有限应变微孔隙力学:与宏观孔隙力学的表述及对比分析

IF 3.8 3区 工程技术 Q1 MECHANICS
Mahdi Manoochehrtayebi , Aline Bel-Brunon , Martin Genet
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引用次数: 0

摘要

多孔材料在自然界中无处不在——尤其是经常发生大变形的活体组织——以及工程应用中。孔隙力学是建立这类材料响应模型的理论;然而,它在描述微观现象和结构-性质关系方面是有限的。在本文中,我们提出了一种基于微孔力学问题的新公式的微观孔隙力学模型,该模型允许计算任何多孔周期性微观结构对包括流体压力、宏观应变和/或宏观应力在内的任何载荷的响应。我们系统地比较了微观模型与宏观孔隙力学的整体响应,在无穷小和有限应变设置下,并特别研究了三种机制,即固体压缩性,应变-压力耦合和偏差-体积应变耦合。我们特别说明了如何使用微观模型来推导宏观参数,以及这些参数如何依赖于微观特征,如孔隙形状,孔隙率,材料性质等。该建模框架将成为各种材料和组织的强大微孔隙力学模型的基础,其中孔隙尺度现象可以明确地纳入。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finite strain micro-poro-mechanics: Formulation and compared analysis with macro-poro-mechanics
Porous materials are ubiquitous in nature – notably living tissues, which often undergo large deformations – and engineering applications. Poromechanics is an established theory to model the response of such materials; however, it is limited in its description of microscale phenomena, and structure-properties relationships. In this paper, we propose a microscopic poromechanical model based on a novel formulation of the micro-poro-mechanics problem, which allows to compute the response of any porous periodic microstructure to any loading involving fluid pressure, macroscopic strain, and/or macroscopic stress. We systematically compare the global response of our micro-model to macro-poromechanics, in both the infinitesimal and finite strain settings, and investigate in particular three mechanisms, namely solid compressibility, strain-pressure coupling and deviatoric-volumetric strain coupling. We notably illustrate how the micro-model can be used to derive macroscopic parameters, and how these parameters depend on microscopic features like pore shape, porosity, material properties, etc. This modeling framework will be the basis for powerful micro-poro-mechanical models of various materials and tissues, where pore-scale phenomena can be incorporated explicitly.
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来源期刊
CiteScore
6.70
自引率
8.30%
发文量
405
审稿时长
70 days
期刊介绍: The International Journal of Solids and Structures has as its objective the publication and dissemination of original research in Mechanics of Solids and Structures as a field of Applied Science and Engineering. It fosters thus the exchange of ideas among workers in different parts of the world and also among workers who emphasize different aspects of the foundations and applications of the field. Standing as it does at the cross-roads of Materials Science, Life Sciences, Mathematics, Physics and Engineering Design, the Mechanics of Solids and Structures is experiencing considerable growth as a result of recent technological advances. The Journal, by providing an international medium of communication, is encouraging this growth and is encompassing all aspects of the field from the more classical problems of structural analysis to mechanics of solids continually interacting with other media and including fracture, flow, wave propagation, heat transfer, thermal effects in solids, optimum design methods, model analysis, structural topology and numerical techniques. Interest extends to both inorganic and organic solids and structures.
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