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Temperature-accelerated molecular dynamics simulations of quasi-static yield stress of epoxy polymers

机译:环氧聚合物准静态屈服应力的温度加速分子动力学模拟

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Quasi-static yield stress of epoxy polymers is predicted through the molecular dynamics simulations using temperature-accelerated molecular dynamics approach. The derivation of stress under the quasi-static strain rate has been considered challenging due to the computational inefficiency on the time integral of Newton's equation of motion. To overcome this time scale limitation, we propose an acceleration approach to construct Eyring's curve, which can shows rate effect on the stress from quasi-static to high strain rate conditions, using yield stresses of elevated temperature conditions. From the uniaxial deformation simulations, it is found that the derived yield behaviors are highly dependent on the change of temperature and strain rate; the yield stress decreases with decreasing strain rate and increasing temperature. In this study, changeable shifting factors are introduced to appropriately shift the yields of elevated temperature conditions toward the quasi-static rate range. The predicted quasi-static yield stress of epoxy polymers is validated via experimental result.
机译:环氧聚合物的准静态屈服应力是通过使用温度加速的分子动力学方法进行的分子动力学模拟来预测的。由于牛顿运动方程时间积分的计算效率低,准静态应变率下的应力推导被认为具有挑战性。为了克服这种时标限制,我们提出了一种加速方法来构建艾林曲线,该曲线可以利用高温条件下的屈服应力来显示从准静态到高应变速率条件下应力的速率效应。从单轴变形模拟可以发现,导出的屈服行为高度依赖于温度和应变率的变化。屈服应力随着应变率的降低和温度的升高而降低。在这项研究中,引入了可变的移位因子,以适当地将高温条件下的产量移向准静态速率范围。通过实验结果验证了预测的环氧聚合物准静态屈服应力。

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