Torsion of hydrogel cylinder with a chemo-mechanical coupled nonlinear elastic theory

In this paper, a chemo-mechanically coupled elastic model is proposed for hydrogel based on the classical physical constitutive theory. This model includes a hydrostatic pressure dependent constant, two linear Lamé constants and three second-order elastic constants, where all the constants are coupl...

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Bibliographic Details
Published inInternational journal of solids and structures Vol. 248; p. 111670
Main Authors Zheng, Chengxiang, Wu, Tao, Deng, Zichen
Format Journal Article
LanguageEnglish
Published New York Elsevier Ltd 01.07.2022
Elsevier BV
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Summary:In this paper, a chemo-mechanically coupled elastic model is proposed for hydrogel based on the classical physical constitutive theory. This model includes a hydrostatic pressure dependent constant, two linear Lamé constants and three second-order elastic constants, where all the constants are coupled with the chemical field. The influences of key chemical and physical parameters are investigated on the elastic constants, and the deformation of a cylinder are then analytically studied subject to torsion in solvent through linear and nonlinear approaches. Both methods may reproduce the conventional relation between the torque and twist angle of classical mechanics, which incorporate the effect of the chemically coupled shear modulus. The results reveal that a negative Poynting effect is demonstrated that the cylinder tends to shorten on twisting, and that the chemical potential has significant effect on the elastic constants and subsequently on the deformation and mechanical behavior of hydrogels. Further studies show that the Flory parameter and the degree of crosslinking also have important impact on the torsion of hydrogels.
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ISSN:0020-7683
1879-2146
DOI:10.1016/j.ijsolstr.2022.111670