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Atomistic Simulations of Cavitation in a Model Polyethylene Network

机译:模型聚乙烯网络中空化的原子模拟

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A molecular-level understanding of cavitation in polymer networks upon imposition of mechanical stress is still lacking. Molecular Dynamics simulations of crosslinked amorphous Polyethylene (PE) were conducted in order to study cavitation as a function of the prevailing stress. We first show that the characteristic relaxation times related to tube confinement and chain connectivity can be obtained by examining the mean square displacement of middle chain monomers. Then, we present a methodology for predicting the cavitation strength and understanding its dependence on cohesive interactions and entropic elasticity. Our simulations show that experimental observations and predictions of continuum mechanics analysis, which relate the critical stress for cavitation to the Ybung's modulus of the rubber, are in agreement with the observed tensile triaxial stress below which a pre-existing cavity cannot survive in a cavitated sample.
机译:仍然缺乏在施加机械应力时对聚合物网络中空化的分子水平的了解。为了研究空化与主要应力的关系,进行了交联无定形聚乙烯(PE)的分子动力学模拟。我们首先表明,可以通过检查中链单体的均方位移来获得与管约束和链连接性有关的特征驰豫时间。然后,我们提出了一种预测空化强度并了解其对内聚相互作用和熵弹性的依赖性的方法。我们的模拟表明,连续观测力学分析的实验观察和预测将空化的临界应力与橡胶的Ybung模量相关联,与所观察到的拉伸三轴应力相符,在此之下,预先存在的空腔无法在空化样品中幸存。

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