Department of Biomedical Engineering, University of Memphis, 330 Engineering Technology Building, Memphis, TN 38152, USA.
Med Biol Eng Comput. 2011 Apr;49(4):497-506. doi: 10.1007/s11517-010-0702-2. Epub 2010 Nov 4.
The mechanical response of most soft tissue is considered to be viscohyperelastic, making the development of accurate constitutive models a challenging task. In this article, we present a constitutive model for bovine liver tissue that utilizes a viscous dissipation potential, and use it to model the response of bovine liver tissue at strain rates ranging from 0.001 to 0.04 s(-1). On the material modeling front of this study, the free energy is assumed to depend on the right Cauchy-Green deformation tensor, whereas a separate rate-dependent viscous potential is posited to characterize viscoelasticity. This viscous dissipation component is a function of the time rate of change of the right Cauchy-Green deformation tensor. On the experimental front, no-slip uniaxial compression experiments are conducted on bovine liver tissue at various strain rates. A numerical correction approach is used to account for the no-slip edge conditions, and the constitutive model is fit to the resulting corrected stress-strain data. The complete derivation of the material model, its implementation in the finite element software package ABAQUS, and a validation study are presented in this article. The results show that bovine liver tissue exhibits a strong strain-rate dependence even at the low strain rates considered here and that the proposed constitutive model is able to accurately describe this response.
大多数软组织的力学响应被认为是粘弹性的,这使得开发准确的本构模型成为一项具有挑战性的任务。在本文中,我们提出了一个牛肝组织的本构模型,该模型利用粘性耗散势来模拟牛肝组织在应变率为 0.001 到 0.04s(-1) 范围内的响应。在本研究的材料建模方面,假设自由能取决于右柯西-格林变形张量,而另外提出一个依赖于率的粘性势来描述粘弹性。这个粘性耗散分量是右柯西-格林变形张量的时间变化率的函数。在实验方面,对牛肝组织在不同应变率下进行无滑单轴压缩实验。采用数值修正方法来考虑无滑边条件,并将本构模型拟合到修正后的应力-应变数据。本文介绍了材料模型的完整推导、在有限元软件包 ABAQUS 中的实现以及验证研究。结果表明,即使在本文考虑的低应变率下,牛肝组织也表现出很强的应变率依赖性,并且所提出的本构模型能够准确地描述这种响应。