TY - JOUR
T1 - A Pseudo-Hyperelastic Model for Rubber-like Materials
T2 - Modeling and Validation
AU - Lian, Chenchen
AU - Wang, Peiyan
AU - Su, Pengcheng
AU - Zhao, Shizhen
AU - Wang, Haoyu
AU - Zhou, Zhengwang
AU - Zhang, Ke
AU - Yue, Zhufeng
N1 - Publisher Copyright:
© 2026 World Scientific Publishing Europe Ltd.
PY - 2026/3/1
Y1 - 2026/3/1
N2 - This work aims to develop a pseudo-hyperelastic model for describing the nonlinear large deformation behavior of rubber-like materials. The basic hyperelastic model considers the contributions of the cross-linked network, entangled network and logarithmic term. On this basis, the model parameters of the basic hyperelastic model are considered as rate-dependent functions, forming a pseudo-hyperelastic model that can predict rate effects. For the model validation of the basic hyperelastic model, uniaxial tensile and compression experiments of rubber materials were performed, and the new model accurately captured the characteristic behavior of the material from small to moderate deformations in tension and compression, which is superior to existing hyperelastic models. Further, the prediction ability of the new model for complex load types is greatly improved compared to other similar micro-mechanical models. For the validation of the pseudo-hyperelastic model considering the rate effect, dynamic compression tests were conducted, and rate-related parameters were introduced to the basic hyperelastic model, which effectively captured the deformation at different strain rates. Compared with the popular pseudo-hyperelastic model and viscoelastic model, the new model has higher prediction accuracy. The developed model can facilitate the ability to predict the deformation behavior of elastomers.
AB - This work aims to develop a pseudo-hyperelastic model for describing the nonlinear large deformation behavior of rubber-like materials. The basic hyperelastic model considers the contributions of the cross-linked network, entangled network and logarithmic term. On this basis, the model parameters of the basic hyperelastic model are considered as rate-dependent functions, forming a pseudo-hyperelastic model that can predict rate effects. For the model validation of the basic hyperelastic model, uniaxial tensile and compression experiments of rubber materials were performed, and the new model accurately captured the characteristic behavior of the material from small to moderate deformations in tension and compression, which is superior to existing hyperelastic models. Further, the prediction ability of the new model for complex load types is greatly improved compared to other similar micro-mechanical models. For the validation of the pseudo-hyperelastic model considering the rate effect, dynamic compression tests were conducted, and rate-related parameters were introduced to the basic hyperelastic model, which effectively captured the deformation at different strain rates. Compared with the popular pseudo-hyperelastic model and viscoelastic model, the new model has higher prediction accuracy. The developed model can facilitate the ability to predict the deformation behavior of elastomers.
KW - constitutive model
KW - large deformation
KW - rate-dependent
KW - Rubber-like materials
UR - https://www.scopus.com/pages/publications/105030601848
U2 - 10.1142/S1758825126500031
DO - 10.1142/S1758825126500031
M3 - 文章
AN - SCOPUS:105030601848
SN - 1758-8251
VL - 18
JO - International Journal of Applied Mechanics
JF - International Journal of Applied Mechanics
IS - 3
M1 - 2650003
ER -