有限变形介质的电致伸缩和建模

IF 2.3 3区 工程技术 Q2 MECHANICS Acta Mechanica Pub Date : 2024-11-15 DOI:10.1007/s00707-024-04113-8
Claudio Giorgi, Angelo Morro
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引用次数: 0

摘要

本文在连续介质力学的基本定律范围内,采用一种新的方法来研究电致伸缩模型。考虑了三个一般要求。首先,在三维环境下,角动量平衡意味着柯西应力张量、电场和电极化的对称条件。通过热力学一致性检验,发现单独依赖于变形梯度和电场的本构方程不满足对称条件。相反,对于共同涉及变形梯度和电场或极化的变量,对称性是成立的。结果表明,该方案既满足热力学一致性,又满足客观性原则。接下来,通过确定由电场引起的各向同性弹性固体的变形来检验电致伸缩。此外,还表明,适当地依赖于极化或电场会产生伸长或收缩,就像在实际材料中观察到的那样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Electrostriction and modelling of finitely deformable dielectrics

The paper investigates models of electrostriction by following a new approach though within the basic laws of continuum mechanics. Three general requirements are considered. Firstly, in a three-dimensional setting the balance of angular momentum implies a symmetry condition for the Cauchy stress tensor, the electric field and the electric polarization. By checking the thermodynamic consistency it is observed that constitutive equations with a separate dependence on the deformation gradient and the electric field does not satisfy the symmetry condition. Instead the symmetry is shown to hold for variables involving jointly the deformation gradient and the electric field or the polarization. This scheme in turn is found to satisfy both the thermodynamic consistency and the objectivity principle. Next electrostriction is examined by determining the deformation of an isotropic elastic solid induced by an electric field. Furthermore, it is shown that a proper dependence on the polarization or on the electric field results in elongations or contractions just as it is observed in real materials.

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来源期刊
Acta Mechanica
Acta Mechanica 物理-力学
CiteScore
4.30
自引率
14.80%
发文量
292
审稿时长
6.9 months
期刊介绍: Since 1965, the international journal Acta Mechanica has been among the leading journals in the field of theoretical and applied mechanics. In addition to the classical fields such as elasticity, plasticity, vibrations, rigid body dynamics, hydrodynamics, and gasdynamics, it also gives special attention to recently developed areas such as non-Newtonian fluid dynamics, micro/nano mechanics, smart materials and structures, and issues at the interface of mechanics and materials. The journal further publishes papers in such related fields as rheology, thermodynamics, and electromagnetic interactions with fluids and solids. In addition, articles in applied mathematics dealing with significant mechanics problems are also welcome.
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