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用于描述动脉组织内应力软化和永久变形的各向异性非弹性本构模型。

An anisotropic inelastic constitutive model to describe stress softening and permanent deformation in arterial tissue.

机构信息

Trinity Centre for Bioengineering, School of Engineering, Trinity College, Dublin, Ireland.

出版信息

J Mech Behav Biomed Mater. 2012 Aug;12:9-19. doi: 10.1016/j.jmbbm.2012.03.001. Epub 2012 Mar 16.

Abstract

Inelastic phenomena such as softening and unrecoverable inelastic strains induced by loading have been observed experimentally in soft tissues such as arteries. These phenomena need to be accounted for in constitutive models of arterial tissue so that computational models can accurately predict the outcomes of interventional procedures such as balloon angioplasty and stenting that involve non-physiological loading of the tissue. In this study, a novel constitutive model is described that accounts for inelastic effects such as Mullins-type softening and permanent set in a fibre reinforced tissue. The evolution of inelasticity is governed by a set of internal variables. Softening is introduced through a typical continuum damage mechanics approach, while the inelastic residual strains are introduced through an additive split in the stress tensor. Numerical simulations of aorta and carotid arterial tissue subjected to uniaxial testing in the longitudinal, circumferential and axial directions are used to demonstrate the model's ability to reproduce the anisotropic inelastic behaviour of the tissue. Material parameters derived from best-fits to experimental data are provided to describe these inelastic effects for both aortic and carotid tissue.

摘要

在动脉等软组织中已经观察到加载引起的软化和不可恢复的非弹性应变等非弹性现象。这些现象需要在动脉组织的本构模型中得到考虑,以便计算模型能够准确预测涉及组织非生理加载的介入治疗程序(如球囊血管成形术和支架置入术)的结果。在这项研究中,描述了一种新的本构模型,该模型考虑了纤维增强组织中的 Mullins 型软化和永久变形等非弹性效应。非弹性的演化由一组内部变量控制。软化通过典型的连续体损伤力学方法引入,而不可恢复的残余应变则通过应力张量的附加分解引入。对主动脉和颈动脉组织在纵向、周向和轴向进行单轴测试的数值模拟用于演示该模型再现组织各向异性非弹性行为的能力。从实验数据的最佳拟合中得出的材料参数用于描述主动脉和颈动脉组织的这些非弹性效应。

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