TY - JOUR
T1 - Damage mechanism insights into double network hydrogels
T2 - Predicting cyclic loading behaviors via monotonic loading
AU - You, Jiapeng
AU - Zhang, Junyi
AU - Yang, Baosheng
AU - Wang, Chong
AU - Liu, Zishun
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/12
Y1 - 2025/12
N2 - During the internal fracture process of the double network hydrogels (DN gels), the coupling effect between the two networks impacts excellent tensile properties and energy dissipation capabilities to the DN gels. To better understand this coupling effect and uncover the underlying damage mechanism of DN gels, it is important to study their loading behaviors. In this study, we investigate the effects of the network composition on the deformation modes under monotonic loading and fracture toughness of the DN gels. The deformation modes are categorized into five types. Among these, we find that the “Ductile & Necking” DN gels exhibit both high fracture toughness and high fracture strain. We then propose a damage model to predict the cyclic loading behaviors of the “Ductile & Necking” DN gels based on monotonic loading. The damage model quantitatively captures the stress-strain relationship and the dissipated energy density of DN gels during cyclic loading. Furthermore, the proposed damage model is validated and extended to DN gels with various physical and chemical network structures, showing good agreements with experimental results. This study establishes a connection between monotonic loading and cyclic loading behaviors in DN gels through the proposed damage model, providing deeper insights into their damage mechanisms. Additionally, it offers valuable guidance for the synthesis and design of soft materials.
AB - During the internal fracture process of the double network hydrogels (DN gels), the coupling effect between the two networks impacts excellent tensile properties and energy dissipation capabilities to the DN gels. To better understand this coupling effect and uncover the underlying damage mechanism of DN gels, it is important to study their loading behaviors. In this study, we investigate the effects of the network composition on the deformation modes under monotonic loading and fracture toughness of the DN gels. The deformation modes are categorized into five types. Among these, we find that the “Ductile & Necking” DN gels exhibit both high fracture toughness and high fracture strain. We then propose a damage model to predict the cyclic loading behaviors of the “Ductile & Necking” DN gels based on monotonic loading. The damage model quantitatively captures the stress-strain relationship and the dissipated energy density of DN gels during cyclic loading. Furthermore, the proposed damage model is validated and extended to DN gels with various physical and chemical network structures, showing good agreements with experimental results. This study establishes a connection between monotonic loading and cyclic loading behaviors in DN gels through the proposed damage model, providing deeper insights into their damage mechanisms. Additionally, it offers valuable guidance for the synthesis and design of soft materials.
KW - Cyclic loading behaviors
KW - Dissipated energy density
KW - Double network hydrogel
KW - Uniaxial tensile tests
UR - https://www.scopus.com/pages/publications/105013273897
U2 - 10.1016/j.jmps.2025.106324
DO - 10.1016/j.jmps.2025.106324
M3 - 文章
AN - SCOPUS:105013273897
SN - 0022-5096
VL - 205
JO - Journal of the Mechanics and Physics of Solids
JF - Journal of the Mechanics and Physics of Solids
M1 - 106324
ER -