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甲烷水合物相图的分子模拟:自由能计算、直接共存法和超并行温度调整。

Molecular Simulation of the Phase Diagram of Methane Hydrate: Free Energy Calculations, Direct Coexistence Method, and Hyperparallel Tempering.

机构信息

Laboratoire Interdisciplinaire de Physique (LIPhy), CNRS and Université Grenoble Alpes , F-38000 Grenoble, France.

出版信息

Langmuir. 2017 Oct 24;33(42):11217-11230. doi: 10.1021/acs.langmuir.7b02238. Epub 2017 Aug 24.

DOI:10.1021/acs.langmuir.7b02238
PMID:28793774
Abstract

Different molecular simulation strategies are used to assess the stability of methane hydrate under various temperature and pressure conditions. First, using two water molecular models, free energy calculations consisting of the Einstein molecule approach in combination with semigrand Monte Carlo simulations are used to determine the pressure-temperature phase diagram of methane hydrate. With these calculations, we also estimate the chemical potentials of water and methane and methane occupancy at coexistence. Second, we also consider two other advanced molecular simulation techniques that allow probing the phase diagram of methane hydrate: the direct coexistence method in the Grand Canonical ensemble and the hyperparallel tempering Monte Carlo method. These two direct techniques are found to provide stability conditions that are consistent with the pressure-temperature phase diagram obtained using rigorous free energy calculations. The phase diagram obtained in this work, which is found to be consistent with previous simulation studies, is close to its experimental counterpart provided the TIP4P/Ice model is used to describe the water molecule.

摘要

不同的分子模拟策略被用于评估甲烷水合物在不同温度和压力条件下的稳定性。首先,使用两种水分子模型,通过爱因斯坦分子方法与半广延蒙特卡罗模拟相结合的自由能计算,确定甲烷水合物的压力-温度相图。通过这些计算,我们还估计了水和甲烷的化学势以及共存时甲烷的占有率。其次,我们还考虑了两种其他先进的分子模拟技术,这些技术可以探测甲烷水合物的相图:在巨正则系综中的直接共存方法和超并行温度蒙特卡罗方法。这两种直接技术提供的稳定性条件与使用严格自由能计算得到的压力-温度相图一致。这项工作得到的相图与之前的模拟研究一致,并且与使用 TIP4P/Ice 模型来描述水分子的实验相图接近。

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