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Modeling and simulating the deformation of human skeletal muscle based on anatomy and physiology

机译:基于解剖学和生理学的人体骨骼肌变形建模和仿真

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This paper describes the modeling and simulation of the deformation of human skeletal muscle at different structural levels based on sound scientific principles, experimental evidence, and state-of-art muscle anatomy and physiology. The equations of a continuum model of a muscle with realistic architecture, including internal arrangement of muscle fibers and passive structures, and deformation, including activation relations, was developed and solved with the finite element method. The continuum model is used as the basis of a strategy for controlling muscle deformation using activation relations. In order to demonstrate the functionality of the model, it was used to investigate force production and structural changes during contraction of the human tibialis anterior for maximally and submaximally activated muscle behavior. From a comparison with experimental data obtained from ultrasound imaging, we concluded that the modeling and simulation of the continuum based on physiologically meaningful parameters as described in the paper is both an excellent predictor of force production observations and of changes in internal geometry under various test conditions. It is therefore a valuable tool for controlling muscle deformation during movement.
机译:本文基于合理的科学原理,实验证据以及最新的肌肉解剖学和生理学,描述了在不同结构水平下人体骨骼肌变形的建模和仿真。用有限元方法开发并求解了具有逼真的结构的肌肉连续模型的方程,包括肌肉纤维和被动结构的内部布置,以及包括激活关系在内的变形。连续模型用作使用激活关系控制肌肉变形的策略的基础。为了演示该模型的功能,它用于调查在最大和次最大激活的肌肉行为的人类胫骨前肌收缩过程中的力量产生和结构变化。通过与超声成像获得的实验数据进行比较,我们得出结论,如本文所述,基于生理学有意义的参数对连续体进行建模和仿真,既可以很好地预测力产生的观察结果,也可以很好地预测各种测试条件下内部几何形状的变化。 。因此,它是控制运动过程中肌肉变形的宝贵工具。

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