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首页> 外文期刊>Philosophical magazine: structure and properties of condensed matter >A nonlinear macroscopic multi-phasic model for describing interactions between solid, fluid and ionic species in biological tissue materials
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A nonlinear macroscopic multi-phasic model for describing interactions between solid, fluid and ionic species in biological tissue materials

机译:用于描述生物组织材料中固体,流体和离子物种之间相互作用的非线性宏观多相模型

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摘要

A nonlinear, macroscopic multi-phasic model for describing the interactions between solid, fluid, and ionic species in porous materials is presented. Governing equations are derived based on the nonlinear theories of solid mechanics, linear flow theory of Newtonian fluids, and theory of irreversible thermodynamics for the transport of ions and ionic solutions. The model shows that the transport coupling between ions and ionic solution exists only when the porous material has a membrane-like feature, which could be inside the material or on the material boundaries. Otherwise, the coupling occurs only between the solid and fluid phases and the transport of ionic species will have no effect on the macroscopic stresses, strains and displacements of the porous material. As an application of the present multi-phasic model, a numerical example of the human cornea under the shock of NaCl hypertonic solution applied to its endothelial surface is presented. This is a typical example of how ionic transport induces swelling in biological tissues. The results obtained from the present multi-phasic model demonstrate that the mechanical properties of the tissue have an important influence on the swelling of the cornea. Without taking into account this influence, the predicted swelling may be exaggerated.
机译:提出了非线性宏观多相模型,用于描述多孔材料中固体,流体和离子物种之间的相互作用。根据固体力学的非线性理论,牛顿流体的线性流动理论以及离子和离子溶液的不可逆热力学理论推导了控制方程。该模型表明,仅当多孔材料具有膜状特征(可能在材料内部或材料边界上)时,才存在离子与离子溶液之间的传输耦合。否则,偶联仅发生在固相和液相之间,并且离子物质的传输不会对多孔材料的宏观应力,应变和位移产生影响。作为本多相模型的一个应用,给出了人角膜在施加于其内皮表面的NaCl高渗溶液的冲击下的数值例子。这是离子运输如何在生物组织中引起肿胀的典型例子。从当前的多相模型获得的结果表明,组织的机械性能对角膜的肿胀有重要影响。如果不考虑这种影响,可能会夸大预测的膨胀。

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