...
首页> 外文期刊>Adsorption >Liquid-liquid phase separation of binary Lennard-Jones fluid in slit nanopores
【24h】

Liquid-liquid phase separation of binary Lennard-Jones fluid in slit nanopores

机译:狭缝纳米孔中二元Lennard-Jones流体的液-液相分离

获取原文
获取原文并翻译 | 示例
           

摘要

The capillary phase separation of a binary mixture of two truncated and shifted Lennard-Jones (LJ) Ar liquids in slit-shaped oxygen nanopores is examined. The LJ parameters—ε(Ar(A)-Ar(A)) = ε(Ar(B)-Ar(B)) = 0.8ε(Ar(A)-Ar(B)) and 0.5ε(Ar(A)-O) = ε(Ar(B)-O)— were used to distinguish the two Ar liquids. The cut off distance for Ar was 3.5σ. We employed a molecular dynamics (MD) technique in which a pore space was connected with a bulk solution to easily determine the equilibrium bulk concentration. Liquid phase isotherms were obtained for pores with widths ranging from 5.5σ to 9.5σ, and the relation between the pore width and the phase separation concentration was determined. Each simulation was ran until the bulk concentration attained equilibrium (1-2 μs). The MD results show that the Patrick model overestimates the bulk concentration for a given pore size. We proposed a modified Patrick model in which the pore wall potential is considered. In our model, the Gibbs-Tolman-Koenig-Buff effect is not considered for the interfacial tension since two surfaces of tension exist on both sides of the equimolar dividing surface of the two-Ar liquid phase. The two surfaces of tension neutralized Gibbs-Tolman-Koenig-Buff effect each other. The present simple model successfully describes the relation to prove its reliability.
机译:在狭缝形的氧纳米孔中,考察了两种截短和移位的Lennard-Jones(LJ)Ar液体的二元混合物的毛细管相分离。 LJ参数-ε(Ar(A)-Ar(A))=ε(Ar(B)-Ar(B))=0.8ε(Ar(A)-Ar(B))和0.5ε(Ar(A) )-O)=ε(Ar(B)-O)-用于区分两种Ar液体。 Ar的截止距离为3.5σ。我们采用了分子动力学(MD)技术,其中孔隙空间与本体溶液相连,可以轻松确定平衡本体浓度。获得了宽度在5.5σ至9.5σ之间的孔的液相等温线,并确定了孔宽与相分离浓度之间的关系。进行每个模拟,直到总浓度达到平衡(1-2μs)。 MD结果表明,对于给定的孔径,Patrick模型高估了体积浓度。我们提出了一种改进的帕特里克模型,其中考虑了孔壁的潜力。在我们的模型中,界面张力不考虑Gibbs-Tolman-Koenig-Buff效应,因为在两个Ar液相的等摩尔分隔面的两侧都存在两个张力表面。张力的两个表面抵消了吉布斯-托尔曼-科尼希-巴夫效应。该简单模型成功地描述了该关系以证明其可靠性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号