address the above-mentioned problems. Accurate finite element models based on computed tomography images of a human femur were employed; tetrahedral elements were used to construct the models and the contact options of a full bond between the femoral bone and stem were also used. The shear strains at the contact between femoral bone and stem were evaluated. Two loading cases, namely walking and stair climbing, were applied to investigate the effect of different loading conditions on the shear strain patterns. Shear strains in the z direction can be reasonably considered a significant stimulus of slip initiation or fibrous tissue formation or both at the bone–stem interface, whereas shear strains in the x–y plane can be assumed to be a sensible measurement of the tendency to implant–bone micromotion under torsional loads. Comparisons with other studies are complicated by the difference in the methods and testing conditions used. If mobilization is to be initiated, rotational displacements at the interface should be sensible and significant parameters, i.e. the material, should be distorted to some extent. Thus, for a particular point on the bone–metal interface, the maximum shear strain in any direction within the interface plane will indicate the likelihood of slippage initiation at that point. The different femur states (intact and implanted) and loading conditions (walking and stair climbing) are compared. The stair-climbing loads resulted in the highest strains observed under any conditions, either intact or implanted.
机译:在非骨水泥全髋关节置换术中,在骨干界面处进行微运动的条件以及爬楼梯与步态在促进初期打滑中的作用值得关注。本文的目的是提出一种用于分析在生理负荷和边界条件下髋关节假体的结构行为的有限元方法,从而能够以较低的计算量来预测微运动的开始。在本文中,对完整的和植入的人股骨进行了三维(3D)有限元分析,以解决上述问题。使用基于人股骨计算机断层扫描图像的精确有限元模型;使用四面体元素构建模型,还使用了股骨与茎之间的全键接触选项。评估股骨与茎之间接触处的剪切应变。以步行和爬楼梯为两个荷载案例,研究了不同荷载条件对剪切应变模式的影响。在z方向上的剪切应变可以合理地认为是滑移开始或纤维组织形成或在骨干界面上的两种显着刺激,而在x-y平面上的剪切应变可以被认为是对以下趋势的明智测量。扭转载荷下的植入物-骨微动。由于使用的方法和测试条件的差异,与其他研究的比较变得复杂。如果要开始动员,则界面处的旋转位移应该是合理的,并且重要的参数(即材料)应在某种程度上变形。因此,对于骨金属界面上的特定点,界面平面内任何方向上的最大剪切应变将指示在该点处开始滑动的可能性。比较了不同的股骨状态(完整和植入状态)和负荷情况(步行和爬楼梯)。在任何条件下,无论是完整的还是植入的,爬楼梯的载荷都导致了最高的应变。

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