Visco-Hyperelastic Constitutive Modeling for High-Damping Rubber Materials During Combined Quasi-Static Compression–Cyclic Shear Deformation Process

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-07-16 DOI:10.1142/s1758825124500704
Bowen Chen, Junwu Dai
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Abstract

High-damping rubber materials utilized in high-damping rubber isolation bearings are frequently subjected to multiple deformations during the occurrence of earthquakes. Typically, large combined compression–shear deformations of the material could potentially cause compressive shear damage to rubber bearings. During this process, visco-hyperelastic properties of rubber materials will greatly change, which would significantly impact the seismic performance of rubber bearings. Thus, to give out a deep insight into their variations, it is necessary and urgent to develop a high-performance numerical method to investigate this process. This paper proposed a visco-hyperelastic constitutive modeling approach for high-damping rubber materials based on the experimental assessment of combined quasi-static compression–cyclic shear deformation process. Within the thermodynamic framework, the Clausius–Duhem inequality associated with the intrinsic dissipation of the material was firstly derived in accordance with the Lagrangian formulism. Then, stress–strain relations were obtained upon considering the occurrence of entropy production due to viscous dissipation. In the model, Stumpf–Marczak strain energy density function, which satisfies the Baker–Ericksen (B–E) inequality, was harnessed to describe the hyperelasticity of the material. By introducing higher orders of strain and strain rates and taking their couplings into account, a generalized viscous dissipation potential was proposed to capture nonlinear strain and strain rate-sensitivity effects of the material. To identify constitutive parameters, the deformation gradient was particularized for the combined quasi-static compression–cyclic shear deformation process. And, an inverse identification procedure was carried out at different levels of compression stress. The prediction results revealed that the proposed model exhibits remarkable prediction ability and adaptivity for different rubber materials during this process. Several new insights were highlighted on the variations of visco-hyperelastic characteristics of high-damping rubber materials with respect to the compression stress. The accuracy of the model was further validated by design parameters including initial shear modulus, secant shear modulus and equivalent viscous damping factor. This work could provide a fundamental guideline for the optimization and reliability analysis of high-damping rubber isolation bearings used in the field of seismic engineering.
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准静态压缩-循环剪切联合变形过程中高阻尼橡胶材料的粘-超弹性构造模型
高阻尼橡胶隔离支座中使用的高阻尼橡胶材料在地震发生时经常会发生多重变形。通常情况下,材料的巨大压缩剪切综合变形可能会对橡胶支座造成压缩剪切破坏。在此过程中,橡胶材料的粘弹性能将发生巨大变化,这将对橡胶支座的抗震性能产生重大影响。因此,为了深入了解其变化,开发一种高性能的数值方法来研究这一过程是必要和迫切的。本文基于准静态压缩-循环剪切组合变形过程的实验评估,提出了高阻尼橡胶材料的粘滞-超弹性构造模型方法。在热力学框架内,首先根据拉格朗日公式推导出与材料内在耗散相关的克劳修斯-杜恒不等式。然后,考虑到粘性耗散产生的熵,得出了应力-应变关系。在模型中,利用满足贝克-埃里克森(B-E)不等式的 Stumpf-Marczak 应变能量密度函数来描述材料的超弹性。通过引入更高阶的应变和应变率并将其耦合考虑在内,提出了广义粘性耗散势能,以捕捉材料的非线性应变和应变率敏感效应。为了确定构成参数,对准静态压缩-循环剪切组合变形过程的变形梯度进行了特殊化。并在不同的压缩应力水平下进行了反向识别。预测结果表明,所提出的模型在这一过程中对不同橡胶材料表现出卓越的预测能力和适应性。对于高阻尼橡胶材料的粘-超弹性特性随压缩应力的变化,提出了一些新的见解。该模型的准确性通过设计参数(包括初始剪切模量、正切剪切模量和等效粘滞阻尼系数)得到了进一步验证。这项工作可为地震工程领域使用的高阻尼橡胶隔震支座的优化和可靠性分析提供基本指导。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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