用于纤维组织和生物材料的混合coserat和更高梯度配方

IF 3.8 3区 工程技术 Q1 MECHANICS
Milad Shirani , Ivan Giorgio , Davide Astori , Jay D. Humphrey
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引用次数: 0

摘要

纤维材料,包括工程复合材料和生物组织,表现出独特的行为,可以通过融合Cosserat和更高梯度弹性的概念来表征。在这项工作中,我们通过考虑Cosserat效应来推广纤维材料的高梯度理论。利用虚功率原理和变分法得到了平衡律和边界条件。为了使系统的总势能最小,我们找到了平衡律解必须满足的拟凸性、秩一凸性和legende - hadamard不等式的条件。最后,我们给出了一个线性化的公式,并给出了说明性的计算结果。根据一个例子,坡印亭效应产生于非经典效应,如更高的梯度和coserat效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A mixed Cosserat and higher gradient formulation for fibrous tissues and biomaterials
Fibrous materials, including engineering composites and biological tissues, exhibit distinctive behaviors that can be characterized by melding concepts of Cosserat and higher gradient elasticities. In this work, we generalize higher gradient theories for fibrous materials by considering Cosserat effects. We use the principle of virtual power and the calculus of variations to obtain the balance laws and boundary conditions. For minimizing the total potential energy of the system, we find conditions for quasi-convexity, rank-one convexity, and Legendre–Hadamard inequalities that must be satisfied for solutions of the balance laws to be valid. Finally, we present a linearized formulation and show illustrative computational results. According to one example, Poynting effects arise from non-classical effects such as higher gradients and Cosserat effects.
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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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