Tang C Y, Zhang G, Tsui C P
Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, China.
J Biomech. 2009 May 11;42(7):865-72. doi: 10.1016/j.jbiomech.2009.01.021. Epub 2009 Mar 4.
This paper presents a three-dimensional finite element model of skeletal muscle which was developed to simulate active and passive non-linear mechanical behaviours of the muscle during lengthening or shortening under either quasi-static or dynamic condition. Constitutive relation of the muscle was determined by using a strain energy approach, while active contraction behaviour of the muscle fibre was simulated by establishing a numerical algorithm based on the concept of the Hill's three-element muscle model. The proposed numerical algorithm could be used to predict concentric, eccentric, isometric and isotonic contraction behaviours of the muscle. The proposed numerical algorithm and constitutive model for the muscle were derived and implemented into a non-linear large deformation finite element programme ABAQUS by using user-defined material subroutines. A number of scenarios have been used to demonstrate capability of the model for simulating both quasi-static and dynamic response of the muscle. Validation of the proposed model has been performed by comparing the simulated results with the experimental ones of frog gastrocenemius muscle deformation. The effects of the fusiform muscle geometry and fibre orientation on the stress and fibre stretch distributions of frog muscle during isotonic contraction have also been investigated by using the proposed model. The predictability of the present model for dynamic response of the muscle has been demonstrated by simulating the extension of a squid tentacle during a strike to catch prey.
本文提出了一种骨骼肌三维有限元模型,该模型用于模拟肌肉在准静态或动态条件下伸长或缩短过程中的主动和被动非线性力学行为。肌肉的本构关系通过应变能方法确定,而肌肉纤维的主动收缩行为则通过基于希尔三元件肌肉模型概念建立数值算法来模拟。所提出的数值算法可用于预测肌肉的向心、离心、等长和等张收缩行为。通过使用用户定义材料子程序,推导了所提出的肌肉数值算法和本构模型,并将其应用于非线性大变形有限元程序ABAQUS中。通过多种场景展示了该模型模拟肌肉准静态和动态响应的能力。通过将模拟结果与青蛙腓肠肌变形的实验结果进行比较,对所提出的模型进行了验证。利用所提出的模型,还研究了梭形肌肉几何形状和纤维取向对青蛙肌肉在等张收缩过程中应力和纤维拉伸分布的影响。通过模拟鱿鱼在捕食时触手的伸展,证明了本模型对肌肉动态响应的可预测性。