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Finite element analysis of a total ankle replacement during the stance phase of gait

机译:步态站立阶段全踝关节置换的有限元分析

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Total ankle replacement (TAR) designs have still several important issues to be addressed before the treatment becomes fully acceptable clinically. Very little is known about the performance, in terms of the contact pressures and kinematics of TAR when subjected to daily activities such as level gait. For this purpose, an explicit finite element model of a novel 3-component TAR was developed, which incorporated a previously validated mechanical model of the ankle ligament apparatus. The inter-mediate mobile polyethylene meniscal bearing was modelled as an elastic-plastic continuum while the articulating surfaces of the tibial and talar metal components as rigid bodies. Overall kinematics, contact pressures and ligament forces were analysed during passive, i.e. virtually unloaded, and active, i.e. stance phase of gait, conditions. Simulation of passive motion predicted similar kinematics as reported previously in an analytical four-bar linkage model. The meniscal bearing was observed to move 5.6 mm posteriorly during the simulated stance and the corresponding antero-posterior displacement of the talar component was 8.3 mm. The predicted pattern and the amount (10.6 degrees) of internal-external rotation of the ankle complex were found to be in good agreement with corresponding in vivo measurements on normal ankles. A peak contact pressure of 16.8 MPa was observed, with majority of contact pressures below 10MPa. For most ligaments, reaction forces remain within corresponding physiological ranges. A first realistic representation of the biomechanical behaviour of the human ankle when replaced by prosthetic joints is provided. The applied methodology can potentially be applied to other TAR designs. (c) 2005 Elsevier Ltd. All rights reserved.
机译:在治疗变得临床上完全可以接受之前,全踝关节置换术(TAR)的设计仍然要解决几个重要问题。就日常活动(如步态)等TAR的接触压力和运动学而言,对其性能知之甚少。为此,开发了一种新颖的三组分TAR的显式有限元模型,该模型结合了先前验证的踝关节韧带器械的力学模型。中间活动聚乙烯半月板轴承建模为弹塑性连续体,而胫骨和距骨金属组件的关节表面为刚体。在被动(即,实际上是空载)和主动(即,步态的站立)状态期间,分析了总体运动学,接触压力和韧带力。被动运动的模拟预测了类似的运动学,如先前在四连杆分析模型中报道的那样。在模拟的姿势期间,观察到半月板轴承向后移动5.6 mm,距骨组件的相应前后位移为8.3 mm。发现脚踝复合体的预测模式和内外旋转量(10.6度)与正常脚踝上的相应体内测量值非常吻合。观察到峰值接触压力为16.8 MPa,大多数接触压力低于10MPa。对于大多数韧带,反作用力保持在相应的生理范围内。提供了当被假关节代替时人类脚踝的生物力学行为的第一现实表示。所应用的方法可以潜在地应用于其他TAR设计。 (c)2005 Elsevier Ltd.保留所有权利。

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