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首页> 外文期刊>The Journal of Chemical Physics >Effect of pore geometry on the compressibility of a confined simple fluid
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Effect of pore geometry on the compressibility of a confined simple fluid

机译:孔几何对狭窄简单液体压缩性的影响

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Fluids confined in nanopores exhibit properties different from the properties of the same fluids in bulk; among these properties is the isothermal compressibility or elastic modulus. The modulus of a fluid in nanopores can be extracted from ultrasonic experiments or calculated from molecular simulations. Using Monte Carlo simulations in the grand canonical ensemble, we calculated the modulus for liquid argon at its normal boiling point (87.3 K) adsorbed in model silica pores of two different morphologies and various sizes. For spherical pores, for all the pore sizes (diameters) exceeding 2 nm, we obtained a logarithmic dependence of fluid modulus on the vapor pressure. Calculation of the modulus at saturation showed that the modulus of the fluid in spherical pores is a linear function of the reciprocal pore size. The calculation of the modulus of the fluid in cylindrical pores appeared too scattered to make quantitative conclusions. We performed additional simulations at higher temperature (119.6 K), at which Monte Carlo insertions and removals become more efficient. The results of the simulations at higher temperature confirmed both regularities for cylindrical pores and showed quantitative difference between the fluid moduli in pores of different geometries. Both of the observed regularities for the modulus stem from the Tait-Murnaghan equation applied to the confined fluid. Our results, along with the development of the effective medium theories for nanoporous media, set the groundwork for analysis of the experimentally measured elastic properties of fluid-saturated nanoporous materials. Published by AIP Publishing.
机译:限制在纳米孔中的流体表现出与散装中相同流体的性质不同的性质;这些性质是等温可压缩性或弹性模量。纳米孔中的流体的模量可以从超声实验中提取或从分子模拟计算。在大规范集合中使用蒙特卡罗模拟,我们计算了其正常沸点(87.3 k)在两种不同形态和各种尺寸的模拟硅孔中的液态氩气的模量。对于球形孔,对于超过2nm的所有孔径(直径),我们获得了流体模量对蒸汽压力的对数依赖性。饱和度的模量的计算表明,球形孔中的流体模量是往复孔径的线性函数。圆柱形孔隙中的流体模量显得过于散布,以进行定量结论。我们在较高温度(119.6 k)下进行了额外的模拟,其中蒙特卡罗插入和除去变得更有效。在较高温度下模拟的结果证实了圆柱形孔的规律性,并且在不同几何形状的孔中的流体模量之间显示了定量差异。模量的观察结果源于施加到狭窄的液体的胫骨 - Murnaghan方程。我们的结果,随着纳米多孔介质的有效介质理论的发展,设定了分析流体饱和纳米多孔材料的实验测定的弹性性能的基础。通过AIP发布发布。

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