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The micromechanics of fluid-solid interactions during growth in porous soft biological tissue

机译:多孔软生物组织生长过程中流固耦合的微观力学

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In this paper, we address some modelling issues related to biological growth. Our treatment is based on a formulation for growth that was proposed within the context of mixture theory (J Mech Phys Solids 52:1595-1625, 2004). We aim to make this treatment more appropriate for the physics of porous soft tissues, paying particular attention to the nature of fluid transport, and mechanics of fluid and solid phases. The interactions between transport and mechanics have significant implications for growth and swelling. We also reformulate the governing differential equations for reaction-transport of solutes to represent the incompressibility constraint on the fluid phase of the tissue. This revision enables a straightforward implementation of numerical stabilisation for the advection-dominated limit of these equations. A finite element implementation with operator splitting is used to solve the coupled, non-linear partial differential equations that arise from the theory. We carry out a numerical and analytic study of the convergence of the operator splitting scheme subject to strain- and stress-homogenisation of the mechanics of fluid-solid interactions. A few computations are presented to demonstrate aspects of the physical mechanisms, and the numerical performance of the formulation.
机译:在本文中,我们解决了一些与生物生长有关的建模问题。我们的处理基于在混合物理论的背景下提出的生长配方(J Mech Phys Solids 52:1595-1625,2004)。我们的目标是使这种治疗方法更适合多孔软组织的物理学,尤其要注意流体传输的性质以及流体和固相的力学。运输和力学之间的相互作用对增长和膨胀具有重要意义。我们还重新制定了溶质反应运输的控制微分方程,以表示对组织流体相的不可压缩性约束。此次修订使这些方程式的以平流为主导的极限的数值稳定化得以简单实现。使用带有算子拆分的有限元实现来求解由该理论产生的耦合的非线性偏微分方程。我们对流固耦合力学的应变和应力均质化下的算子拆分方案的收敛性进行了数值和分析研究。提出了一些计算来证明物理机制的各个方面以及配方的数值性能。

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