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Correlation effects during liquid infiltration into hydrophobic nanoporous media

机译:液体渗透到疏水性纳米多孔介质中的相关效应

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摘要

To explain the thermal effects observed during the infiltration of a nonwetting liquid into a disordered nanoporous medium, we have constructed a model that includes correlation effects in a disordered medium. It is based on analytical methods of the percolation theory. The infiltration of a porous medium is considered as the infiltration of pores in an infinite cluster of interconnected pores. Using the model of randomly situated spheres (RSS), we have been able to take into account the correlation effect of the spatial arrangement and connectivity of pores in the medium. The other correlation effect of the mutual arrangement of filled and empty pores on the shell of an infinite percolation cluster of filled pores determines the infiltration fluctuation probability. This probability has been calculated analytically. Allowance for these correlation effects during infiltration and defiltration makes it possible to suggest a physical mechanism of the contact angle hysteresis and to calculate the dependences of the contact angles on the degree of infiltration, porosity of the medium, and temperature. Based on the suggested model, we have managed to describe the temperature dependences of the infiltration and defiltration pressures and the thermal effects that accompany the absorption of energy by disordered porous medium-nonwetting liquid systems with various porosities in a unified way.
机译:为了解释在非润湿性液体渗透到无序纳米多孔介质中观察到的热效应,我们构建了一个模型,其中包括在无序介质中的相关效应。它基于渗流理论的分析方法。多孔介质的渗透被认为是无限的相互连接的孔簇中的孔的渗透。使用随机放置的球体(RSS)模型,我们已经能够考虑介质中孔隙的空间排列和连通性的相关影响。填充孔和空孔的相互排列对填充孔的无限渗流簇的壳的其他相关影响决定了渗透波动的可能性。此概率已通过分析得出。在渗透和脱滤期间允许这些相关效应使得可以提出接触角滞后的物理机制,并且可以计算接触角对渗透度,介质孔隙率和温度的依赖性。基于建议的模型,我们设法以统一的方式描述了各种孔隙度的无序多孔介质-非润湿液体系统吸收和吸收压力的温度依赖性以及伴随能量吸收的热效应。

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