Hu Xiaoling, Yang Xing, Jiang Xi, Song Kui
School of Mechanical Engineering and Mechanics, Xiangtan University, Xiangtan 411105, China.
Hunan Key Laboratory of Geomechanics and Engineering Safety, Xiangtan University, Xiangtan 411105, China.
Polymers (Basel). 2024 Sep 14;16(18):2608. doi: 10.3390/polym16182608.
Ethylene-propylene-diene monomer (EPDM) is a key engineering material; its mechanical characterization is important for the safe use of the material. In this paper, the coupled effects of thermal degradation temperature and time on the tensile mechanical behavior of EPDM rubber were investigated. The tensile stress-strain curves of the aged and unaged EPDM rubber show strong nonlinearity, demonstrating especially rapid stiffening as the strain increases under small deformation. The popular Mooney-Rivlin and Ogden ( = 3) models were chosen to fit the test data, and the results indicate that neither of the classical models can accurately describe the tensile mechanical behavior of this rubber. Six hyperelastic constitutive models, which are excellent for rubber with highly nonlinearity, were employed, and their abilities to reproduce the stress-strain curve of the unaged EPDM were assessed. Finally, the Davis-De-Thomas model was found to be an appropriate hyperelastic model for EPDM rubber. A Dakin-type kinetic relationship was employed to describe the relationships between the model parameters and aging temperature and time, and, combined with the Arrhenius law, a thermal aging constitutive model for EPDM rubber was established. The ability of the proposed model was checked by independent testing data. In the moderate strain range of 200%, the errors remained below 10%. The maximum errors of the prediction results at 85 °C for 4 days and 100 °C for 2 and 4 days were computed to be 17.06%, 17.51% and 19.77%, respectively. This work develops a theoretical approach to predicting the mechanical behavior of rubber material that has suffered thermal aging; this approach is helpful in determining the safe long-term use of the material.
三元乙丙橡胶(EPDM)是一种关键的工程材料;其力学特性对于该材料的安全使用至关重要。本文研究了热降解温度和时间对EPDM橡胶拉伸力学行为的耦合影响。老化和未老化的EPDM橡胶的拉伸应力-应变曲线呈现出很强的非线性,在小变形下随着应变增加表现出特别迅速的硬化。选用了常用的Mooney-Rivlin模型和Ogden(n = 3)模型来拟合试验数据,结果表明这两种经典模型都不能准确描述这种橡胶的拉伸力学行为。采用了六种对高度非线性橡胶表现优异的超弹性本构模型,并评估了它们再现未老化EPDM应力-应变曲线的能力。最后,发现Davis-De-Thomas模型是适合EPDM橡胶的超弹性模型。采用Dakin型动力学关系来描述模型参数与老化温度和时间之间的关系,并结合Arrhenius定律,建立了EPDM橡胶的热老化本构模型。通过独立测试数据检验了所提出模型的能力。在200%的中等应变范围内,误差保持在10%以下。计算得出在85℃下老化4天以及在100℃下老化2天和4天的预测结果的最大误差分别为17.06%、17.51%和19.77%。这项工作开发了一种预测热老化橡胶材料力学行为的理论方法;这种方法有助于确定该材料的安全长期使用。