首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Molecular dynamics simulation of orientation and crystallization of polyethylene during uniaxial extension
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Molecular dynamics simulation of orientation and crystallization of polyethylene during uniaxial extension

机译:聚乙烯单轴拉伸过程中取向和结晶的分子动力学模拟

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摘要

Molecular dynamics simulations of realistic, united atom models of polyethylene undergoing uniaxial extension are described. Systems composed of chains ranging from 25 to 400 carbons have been studied, under a variety of processing histories, including isothermal deformation at constant applied stress below the melt temperature T_m. isothermal deformation below T_m followed by annealing, isothermal deformation above T_m followed by crystallization at a quench temperature below T_m, and non-isothermal crystallization during simultaneous deformation and cooling through T_m. Extension and orientation of large segments of flexible chaisn by uniaxial deformation accelerates the primary nucleation rate to a time scale accessible by molecular dynamics simulation. Entanglements operative during active deformation promote extension and orientation without nucleation of a crystal phase, while relaxation of stress at constant strain is sufficient to allow slippage of chains past pinning points and rapid nucleation and growth of crystallites as neighboring oriented chains come into registry. Isothermal crystallization of pre-oriented systems shows an apparent increase in nucleation density at lower temperatures; the resulting ordered regions are smaller and more closely aligned in the direction of orientation. During non-isothermal deformation, where stretching and cooling occur simultaneously, a first order transition is observed, with discontinuities in the volume and global order parameter, when the system crystallizes.
机译:描述了进行单轴延伸的聚乙烯的现实,统一的原子模型的分子动力学模拟。在各种加工历史中,包括在低于熔融温度T_m的恒定外加应力下的等温变形,研究了由25至400个碳原子组成的链组成的系统。低于T_m的等温变形,然后进行退火;高于T_m的等温变形,然后在低于T_m的淬火温度下结晶;以及在同时变形和冷却至T_m的过程中进行非等温结晶。单轴变形对柔性链节大段的延伸和定向将初级成核速率加速到了分子动力学模拟可访问的时间尺度。在主动变形过程中起作用的缠结可促进延伸和取向而无晶相成核,而在恒定应变下的应力松弛足以使链滑过固定点并随着相邻取向的链进入注册表而使晶体快速成核和生长。预取向体系的等温结晶表明,在较低温度下,成核密度明显增加。所得的有序区域较小,并且在方向上更紧密对齐。在非等温变形中,同时发生拉伸和冷却,观察到一阶跃迁,当系统结晶时,其体积和整体阶跃参数不连续。

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