Virgin Passive Colon Biomechanics and a Literature Review of Active Contraction Constitutive Models

A. Bhattarai, A. Horbach, Manfred Staat, W. Kowalczyk, T. N. Tran
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引用次数: 2

Abstract

The objective of this paper is to present our findings on the biomechanical aspects of the virgin passive anisotropic hyperelasticity of the porcine colon based on equibiaxial tensile experiments. Firstly, the characterization of the intestine tissues is discussed for a nearly incompressible hyperelastic fiber-reinforced Holzapfel–Gasser–Ogden constitutive model in virgin passive loading conditions. The stability of the evaluated material parameters is checked for the polyconvexity of the adopted strain energy function using positive eigenvalue constraints of the Hessian matrix with MATLAB. The constitutive material description of the intestine with two collagen fibers in the submucosal and muscular layer each has been implemented in the FORTRAN platform of the commercial finite element software LS-DYNA, and two equibiaxial tensile simulations are presented to validate the results with the optical strain images obtained from the experiments. Furthermore, this paper also reviews the existing models of the active smooth muscle cells, but these models have not been computationally studied here. The review part shows that the constitutive models originally developed for the active contraction of skeletal muscle based on Hill’s three-element model, Murphy’s four-state cross-bridge chemical kinetic model and Huxley’s sliding-filament hypothesis, which are mainly used for arteries, are appropriate for numerical contraction numerical analysis of the large intestine.
原始被动结肠生物力学及主动收缩本构模型的文献综述
本文的目的是基于等双轴拉伸实验,介绍我们对猪结肠原始被动各向异性超弹性的生物力学方面的发现。首先,讨论了在原始被动加载条件下,几乎不可压缩的超弹性纤维增强Holzapfel–Gasser–Ogden本构模型的肠道组织特征。使用Hessian矩阵的正特征值约束,使用MATLAB检查所采用的应变能函数的多凸性,以检查所评估的材料参数的稳定性。在商业有限元软件LS-DYNA的FORTRAN平台上实现了粘膜下层和肌肉层各有两条胶原纤维的肠道的本构材料描述,并进行了两次等双轴拉伸模拟,用实验获得的光学应变图像验证了结果。此外,本文还回顾了现有的活动平滑肌细胞模型,但这些模型在这里还没有进行计算研究。综述部分表明,最初基于Hill的三元模型、Murphy的四态跨桥化学动力学模型和Huxley的滑丝假说为骨骼肌主动收缩开发的本构模型,主要用于动脉,适用于大肠的数值收缩数值分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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