论文标题
在疏水多孔培养基中与亲水性结构相互作用的两个相流量的建模
Modeling of two phase flow in a hydrophobic porous medium interacting with a hydrophilic structure
论文作者
论文摘要
在生物,环境和技术系统的广泛应用中观察到通过分层材料的流体流通过分层材料。因此,有必要了解分层成分之间界面处流体的转运机制。特别感兴趣的是聚合物电解质膜燃料电池(PEM FC)中的水传输。在这里,有必要了解整个细胞成分的水的运输机制,尤其是在必须去除多余的水的阴极侧。这对于选择最佳的工作条件并改善整体细胞性能至关重要。气体扩散层(GDL)和气体分配器的孔尺度建模已被确定为研究正在进行的过程的一种有利技术。研究疏水多孔GDL与亲水性气体分配者之间的界面,一个特殊的挑战是界面处不同材料结构和润湿性能的组合和相互作用及其对流动的影响。在本文中,提出了一种建模方法,该方法捕获了两个结构域之间接地界面的疏水多孔域中流动域对流动的影响。孔网模型用作开发概念的基础,该概念被扩展为允许在接口处进行混合湿相互作用的建模。使用带有一个和几个接口孔的基本示例配置来证明模型的功能,并将其应用于与通道 - 地带结构化气体分配器接触的现实GDL表示。
Fluid flow through layered materials with different wetting behavior is observed in a wide range of applications in biological, environmental and technical systems. Therefore, it is necessary to understand the occuring transport mechanisms of the fluids at the interface between the layered constituents. Of special interest is the water transport in polymer electrolyte membrane fuel cells (PEM FC). Here, it is necessary to understand the transport mechanisms of water throughout the cell constituents especially on the cathode side, where the excess water has to be removed. This is crucial to choose optimal operating conditions and improve the overall cell performance. Pore-scale modeling of gas diffusion layers (GDLs) and gas distributor has been established as a favorable technique to investigate the ongoing processes. Investigating the interface between the hydrophobic porous GDL and the hydrophilic gas distributor, a particular challenge is the combination and interaction of the different material structures and wetting properties at the interface and its influence on the flow. In this paper, a modeling approach is presented which captures the influence of a hydrophilic domain on the flow in a hydrophobic porous domain at the interface between the two domains. A pore-network model is used as the basis of the developed concept which is extended to allow the modeling of mixed-wet interactions at the interface. The functionality of the model is demonstrated using basic example configurations with one and several interface pores and it is applied to a realistic GDL representation in contact with a channel-land structured gas distributor.