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基于有限元法的骨骼肌微机械建模。

Micromechanical modelling of skeletal muscles based on the finite element method.

作者信息

Böl Markus, Reese Stefanie

机构信息

Institute of Solid Mechanics, Braunschweig University of Technology, D-38106 Braunschweig, Germany.

出版信息

Comput Methods Biomech Biomed Engin. 2008 Oct;11(5):489-504. doi: 10.1080/10255840701771750.

Abstract

In the present paper, a new concept for the modelling of skeletal muscles is proposed. An important aspect is the fact that the concept is micromechanically motivated. At the level of the contractile muscle fibres we incorporate the behaviour of the smallest possible unit, the so-called sarcomere, also known as microbiological engine. The contractile fibres (active part of the material) are surrounded by a soft tissue network (passive part of the material). One fundamental advantage of micromechanical approaches in general is the fact that the number of material parameters can be noticeably reduced and the remaining parameters can be usually interpreted physically. The chosen modelling strategy enables the efficient transport of the known information about physiological processes in the fibre to the 3D macroscopic level where, e.g. the dependence of muscle contraction on the stimulus rate is studied. The paper closes with investigations of quasistatic as well as dynamic simulation applied on idealised and non-idealised muscle geometries.

摘要

在本文中,提出了一种用于骨骼肌建模的新概念。一个重要方面是,该概念具有微观力学动机。在收缩性肌纤维层面,我们纳入了最小可能单元(即所谓的肌小节,也称为生物微发动机)的行为。收缩性纤维(材料的活性部分)被软组织网络(材料的被动部分)所包围。一般来说,微观力学方法的一个基本优势在于,材料参数的数量可以显著减少,并且其余参数通常可以从物理角度进行解释。所选择的建模策略能够将纤维中关于生理过程的已知信息有效地传递到三维宏观层面,例如在该层面研究肌肉收缩对刺激速率的依赖性。本文最后对应用于理想化和非理想化肌肉几何形状的准静态以及动态模拟进行了研究。

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