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Molecular dynamics analysis of the friction between a water-methanol liquid mixture and a non-polar solid crystal surface

机译:水 - 甲醇液体混合物与非极性固体晶体表面摩擦的分子动力学分析

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We performed molecular dynamics analysis of the momentum transfer at the solid-liquid interface for a water-methanol liquid mixture between parallel non-polar solidwalls in order to understand the strong decrease of the friction coefficient (FC) induced by the methanol adsorption at the surface observed in our previous work [S. Nakaoka et al., Phys. Rev. E 92, 022402 (2015)]. In particular, we extracted the individual contributions of water and methanol molecules to the total FC and found that the molecular FC for methanol was larger than that for water. We further showed that the reduction of the total solid-liquid FC upon the increase of the methanol molar fraction in the first adsorption layer occurred as a result of a decrease in the molecular number density as well as a decrease in the molecular FCs of both molecules. Analysis of the molecular orientation revealed that the decrease of the molecular FC of methanol resulted from changes of the contact feature onto the solid surface. Specifically, methanol molecules near the solid surface had their C-O bond parallel to the surface with both CH3 and O sites contacting the solid at low methanol molar fraction, while they had their C-O bond outward from the surface with only the CH3 site contacting the solid at higher methanol molar fraction. The mechanisms discussed in this work could be used to search for alternative water additives to further reduce the solid- liquid friction. Published by AIP Publishing.
机译:我们对并联非极性固体固定件之间的水 - 甲醇液体混合物进行了用于固体 - 液体界面的动量转移的分子动力学分析,以了解由表面甲醇吸附诱导的摩擦系数(Fc)的强度降低在我们以前的工作中观察到[S. nakaoka等人。,phy。 Rev.E 92,022402(2015)]。特别是,我们将水和甲醇分子的各个贡献提取到总FC,发现甲醇的分子Fc大于水。我们进一步表明,由于分子数密度的降低,在第一吸附层中的甲醇摩尔分数增加时,将总固液Fc的减少在分子数密度的降低以及两个分子的分子Fcs中的降低。分子取向分析显示,甲醇的分子Fc降低是由于接触特征的变化在固体表面上产生。具体地,在固体表面附近的甲醇分子具有与表面平行的CON键,其中CH3和O位点在低甲醇摩尔分数下接触固体,同时仅通过接触固体的CH 3位点向外键。更高的甲醇摩尔级分。本作作品中讨论的机制可用于搜索替代水添加剂,以进一步降低固体摩擦。通过AIP发布发布。

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