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生物组织中各向异性生长的建模:一种新方法及计算方面

Modelling of anisotropic growth in biological tissues. A new approach and computational aspects.

作者信息

Menzel A

机构信息

Department of Mechanical and Process Engineering, University of Kaiserslautern, P.O. Box 3049, 67653 Kaiserslautern, Germany.

出版信息

Biomech Model Mechanobiol. 2005 Mar;3(3):147-71. doi: 10.1007/s10237-004-0047-6. Epub 2004 Oct 15.

Abstract

In this contribution, we develop a theoretical and computational framework for anisotropic growth phenomena. As a key idea of the proposed phenomenological approach, a fibre or rather structural tensor is introduced, which allows the description of transversely isotropic material behaviour. Based on this additional argument, anisotropic growth is modelled via appropriate evolution equations for the fibre while volumetric remodelling is realised by an evolution of the referential density. Both the strength of the fibre as well as the density follow Wolff-type laws. We however elaborate on two different approaches for the evolution of the fibre direction, namely an alignment with respect to strain or with respect to stress. One of the main benefits of the developed framework is therefore the opportunity to address the evolutions of the fibre strength and the fibre direction separately. It is then straightforward to set up appropriate integration algorithms such that the developed framework fits nicely into common, finite element schemes. Finally, several numerical examples underline the applicability of the proposed formulation.

摘要

在本论文中,我们为各向异性生长现象开发了一个理论和计算框架。作为所提出的唯象方法的一个关键思想,引入了一个纤维张量或更确切地说是结构张量,它能够描述横观各向同性材料行为。基于这一额外论据,通过纤维的适当演化方程对各向异性生长进行建模,而体积重塑则通过参考密度的演化来实现。纤维强度和密度均遵循沃尔夫型定律。然而,我们详细阐述了纤维方向演化的两种不同方法,即相对于应变或相对于应力的取向。因此,所开发框架的一个主要优点是有机会分别处理纤维强度和纤维方向的演化。然后,建立合适的积分算法就很简单了,这样所开发的框架就能很好地融入常见的有限元格式。最后,几个数值例子强调了所提出公式的适用性。

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