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首页> 外文期刊>The Journal of Chemical Physics >Analysis of the configurational temperature of polymeric liquids under shear and elongational flows using nonequilibrium molecular dynamics and Monte Carlo simulations
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Analysis of the configurational temperature of polymeric liquids under shear and elongational flows using nonequilibrium molecular dynamics and Monte Carlo simulations

机译:使用非平衡分子动力学和蒙特卡洛模拟法分析聚合物液体在剪切和拉伸流动下的构型温度

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We present a detailed analysis of the configurational temperature (Tconf) for its application to polymeric materials using nonequilibrium molecular dynamics (NEMD) and nonequilibrium Monte Carlo (NEMC) methods. Simulations were performed of linear polyethylene liquid C78 H158 undergoing shear and elongational flows. At equilibrium, Tconf is equal to the set point temperature of the simulation. An aphysically large decrease in Tconf is observed in the NEMD simulations for both flows, especially at strong flow fields. By analyzing separately the individual contributions of the different potential interaction modes to the configurational temperature, it is found that the bonded modes (which constitutes almost 99.5% of the total) dominate the total Tconf over the nonbonded ones; i.e., bond-stretching (≈86.5%), bond-bending (≈11.8%), bond-torsional (≈1.2%), nonbonded intermolecular (≈0.4%), and intramolecular (≈0.1%) Lennard-Jones. The configurational temperature of the individual modes generally exhibits a nonmonotonic behavior with the flow strength and a dramatic change beyond a critical value of flow strength; this is mainly attributed to the dynamical effect of strong molecular collisions occurring at strong flow fields. In contrast, no such behavior is observed in the NEMC simulations where such dynamical effects are absent. Based on the principal physical concept of the configurational temperature, which represents the large-scale structural characteristics of the system, we propose to exclude the dynamical effects exhibited by the individual interaction modes, in obtaining a physically meaningful Tconf as the configurational entropy of the system should not be affected by such factors. Since (a) the main difference between equilibrium and nonequilibrium states lies in the change in the overall (global) structure (represented by the bond torsional and nonbonded modes), and (b) the local, very short structure (represented by the bond-stretching and bond-bending modes) is barely changing between equilibrium and nonequilibrium states and its contribution to the total system configurational entropy is negligible compared to the large-scale structural changes, in order to accurately describe the structural changes occurring at nonequilibrium states by use of the configurational temperature, we further propose that only the contributions from the bond-torsional and nonbonded modes to Δ Tconf between equilibrium and nonequilibrium states should be taken into account to generate a physically meaningful Δ Tconf. Applying the above hypothesis to the analysis of the simulation data, good agreement between the NEMD and NEMC simulations (and between NEMD simulations for different flows) is observed. Furthermore, the configurational temperature obtained in such way is found to match remarkably well with the heat capacity of amorphous polyethylene liquids and the flow-enhanced melting-point elevation reported in experiment.
机译:我们介绍了使用非平衡分子动力学(NEMD)和非平衡蒙特卡洛(NEMC)方法将构型温度(Tconf)应用于聚合物材料的详细分析。对线性聚乙烯液体C78 H158进行剪切和伸长流动进行了模拟。在平衡状态下,Tconf等于模拟的设定温度。在NEMD模拟中,对于两种流动,特别是在强流场中,Tconf的下降幅度都达到了明显的降低。通过分别分析不同的潜在相互作用模式对构型温度的个体贡献,发现键合模式(几乎占总数的99.5%)在非键合模式中占主导地位。即,键拉伸(≈86.5%),键弯曲(≈11.8%),键扭转(≈1.2%),非键分子间(≈0.4%)和分子内(≈0.1%)Lennard-Jones。各个模式的构型温度通常表现出随流动强度的非单调行为,并且在超过流动强度的临界值时发生剧烈变化。这主要归因于在强流场中发生的强分子碰撞的动力学效应。相反,在NEMC模拟中没有观察到这种行为,而没有这种动力学效应。基于构型温度的主要物理概念(代表系统的大规模结构特征),我们建议在获得具有物理意义的Tconf作为系统的构型熵时,排除个体相互作用模式所表现出的动力学效应不应受此类因素的影响。由于(a)平衡状态与非平衡状态之间的主要差异在于整体(整体)结构的变化(由键的扭转和非键合模式表示),以及(b)局部的非常短的结构(由键表示)拉伸和键弯曲模式)在平衡状态和非平衡状态之间几乎没有变化,并且与大规模结构变化相比,其对整个系统构型熵的贡献可以忽略不计,以便通过使用来准确描述在非平衡状态下发生的结构变化在构型温度下,我们进一步建议,只有键扭和非键模式对平衡态和非平衡态之间的ΔTconf的贡献才应考虑在内,以产生物理上有意义的ΔTconf。将上述假设应用于模拟数据分析,可以观察到NEMD和NEMC模拟之间(以及针对不同流的NEMD模拟之间)具有良好的一致性。此外,发现以这种方式获得的构型温度与无定形聚乙烯液体的热容量和实验中报道的提高流动的熔点高度非常匹配。

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