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Evaluating knee replacement mechanics during ADL with PID-controlled dynamic finite element analysis

机译:通过PID控制的动态有限元分析评估ADL期间的膝关节置换力学

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Validated computational knee simulations are valuable tools for design phase development of knee replacement devices. Recently, a dynamic finite element (FE) model of the Kansas knee simulator was kinematically validated during gait and deep flexion cycles. In order to operate the computational simulator in the same manner as the experiment, a proportional-integral-derivative (PID) controller was interfaced with the FE model to control the quadriceps actuator excursion and produce a target flexion profile regardless of implant geometry or alignment conditions. The controller was also expanded to operate multiple actuators simultaneously in order to produce in vivo loading conditions at the joint during dynamic activities. Subsequently, the fidelity of the computational model was improved through additional muscle representation and inclusion of relative hip-ankle anterior-posterior (A-P) motion. The PID-controlled model was able to successfully recreate in vivo loading conditions (flexion angle, compressive joint load, medial-lateral load distribution or varus-valgus torque, internal-external torque, A-P force) for deep knee bend, chair rise, stance-phase gait and step-down activities.
机译:经过验证的计算膝关节仿真是用于膝关节置换设备设计阶段开发的有价值的工具。最近,在步态和深屈周期中,通过运动学验证了堪萨斯膝盖模拟器的动态有限元(FE)模型。为了以与实验相同的方式操作计算模拟器,比例积分微分(PID)控制器与FE模型相连接,以控制股四头肌执行器偏移并产生目标屈曲曲线,而与植入物的几何形状或对准条件无关。控制器还扩展为可以同时操作多个执行器,以便在动态活动期间在关节处产生体内加载条件。随后,通过附加的肌肉表示和相对的髋-踝前-后(A-P)运动,可以提高计算模型的保真度。 PID控制的模型能够成功地重新创建体内负荷条件(屈曲角度,压缩关节负荷,内侧-外侧负荷分布或内翻-外翻扭矩,内-外扭矩,AP力),以进行深膝弯曲,椅子抬起,站立阶段步态和降压活动。

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