基于分子动力学模拟的天然气水合物抗团聚效率排序

S. Mohr, Felix Hoevelmann, J. Wylde, Natascha Schelero, Juan Sarria, Nirupam Purkayastha, Zachary T. Ward, Pablo Navarro Acero, Vasileios K. Michalis
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引用次数: 0

摘要

采用计算和实验相结合的方法考察了四种表面活性剂分子抑制sII水合物颗粒团聚的能力。利用定向和非定向分子动力学(MD),对表面活性剂分子覆盖的水合物板和水滴的聚结过程进行了计算模拟。实验评估是基于摇摆细胞测量,确定必要的最小有效剂量,以抑制团聚。总体而言,仿真得到的性能排名与实验测量结果吻合较好。此外,模拟还提供了无法通过实验直接获得的额外见解,例如对质量密度分布或表面活性剂尾部方向的分析。执行许多分子的系统计算高通量筛选的可能性允许有效的漏斗方法进行分子优化和定制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ranking Anti-Agglomerant Efficiency for Gas Hydrates Through Molecular Dynamic Simulations
Computational and experimental methods were employed to assess the capacity of four surfactant molecules to inhibit the agglomeration of sII hydrate particles. Using both steered and non-steered Molecular Dynamics (MD), the coalescence process of a hydrate slab and a water droplet, both covered with surfactant molecules, was computationally simulated. The experimental assessment was based on rocking cell measurements, determining the minimum effective dose necessary to inhibit agglomeration. Overall, the performance ranking obtained by the simulations and the experimental measurements agreed very well. Moreover, the simulations gave additional insights that are not directly accessible via experiments, such as an analysis of the mass density profiles or the orientations of the surfactant tails. The possibility to perform systematic computational high-throughput screenings of many molecules allows an efficient funnel approach for molecular optimization and customization.
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