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Hyperelastic modelling of arterial layers with distributed collagen fibre orientations

机译:具有分布的胶原纤维取向的动脉层的超弹性建模

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摘要

Constitutive relations are fundamental to the solution of problems in continuum mechanics, and are required in the study of, for example, mechanically dominated clinical interventions involving soft biological tissues. Structural continuum constitutive models of arterial layers integrate information about the tissue morphology and therefore allow investigation of the interrelation between structure and function in response to mechanical loading. Collagen fibres are key ingredients in the structure of arteries. In the media (the middle layer of the artery wall) they are arranged in two helically distributed families with a small pitch and very little dispersion in their orientation (i.e. they are aligned quite close to the circumferential direction). By contrast, in the adventitial and intimal layers, the orientation of the collagen fibres is dispersed, as shown by polarized light microscopy of stained arterial tissue. As a result, continuum models that do not account for the dispersion are not able to capture accurately the stress–strain response of these layers. The purpose of this paper, therefore, is to develop a structural continuum framework that is able to represent the dispersion of the collagen fibre orientation. This then allows the development of a new hyperelastic free-energy function that is particularly suited for representing the anisotropic elastic properties of adventitial and intimal layers of arterial walls, and is a generalization of the fibre-reinforced structural model introduced by Holzapfel & Gasser (Holzapfel & Gasser 2001 Comput. Meth. Appl. Mech. Eng. 190, 4379–4403) and Holzapfel et al. (Holzapfel et al. 2000 J. Elast. 61, 1–48). The model incorporates an additional scalar structure parameter that characterizes the dispersed collagen orientation. An efficient finite element implementation of the model is then presented and numerical examples show that the dispersion of the orientation of collagen fibres in the adventitia of human iliac arteries has a significant effect on their mechanical response.
机译:本构关系是解决连续力学中问题的基础,并且在例如涉及软生物组织的以机械为主的临床干预措施的研究中是必需的。动脉层的结构连续性本构模型整合了有关组织形态的信息,因此可以研究响应机械负荷的结构与功能之间的相互关系。胶原蛋白纤维是动脉结构中的关键成分。在介质(动脉壁的中间层)中,它们以两个螺距分布的家族排列,间距很小,方向上的分散很小(即,它们非常接近圆周方向排列)。相反,在胶原膜的外膜和内膜层中,胶原纤维的方向是分散的,如动脉组织染色的偏光显微镜所示。结果,没有考虑色散的连续模型无法准确地捕获这些层的应力-应变响应。因此,本文的目的是开发一种能够代表胶原纤维取向分散的结构连续体框架。然后,这允许开发新的超弹性自由能函数,该函数特别适合于表示动脉壁的外膜层和内膜层的各向异性弹性,并且是Holzapfel&Gasser(Holzapfel)引入的纤维增强结构模型的概括。 &Gasser 2001 Comput。Meth。Appl。Mech。Eng。190,4379–4403)和Holzapfel等。 (Holzapfel et al。2000 J. Elast。61,1-48)。该模型结合了一个额外的标量结构参数,该参数表征了分散的胶原蛋白的方向。然后提出了该模型的有效有限元实现,并且数值示例表明,胶原纤维的取向在人动脉外膜中的分散对其机械反应具有重要影响。

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