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Molecular-dynamics study of propane-hydrate dissociation: Fluctuation-dissipation and non-equilibrium analysis

机译:丙烷 - 水合物解离的分子动力学研究:波动耗散和非平衡分析

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Equilibrium and non-equilibrium molecular-dynamics (MD) simulations have been performed to investigate thermal-driven break-up of planar propane-hydrate interfaces in contact with liquid water over the 260-320 K range. Two types of hydrate-surface water-lattice molecular termination were adopted, at the hydrate edge with water, for comparison: a 001-direct surface cleavage and one with completed cages. Statistically significant differences in melting temperatures and initial break-up rates were observed between both interface types. Dissociation rates were observed to be strongly dependent on temperature, with higher rates at larger over-temperatures vis-a-vis melting. A simple coupled mass and heat transfer model, developed previously, was applied to fit the observed dissociation profiles, and this helps us to identify clearly two distinct hydrate-decomposition regimes; following a highly temperature-dependent break-up phase, a second well-defined stage is essentially independent of temperature, in which the remaining nanoscale, de facto two-dimensional system's lattice framework is intrinsically unstable. Further equilibrium MD-analysis of the two-phase systems at their melting point, with consideration of the relaxation times gleaned from the auto-correlation functions of fluctuations in a number of enclathrated guest molecules, led to statistically significant differences between the two surface-termination cases; a consistent correlation emerged in both cases between the underlying, non-equilibrium, thermal-driven dissociation rates sampled directly from melting with that from an equilibrium-MD fluctuation-dissipation approach. Published by AIP Publishing.
机译:已经进行了平衡和非平衡分子动力学(MD)模拟,以研究在260-320k范围内与液态水接触的平面丙烷 - 水合物界面的热驱动分裂。采用两种类型的水合物表面水晶格分子终端,水合物边缘用水采用,进行:001-直接表面切割,与完成的笼子。两种界面类型之间观察到统计上的熔化温度和初始分解率的显着差异。观察到解离率强烈依赖于温度,在较大的过度温度下的速度下具有更高的速率Vis-Vis熔化。施加先前开发的简单耦合质量和传热模型以适合观察到的解离曲线,这有助于我们识别出明显的两个不同的水合物分解制度;在高度温度依赖的分解阶段之后,第二个明确的阶段基本上独立于温度,其中剩余的纳米级,事实上的二维系统的格子框架本质上是不稳定的。进一步平衡分析其熔点的两相系统,考虑到从多个围草的客体分子中的波动中波动的自相关函数收集的松弛时间,导致两个表面终端之间的统计上显着差异案例;两种情况下出现了一致的相关性,在潜在的非平衡,热驱动的解离速率中直接从平衡-MD波动耗散方法采集的熔化。通过AIP发布发布。

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