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A finite deformation phase-field fracture model for the thermo-viscoelastic analysis of polymer nanocomposites

机译:聚合物纳米复合材料热粘弹性分析的有限变形阶段裂缝模型

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摘要

The prediction of failure processes in polymer nanocomposites requires accurately capturing different factors such as damage mechanisms, and temperature- and rate-dependent material characteristics. This work presents the development of a finite deformation phase-field fracture model to analyze the thermo-viscoelastic behavior of boehmite nanoparticle/epoxy nanocomposites. To characterize the rate-dependent fracture evolution, the free energy is additively decomposed into an equilibrium, a non-equilibrium, and a volumetric part with a varying definition under tensile and compressive deformation. Furthermore, the Guth-Gold and modified Kitagawa models are adopted to consider the effect of the nanoparticle contents and temperature on the nanocomposites' fracture behavior. The applicability of the proposed model is evaluated by comparing the numerical results of compact-tension tests with experimental data. The experimental-numerical validation justifies the predictive capability of the model. Numerical simulations are also performed to study the effect of temperature and deformation rate on the force-displacement response of boehmite nanoparticle/epoxy samples in the compact-tension tests. (C) 2021 ElsevierB.V. All rights reserved.
机译:聚合物纳米复合材料中的失效过程的预测需要精确地捕获诸如损坏机构的不同因素和温度依赖性材料特性。该工作介绍了有限变形阶段裂缝模型的开发,以分析勃姆石纳米粒子/环氧纳米复合材料的热粘弹性行为。为了表征依赖于速率的骨折演化,自由能量会被加剧地分解成平衡,非平衡和体积零件,在拉伸和压缩变形下具有不同的定义。此外,采用Guth-Gold和改性的基塔川模型考虑纳米颗粒含量和温度对纳米复合材料的裂缝行为的影响。通过比较具有实验数据的紧凑张力测试的数值结果来评估所提出的模型的适用性。实验数值验证证明了模型的预测能力。还进行了数值模拟,以研究温度和变形率对紧凑型张力试验中勃姆石纳米粒子/环氧样品的力 - 位移响应的影响。 (c)2021 elsevierb.v。版权所有。

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