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Molecular dynamics simulations of shock waves in hydroxyl-terminated polybutadiene melts: Mechanical and structural responses

机译:羟基封端的聚丁二烯熔体中冲击波的分子动力学模拟:机械和结构响应

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The mechanical and structural responses of hydroxyl-terminated cis-1,4-polybutadiene melts to shock waves were investigated by means of all-atom non-reactive molecular dynamics simulations. The simulations were performed using the OPLS-AA force field but with the standard 12-6 Lennard-Jones potential replaced by the Buckingham exponential-6 potential to better represent the interactions at high compression. Monodisperse systems containing 64, 128, and 256 backbone carbon atoms were studied. Supported shock waves were generated by impacting the samples onto stationary pistons at impact velocities of 1.0, 1.5, 2.0, and 2.5 km s~(?1), yielding shock pressures between approximately 2.8 GPa and 12.5 GPa. Single-molecule structural properties (squared radii of gyration, asphericity parameters, and orientational order parameters) and mechanical properties (density, shock pressure, shock temperature, and shear stress) were analyzed using a geometric binning scheme to obtain spatio-temporal resolution in the reference frame centered on the shock front. Our results indicate that while shear stress behind the shock front is relieved on a ~0.5 ps time scale, a shock-induced transition to a glass-like state occurs with a concomitant increase of structural relaxation times by several orders of magnitude.
机译:通过全原子非反应性分子动力学模拟研究了羟基封端的顺式1,4-聚丁二烯熔体对冲击波的机械和结构响应。使用OPLS-AA力场进行了模拟,但标准的12-6 Lennard-Jones电势被白金汉指数6电势代替,以更好地表示高压缩时的相互作用。研究了包含64、128和256个主链碳原子的单分散体系。通过以1.0、1.5、2.0和2.5 km s〜(?1)的冲击速度将样品冲击到固定活塞上,产生支撑的冲击波,产生的冲击压力约为2.8 GPa至12.5 GPa。使用几何分箱方案分析了单分子的结构特性(回转半径的平方,非球面度参数和取向顺序参数)和机械特性(密度,冲击压力,冲击温度和剪切应力),以获得时空分辨率。参考框架位于减震前部的中心。我们的结果表明,虽然在约0.5 ps的时间范围内减轻了冲击前沿后面的剪应力,但发生了由激振引起的向玻璃态的转变,同时结构弛豫时间也相应增加了几个数量级。

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