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界面传输:纳米孔中蒸发水的传输。

Interfacial transport of evaporating water confined in nanopores.

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

出版信息

Langmuir. 2011 Sep 6;27(17):10666-76. doi: 10.1021/la201807a. Epub 2011 Aug 2.

Abstract

A semianalytical, continuum analysis of evaporation of water confined in a cylindrical nanopore is presented, wherein the combined effect of electrostatic interaction and van der Waals forces is taken into account. The equations governing fluid flow and heat transfer between liquid and vapor phases are partially integrated analytically, to yield a set of ordinary differential equations, which are solved numerically to determine the flow characteristics and effect on the resulting shape and rate of evaporation from the liquid-vapor interface. The analysis identifies three important parameters that significantly affect the overall performance of the system, namely, the capillary radius, pore-wall temperature, and the degree of saturation of vapor phase. The extension of meniscus is found to be prominent for smaller nanoscale capillaries, in turn yielding a greater net rate of evaporation per unit pore area. The effects of temperature and ambient vapor pressure on net rate of evaporation are shown to be analogous. An increase in pore-wall temperature, which enhances saturation pressure, or a decrease in the ambient vapor pressure result in enhancing the net potential for evaporation and increasing the curvature of the interface.

摘要

本文提出了一种半解析的、连续统分析方法,用于研究圆柱纳米孔中受限水的蒸发,其中考虑了静电相互作用和范德华力的综合影响。控制液-汽相间流体流动和传热的方程部分进行了解析积分,得到了一组常微分方程,通过数值求解这些方程来确定流型特征以及对液体-蒸汽界面处蒸发的形状和速率的影响。分析确定了三个重要参数,它们显著影响系统的整体性能,即毛细半径、孔壁温度和蒸汽相的饱和度。结果表明,较小的纳米级毛细管所形成的弯月面扩展更为显著,从而导致单位孔面积的净蒸发速率更大。结果还表明,温度和环境蒸汽压力对净蒸发速率的影响是类似的。孔壁温度的升高(这会增强饱和压力)或环境蒸汽压力的降低都会增强蒸发的净潜力,并增加界面的曲率。

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