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Three-dimensional finite element simulations of the mechanical response of the fingertip to static and dynamic compressions

机译:指尖对静态和动态压缩的机械响应的三维有限元模拟

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The analysis of the mechanics of the contact interactions of fingers/handle and the stress/strain distributions in the soft tissues in the fingertip is essential to optimize design of tools to reduce many occupation-related hand disorders. In the present study, a three-dimensional (3D) finite element (FE) model for the fingertip is proposed to simulate the nonlinear and time-dependent responses of a fingertip to static and dynamic loadings. The proposed FE model incorporates the essential anatomical structures of a finger: skin layers (outer and inner skins), subcutaneous tissue, bone and nail. The soft tissues (inner skin and subcutaneous tissue) are considered to be nonlinearly viscoelastic, while the hard tissues (outer skin, bone and nail) are considered to be linearly elastic. The proposed model has been used to simulate two loading scenarios: (a) the contact interactions between the fingertip and a flat surface and (b) the indentation of the fingerpad via a sharp wedge. For case (a), the predicted force/displacement relationships and time-dependent force responses are compared with the published experimental data; for case (b), the skin surface deflection profiles were predicted and compared with the published experimental observations. Furthermore, for both cases, the time-dependent stress/strain distributions within the tissues of the fingertip were calculated. The good agreement between the model predictions and the experimental observations indicates that the present model is capable of predicting realistic time-dependent force/displacement responses and stress/strain distributions in the soft tissues for dynamic loading conditions.
机译:手指/手柄的接触相互作用的力学分析以及指尖软组织中的应力/应变分布的分析对于优化工具设计以减少许多与职业有关的手部疾病至关重要。在本研究中,提出了一种针对指尖的三维(3D)有限元(FE)模型,以模拟指尖对静态和动态载荷的非线性和时间相关响应。拟议的有限元模型结合了手指的基本解剖结构:皮肤层(外层和内层皮肤),皮下组织,骨骼和指甲。软组织(皮肤内和皮下组织)被认为是非线性粘弹性的,而硬组织(皮肤外,骨头和指甲)被认为是线性弹性的。所提出的模型已用于模拟两种加载情况:(a)指尖与平坦表面之间的接触相互作用,以及(b)指尖通过锋利的楔形物的压痕。对于情况(a),将预测的力/位移关系和随时间变化的力响应与已发布的实验数据进行比较;对于情况(b),可以预测皮肤表面挠曲曲线,并将其与已发表的实验观察结果进行比较。此外,对于两种情况,都计算了指尖组织内随时间变化的应力/应变分布。模型预测与实验观察之间的良好一致性表明,对于动态加载条件,本模型能够预测软组织中逼真的时间相关力/位移响应和应力/应变分布。

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