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基于非平衡分子动力学模拟对笼形水合物生长的微观洞察

Microscopic insights on clathrate hydrate growth from non-equilibrium molecular dynamics simulations.

作者信息

Phan Anh, Stamatakis Michail, Koh Carolyn A, Striolo Alberto

机构信息

School of Chemistry and Chemical Engineering, Faculty of Engineering and Physical Sciences, University of Surrey, Guildford, Surrey GU2 7XH, UK.

Department of Chemical Engineering, University College London, London WC1E 7JE, UK.

出版信息

J Colloid Interface Sci. 2023 Nov;649:185-193. doi: 10.1016/j.jcis.2023.06.032. Epub 2023 Jun 10.

Abstract

Clathrate hydrates form and grow at interfaces. Understanding the relevant molecular processes is crucial for developing hydrate-based technologies. Many computational studies focus on hydrate growth within the aqueous phase using the 'direct coexistence method', which is limited in its ability to investigate hydrate film growth at hydrocarbon-water interfaces. To overcome this shortcoming, a new simulation setup is presented here, which allows us to study the growth of a methane hydrate nucleus in a system where oil-water, hydrate-water, and hydrate-oil interfaces are all simultaneously present, thereby mimicking experimental setups. Using this setup, hydrate growth is studied here under the influence of two additives, a polyvinylcaprolactam oligomer and sodium dodecyl sulfate, at varying concentrations. Our results confirm that hydrate films grow along the oil-water interface, in general agreement with visual experimental observations; growth, albeit slower, also occurs at the hydrate-water interface, the interface most often interrogated via simulations. The results obtained demonstrate that the additives present within curved interfaces control the solubility of methane in the aqueous phase, which correlates with hydrate growth rate. Building on our simulation insights, we suggest that by combining data for the potential of mean force profile for methane transport across the oil-water interface and for the average free energy required to perturb a flat interface, it is possible to predict the performance of additives used to control hydrate growth. These insights could be helpful to achieve optimal methane storage in hydrates, one of many applications which are attracting significant fundamental and applied interests.

摘要

笼形水合物在界面处形成并生长。了解相关分子过程对于开发基于水合物的技术至关重要。许多计算研究使用“直接共存法”关注水相中的水合物生长,该方法在研究烃 - 水界面处水合物膜生长的能力方面存在局限性。为克服这一缺点,本文提出了一种新的模拟设置,它使我们能够研究在同时存在油 - 水、水合物 - 水和水合物 - 油界面的系统中甲烷水合物核的生长,从而模拟实验设置。使用该设置,本文研究了两种添加剂(聚乙烯己内酰胺低聚物和十二烷基硫酸钠)在不同浓度下对水合物生长的影响。我们的结果证实,水合物膜沿油 - 水界面生长,这与可视化实验观察结果基本一致;在水合物 - 水界面(模拟中最常研究的界面)也会发生生长,尽管速度较慢。所获得的结果表明,弯曲界面中存在的添加剂控制了甲烷在水相中的溶解度,这与水合物生长速率相关。基于我们的模拟见解,我们建议通过结合甲烷跨油 - 水界面传输的平均力势数据和扰动平面界面所需的平均自由能数据,可以预测用于控制水合物生长的添加剂的性能。这些见解可能有助于在水合物中实现最佳甲烷储存,这是众多吸引了大量基础和应用研究兴趣的应用之一。

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