首页> 外文会议>ASME International Conference on Fuel Cell Science, Engineering, and Technology >MODELING THE EFFECTS OF GAS CHANNEL FLOODING ON THE VOLTAGE-CURRENT CHARACTERISTICS OF PEM FUEL CELL
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MODELING THE EFFECTS OF GAS CHANNEL FLOODING ON THE VOLTAGE-CURRENT CHARACTERISTICS OF PEM FUEL CELL

机译:对气体通道洪水造型对PEM燃料电池电压 - 电流特性的影响

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It has been reported recently that water flooding in the gas channel (GC) has significant effects on the voltage-current characteristics of a proton exchange membrane (PEM) fuel cell. However, the theoretical treatment of these effects on the fuel cell performance is still preliminary. A one-dimensional fuel cell model including the effects of two-phase flow in the GC is proposed to investigate the influences of inlet conditions on the water distribution in fuel cell and its performance by means of coupling the GC and membrane electrode assembly (MEA) modeling domains. The model predicts that the GC conditions, which are closely correlated to the inlet conditions, significantly affect the liquid water saturation level in the MEA. An increase in the inlet air pressure or humidification level leads to more severe water flooding, while an increase in the inlet airflow rate helps mitigating the water flooding. The simulated voltage-current characteristics under various inlet conditions are verified against experimental data and simulation results of a published computational fluids dynamics (CFD) model. They indicate that the relative humidity and stoichiometry of inlet air are crucial to the fuel cell performance, particularly at high current densities, due to their influences on the liquid water distribution in the fuel cell. The correlations between the inlet conditions and the fuel cell performance are addressed in the proposed model through a more accurate treatment of two-phase water transport in the cathodic MEA and GC. These are important for appropriate water management in fuel cells.
机译:据报道,近来,气体通道(GC)中的水淹没对质子交换膜(PEM)燃料电池的电压电流特性具有显着影响。然而,对燃料电池性能的这些影响的理论处理仍然是初步的。包括在GC二相流的影响的一维燃料电池模型提出了调查的入口条件对在燃料电池中的水分分布的影响,并通过组件联接GC和膜电极的手段其性能(MEA)建模领域。该模型预测,与入口条件密切相关的GC条件显着影响了MEA中的液体水饱和度水平。入口空气压力或加湿水平的增加导致更严重的水淹水,而入口气流率的增加有助于减轻水驱。验证了各种入口条件下的模拟电压电流特性针对公开的计算流体动力学(CFD)模型的实验数据和仿真结果验证。它们表明入口空气的相对湿度和化学计量是对燃料电池性能至关重要的,特别是在高电流密度下,由于它们对燃料电池中的液体水分布的影响。通过更准确地处理阴极MEA和GC的两相水运输,在所提出的模型中解决了入口条件和燃料电池性能之间的相关性。这些对于燃料电池中适当的水管理是重要的。

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