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与质子交换膜燃料电池相关的多孔表面上脱离的水滴动力学。

Dynamics of water droplets detached from porous surfaces of relevance to PEM fuel cells.

作者信息

Theodorakakos A, Ous T, Gavaises M, Nouri J M, Nikolopoulos N, Yanagihara H

机构信息

Fluid Research Co., Athens, Greece.

出版信息

J Colloid Interface Sci. 2006 Aug 15;300(2):673-87. doi: 10.1016/j.jcis.2006.04.021. Epub 2006 Jun 13.

Abstract

The detachment of liquid droplets from porous material surfaces used with proton exchange membrane (PEM) fuel cells under the influence of a cross-flowing air is investigated computationally and experimentally. CCD images taken on a purpose-built transparent fuel cell have revealed that the water produced within the PEM is forming droplets on the surface of the gas-diffusion layer. These droplets are swept away if the velocity of the flowing air is above a critical value for a given droplet size. Static and dynamic contact angle measurements for three different carbon gas-diffusion layer materials obtained inside a transparent air-channel test model have been used as input to the numerical model; the latter is based on a Navier-Stokes equations flow solver incorporating the volume of fluid (VOF) two-phase flow methodology. Variable contact angle values around the gas-liquid-solid contact-line as well as their dynamic change during the droplet shape deformation process, have allowed estimation of the adhesion force between the liquid droplet and the solid surface and successful prediction of the separation line at which droplets loose their contact from the solid surface under the influence of the air stream flowing around them. Parametric studies highlight the relevant importance of various factors affecting the detachment of the liquid droplets from the solid surface.

摘要

对质子交换膜(PEM)燃料电池使用的多孔材料表面上液滴在横流空气影响下的脱离情况进行了计算和实验研究。在特制的透明燃料电池上拍摄的电荷耦合器件(CCD)图像显示,质子交换膜内产生的水在气体扩散层表面形成液滴。如果对于给定液滴尺寸,流动空气的速度高于临界值,这些液滴就会被吹走。在透明空气通道测试模型内对三种不同碳气体扩散层材料进行的静态和动态接触角测量已用作数值模型的输入;该数值模型基于一个纳入流体体积(VOF)两相流方法的纳维 - 斯托克斯方程流动求解器。气 - 液 - 固接触线周围的可变接触角值及其在液滴形状变形过程中的动态变化,使得能够估算液滴与固体表面之间的粘附力,并成功预测在周围气流影响下液滴从固体表面脱离的分离线。参数研究突出了影响液滴从固体表面脱离的各种因素的相关重要性。

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