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Mechanical and Structural Characterization of Semicrystalline Polyethylene under Tensile Deformation by Molecular Dynamics Simulations

机译:用分子动力学模拟研究拉伸变形下半结晶聚乙烯的力学和结构表征

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摘要

We have studied tensile deformations of semicrystalline polyethylene (PE) with molecular dynamics simulations at two different strain rates and temperatures. Compared to earlier studies, the modeled systems were approximately 5 times larger, which allowed significantly larger strains up to about 120% to be examined. Two different modes of structural transformation of semicrystalline PE were observed at the higher temperature of 350 K, depending on the strain rate. At the faster strain rate of 5 × 10⁷ s⁻¹, cavitation in the noncrystalline region dominated, with little change in the crystalline region, resulting in monotonically declining stress with increasing strain after the yield point. However, in a small number of cases, significant deviations from the average stress–strain profile were observed that correlated with topological constraints, such as bridges and bridging entanglements connecting crystalline regions separated by the noncrystalline region, and destabilization of the crystalline region. At the slower strain rate of 5 × 10⁶ s⁻¹, we observed repeated melting/recrystallization events and significant oscillations in stress associated with variations of density in crystalline and noncrystalline regions and the displacement of polymer chains from crystalline to noncrystalline regions. When averaged over an ensemble of starting configurations for semicrystalline PE, the oscillations were found to be less coherent from microstate to microstate and offset one another. The postyield stress became notably smoother and began to resemble the plastic flow observed macroscopically, followed by stress hardening at the later stage of deformation. At the lower temperature of 250 K, cavity formation was the only mechanism observed, for both strain rates. The interplay between the thermodynamic stability of the crystalline region and the topological constraints imposed by bridges and entanglements in the noncrystalline region is crucial to understanding structural transformations of semicrystalline PE during tensile deformations.
机译:我们已经通过分子动力学模拟在两种不同的应变速率和温度下研究了半结晶聚乙烯(PE)的拉伸变形。与早期的研究相比,建模系统大约大5倍,这使得可以检查更大的菌株,最高可检测到约120%。在较高的350 K温度下,根据应变速率,观察到两种不同的半结晶PE结构转变模式。在5×10 -5 s -1的较快应变速率下,非结晶区的空化现象占主导地位,结晶区几乎没有变化,导致应力随屈服点后应变的增加而单调下降。然而,在少数情况下,观察到与平均应力-应变曲线的显着偏差,这与拓扑约束相关,例如连接由非结晶区隔开的结晶区的桥和桥联缠结,以及结晶区的不稳定。在5×10 -5 s -1的较慢应变速率下,我们观察到反复的熔化/再结晶事件和与晶体和非晶体区域的密度变化以及聚合物链从晶体到非晶体区域的位移有关的应力的明显振荡。当对半结晶PE的一组初始构型进行平均时,发现振荡在微观状态之间的相干性较小,并且彼此抵消。屈服后的应力变得更加平滑,并且开始类似于宏观观察到的塑性流动,随后在变形的后期逐渐硬化。在两种应变速率下,在250 K的较低温度下,观察到的唯一空穴形成机理。结晶区的热力学稳定性与非结晶区中桥键和纠缠所施加的拓扑约束之间的相互作用对于理解半结晶聚乙烯在拉伸变形过程中的结构转变至关重要。

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