Tensile Mechanical Properties and Dynamic Constitutive Model of Polyurea Elastomer under Different Strain Rates

聚脲 材料科学 复合材料 超弹性材料 极限抗拉强度 分离式霍普金森压力棒 粘弹性 弹性体 变形(气象学) 应变率 本构方程 有限元法 结构工程 工程类 涂层
作者
Yu Chen,Hui Guo,Minqian Sun,Xiao Lv
出处
期刊:Polymers [Multidisciplinary Digital Publishing Institute]
卷期号:14 (17): 3579-3579 被引量:13
标识
DOI:10.3390/polym14173579
摘要

In order to clearly explain the large deformation mechanical characteristics of polyurea under impact and to construct a dynamic model that can be used for finite element analysis, two kinds of polyurea materials were prepared by formula design, and their uniaxial tensile properties were tested with strain rates ranging from 10-3~103 s-1 using an electronic universal testing machine and a split Hopkinson tensile bar (SHTB). The tensile stress-strain curves of polyurea were obtained under different strain rates. The difference in tensile mechanical properties of the materials was analyzed under dynamic loading and quasi-static loading. Based on the nonlinear viscoelastic theory and the energy dissipation rate inequality, a dynamic visco-hyperelastic constitutive model of polyurea elastomer was established. The research results showed that the uniaxial tensile stress-strain curves of two kinds of polyurea at different strain rates had obvious nonlinear characteristics and strain rate sensitivity and that their tensile strength increased with increased strain rate. The polyurea gradually changed from exhibiting rubbery mechanical behavior under quasi-static loading to glassy mechanical behavior under dynamic loading. The fitting analysis of experimental data and the results of finite element simulation showed that the dynamic constitutive model can predict the nonlinear mechanical behavior of polyurea elastomers over a wide range of strain rates. The research results could contribute to a deepening of the understanding of the damage and failure behavior of polyurea under impact load and provide a theoretical basis for numerical studies on impact safety design of polyurea-coated protective structures.
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