Controllable Deformations of Unconstrained Ideal Nematic Elastomers

IF 1.8 3区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY
L. Angela Mihai, Alain Goriely
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Abstract

We establish that, for ideal unconstrained uniaxial nematic elastomers described by a homogeneous isotropic strain-energy density function, the only smooth deformations that can be controlled by the application of surface tractions only and are universal in the sense that they are independent of the strain-energy density are those for which the deformation gradient is constant and the liquid crystal director is either aligned uniformly or oriented randomly in Cartesian coordinates. This result generalizes the classical Ericksen’s theorem for nonlinear homogeneous isotropic hyperelastic materials. While Ericksen’s theorem is directly applicable to liquid crystal elastomers in an isotropic phase where the director is oriented randomly, in a nematic phase, the constitutive strain-energy density must account also for the liquid crystal orientation which leads to significant differences in the analysis compared to the purely elastic counterpart.

Abstract Image

无约束理想向列弹性体的可控变形
我们发现,对于由均质各向同性应变能量密度函数描述的理想无约束单轴向列弹性体,只有在变形梯度恒定且液晶导向器在直角坐标中均匀排列或随机定向的情况下,才能仅通过施加表面牵引力来控制平滑变形,并且这些变形与应变能量密度无关。这一结果概括了非线性均质各向同性超弹性材料的经典埃里克森定理。虽然 Ericksen 定理直接适用于各向同性相中的液晶弹性体,在该相中,导向是随机取向的,但在向列相中,构成应变能量密度还必须考虑液晶取向,这导致分析结果与纯弹性分析结果存在显著差异。
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来源期刊
Journal of Elasticity
Journal of Elasticity 工程技术-材料科学:综合
CiteScore
3.70
自引率
15.00%
发文量
74
审稿时长
>12 weeks
期刊介绍: The Journal of Elasticity was founded in 1971 by Marvin Stippes (1922-1979), with its main purpose being to report original and significant discoveries in elasticity. The Journal has broadened in scope over the years to include original contributions in the physical and mathematical science of solids. The areas of rational mechanics, mechanics of materials, including theories of soft materials, biomechanics, and engineering sciences that contribute to fundamental advancements in understanding and predicting the complex behavior of solids are particularly welcomed. The role of elasticity in all such behavior is well recognized and reporting significant discoveries in elasticity remains important to the Journal, as is its relation to thermal and mass transport, electromagnetism, and chemical reactions. Fundamental research that applies the concepts of physics and elements of applied mathematical science is of particular interest. Original research contributions will appear as either full research papers or research notes. Well-documented historical essays and reviews also are welcomed. Materials that will prove effective in teaching will appear as classroom notes. Computational and/or experimental investigations that emphasize relationships to the modeling of the novel physical behavior of solids at all scales are of interest. Guidance principles for content are to be found in the current interests of the Editorial Board.
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