McGeehan Michael A, Adamczyk Peter G, Nichols Kieran M, Hahn Michael E
Department of Human Physiology, University of Oregon, Eugene, OR, USA.
Department of Mechanical Engineering, University of Wisconsin-Madison, Madison, WI, USA.
J Rehabil Assist Technol Eng. 2022 Jul 15;9:20556683221111986. doi: 10.1177/20556683221111986. eCollection 2022 Jan-Dec.
Loading of a residual limb within a prosthetic socket can cause tissue damage such as ulceration. Computational simulations may be useful tools for estimating tissue loading within the socket, and thus provide insights into how prosthesis designs affect residual limb-socket interface dynamics. The purpose of this study was to model and simulate residual limb-socket interface dynamics and evaluate the effects of varied prosthesis stiffness on interface dynamics during gait. A spatial contact model of a residual limb-socket interface was developed and integrated into a gait model with a below-knee amputation. Gait trials were simulated for four subjects walking with low, medium, and high prosthesis stiffness settings. The effects of prosthesis stiffness on interface kinematics, normal pressure, and shear stresses were evaluated. Model-predicted values were similar to those reported previously in sensor-based experiments; increased stiffness resulted in greater average normal pressure and shear stress ( < 0.05). These methods may be useful to aid experimental studies by providing insights into the effects of varied prosthesis design parameters or gait conditions on residual limb-socket interface dynamics. The current results suggest that these effects may be subject-specific.
残肢在假肢接受腔内的负重会导致组织损伤,如溃疡。计算模拟可能是估计接受腔内组织负重的有用工具,从而深入了解假肢设计如何影响残肢-接受腔界面动力学。本研究的目的是对残肢-接受腔界面动力学进行建模和模拟,并评估不同假肢刚度对步态期间界面动力学的影响。开发了残肢-接受腔界面的空间接触模型,并将其集成到一个膝下截肢的步态模型中。对四名受试者在低、中、高假肢刚度设置下行走的步态试验进行了模拟。评估了假肢刚度对界面运动学、法向压力和剪应力的影响。模型预测值与先前基于传感器的实验报告的值相似;刚度增加导致平均法向压力和剪应力更大(<0.05)。这些方法可能有助于通过深入了解不同假肢设计参数或步态条件对残肢-接受腔界面动力学的影响来辅助实验研究。目前的结果表明,这些影响可能因个体而异。