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Injury and Response of Human Ankle and Subtalar Joints under Complex Loading.

机译:复杂载荷下人脚踝和距骨关节的损伤和反应。

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摘要

The primary objective of this dissertation is to develop a detailed and realistic numerical model of the human hindfoot capable of predicting the ligamentous and bony injuries observed in the ankle and subtalar joints. A finite element (FE) model of the foot and ankle was developed based on the reconstructed geometry of a male volunteer close to the anthropometry of a 50th percentile male and a commercial anatomical database. While the forefoot bones were defined as rigid bodies connected by ligament models, the ankle and subtalar joints together with their surrounding bones and the leg were modeled as deformable bodies. The material and structural properties were selected based on a synthesis on current knowledge of the constitutive models for each tissue. Failure of the tissues was assessed using local strain measures in the bone and ligament. The FE model was validated against data recorded during tests with human volunteers and PMHS in various loading modes (flexion, xversion, axial rotation, and axial loading). Thus, a secondary objective of this study is to construct an injury hyper-surface of ankle and subtalar joints using the validated FE model, which may help in analyzing the experimental data. Complex loading conditions involving combinations of simultaneous loading modes were evaluated and the tissue failure was assessed. The strain distributions of the model were consistent with injury patterns observed in the experiments. The motion and loading design space of the ankle and subtalar joints was discretized and the injury subspace was determined from the FE simulations. Response surface methodology was applied to determine injury boundaries (hyper-surface). The capability of an injury surface to predict an injury relative to the direct prediction from the tissue strain measures in the FE model was evaluated under vehicle crash conditions. According to the computational results, it is proved that the injury surface can be a tool to decide injury or non-injury in certain loading combinations.
机译:本文的主要目的是建立一个详细而逼真的人后足数值模型,该模型能够预测在踝关节和距下关节观察到的韧带和骨损伤。基于接近50%男性的人体测量学的男性志愿者的重构几何结构和商业解剖数据库,开发了脚和踝的有限元(FE)模型。前脚骨骼被定义为通过韧带模型连接的刚体,而踝关节和距骨下关节以及其周围的骨骼和腿被建模为可变形体。基于对每个组织的本构模型的当前知识的合成来选择材料和结构特性。使用骨和韧带中的局部应变测量来评估组织的衰竭。 FE模型是根据人类志愿者和PMHS在各种载荷模式(屈曲,xversion,轴向旋转和轴向载荷)测试期间记录的数据进行验证的。因此,本研究的第二个目标是使用经过验证的有限元模型构造踝关节和距下关节的损伤超表面,这可能有助于分析实验数据。评价涉及同时加载模式组合的复杂加载条件,并评估组织衰竭。模型的应变分布与实验中观察到的损伤模式一致。离散化了踝关节和距下关节的运动和负荷设计空间,并通过有限元模拟确定了损伤子空间。应用响应面方法确定损伤边界(超表面)。在车辆碰撞条件下,评估了相对于有限元模型中组织应变测量直接预测的损伤表面预测损伤的能力。根据计算结果证明,在某些载荷组合下,损伤表面可以作为判定损伤或非损伤的工具。

著录项

  • 作者

    Shin, Jaeho.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Mechanical engineering.;Biomechanics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:35

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