A general hyperelastic model for rubber-like materials incorporating strain-rate and temperature

被引:4
作者
Jiang, Dianjie [1 ]
Wang, Zhanjiang [1 ]
Wang, Xiaoyang [1 ]
机构
[1] Southwest Jiaotong Univ, Dept Mech Engn, Chengdu 610031, Peoples R China
关键词
Hyperelastic materials; constitutive model; strain rate and temperature effects; ethylene propylene diene monomer; fitting method; CONSTITUTIVE MODEL; FINITE THERMOELASTICITY; MECHANICAL-BEHAVIOR; TENSILE PROPERTIES; ELASTICITY; ELASTOMERS; NETWORKS;
D O I
10.1177/00952443241254926
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A comprehensive hyperelastic model that precisely forecasts the mechanical characteristics of materials with rubber-like qualities is presented. This model relies on the well-established five-parameter Mooney-Rivlin model, which is then extended to incorporate strain rate dependent and temperature dependent term. To validate its accuracy, experimental data from ethylene propylene diene monomer (EPDM) rubber materials was utilized to compare with the model prediction. Hyperelastic stress-strain curves were collected from a variety of materials that were subjected to varying temperatures and strain rates to improve the model's applicability. Its prediction results are compared against the collected experimental data, resulting in consistent and reliable outcomes. The simplified form of the model not only establishes an effective framework for characterizing and predicting the mechanical response of materials that resemble rubber under different working conditions but makes the coding and implementation of finite element analysis easier.
引用
收藏
页码:624 / 651
页数:28
相关论文
共 50 条
[31]   AN ANISOTROPIC MODEL FOR THE MULLINS EFFECT IN MAGNETOACTIVE RUBBER-LIKE MATERIALS [J].
Shariff, M. H. B. M. ;
Bustamante, Roger .
JOURNAL OF MECHANICS OF MATERIALS AND STRUCTURES, 2016, 11 (05) :559-582
[32]   Explicitly Modeling Stress Softening and Thermal Recovery for Rubber-like Materials [J].
Wang, Xiaoming ;
Xiao, Heng ;
Lu, Shengliang .
SYMMETRY-BASEL, 2022, 14 (12)
[33]   A model for rubber-like materials with three parameters obtained from a tensile test [J].
Amores, Victor Jesus ;
Moreno, Laura ;
Benitez, Jose Maria ;
Montans, Francisco Javier .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2023, 100
[34]   Experimental characterization and continuum modeling of inelasticity in filled rubber-like materials [J].
Wang, Shuolun ;
Chester, Shawn A. .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2018, 136 :125-136
[35]   An elastic model for rubber-like materials based on a force-equivalent network [J].
Wei, Zhigang ;
Yang, Shubao .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2020, 84
[36]   Constitutive modeling of rubber-like materials: an alternative material model [J].
Singh, Deepu Kumar ;
Kumar, Deepak ;
Yadav, Vinod .
INDIAN CHEMICAL ENGINEER, 2023, 65 (02) :221-232
[37]   Methodical fitting for mathematical models of rubber-like materials [J].
Destrade, Michel ;
Saccomandi, Giuseppe ;
Sgura, Ivonne .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2017, 473 (2198)
[38]   A 3D micromechanical model for hyperelastic rubber-like materials and its numerical resolution by the Asymptotic Numerical Method (ANM) [J].
Ouardi, Ayoub ;
Hamdaoui, Abdellah ;
Arfaoui, Makrem ;
Boukamel, Adnane ;
Damil, Noureddine .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2025, 111
[39]   How to identify a hyperelastic constitutive equation for rubber-like materials with multiaxial tension-torsion experiments [J].
Lectez, A. -S. ;
Verron, E. ;
Huneau, B. .
INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 2014, 65 :260-270
[40]   On thermal and strain-rate dependences of polymethacrylimide (PMI) foam materials [J].
Huo, Xintao ;
Jiang, Zhongcheng ;
Gu, Xianguang ;
Luo, Quantian ;
Li, Qing ;
Sun, Guangyong .
THIN-WALLED STRUCTURES, 2024, 202