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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Molecular dynamics simulations of deformation mechanisms of amorphous polyethylene
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Molecular dynamics simulations of deformation mechanisms of amorphous polyethylene

机译:非晶态聚乙烯变形机理的分子动力学模拟

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摘要

Molecular dynamics simulations were used to study deformation mechanisms during uniaxial tensile deformation of an amorphous polyethylene polymer. The stress-strain behavior comprised elastic, yield, strain softening and strain hardening regions that were qualitatively in agreement with previous simulations and experimental results. The chain lengths, number of chains, strain rate and temperature dependence of the stress-strain behavior was investigated. The energy contributions from the united atom potential were calculated as a function of strain to help elucidate the inherent deformation mechanisms within the elastic, yield, and strain hardening regions. The results of examining the partitioning of energy show that the elastic and yield regions were mainly dominated by interchain non-bonded interactions whereas strain hardening regions were mainly dominated by intra-chain dihedral motion of polyethylene. Additional results show how internal mechanisms associated with bond length, bond angle, dihedral distributions, change of free volume and chain entanglements evolve with increasing deformation.
机译:分子动力学模拟用于研究非晶态聚乙烯聚合物在单轴拉伸变形过程中的变形机理。应力-应变行为包括弹性,屈服,应变软化和应变硬化区域,在质量上与先前的模拟和实验结果一致。研究了链长,链数,应变速率和温度对应力应变行为的依赖性。计算单位原子势能的能量贡献作为应变的函数,以帮助阐明弹性,屈服和应变硬化区域内的固有变形机制。检查能量分配的结果表明,弹性区和屈服区主要由链间非键相互作用主导,而应变硬化区则主要由聚乙烯的链内二面运动主导。其他结果表明,与键长,键角,二面体分布,自由体积变化和链缠结有关的内部机制是如何随着变形的增加而发展的。

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