首页> 外文会议>4th International Conference on Fuel Cell Science, Engineering, and Technology 2006 pt.B >NUMERICAL SIMULATION OF TWO-PHASE FLOW AND TRANSIENT RESPONSE IN POLYMER ELECTROLYTE FUEL CELL
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NUMERICAL SIMULATION OF TWO-PHASE FLOW AND TRANSIENT RESPONSE IN POLYMER ELECTROLYTE FUEL CELL

机译:聚合物电解质燃料电池中两相流和瞬态响应的数值模拟

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摘要

It is important to elucidate the transient characteristics of polymer electrolyte fuel cells (PEFC), especially when PEFC is applied to relatively small-scale power applications where it will be subjected to a wide range of loads, and may have frequent starts and stops. In addition, the water management problem, which is represented by flooding in cell and drying in proton exchange membrane (PEM), is another issue to address. The flooding is caused by liquid water accumulated in GDL and/or flow channel; the liquid water hinders mass transfer of gases to and from active layers; it can lead to rapid deterioration of cell performance. And the water management relates to the transient response of PEFC frequently. Based on these issues we wrote a numerical simulation program for unit-PEFC, which can simulate the successive events of vapor condensation, liquid saturation growth, corresponding to the dynamic change of cell voltage. We formulated mass, momentum and energy conservation equation with equivalent electric circuit; we discretized and numerically solved them. As for the gas/liquid two-phase flow formulation in GDL, we utilized multi-phase mixture (M~2) model. As for the multi-component diffusion formulation, we utilized Stefan-Maxwell equation. Using the program, we simulated the transient response to rapid increase of load current. When the current density changed from 0.5 A/cm~2 to 1.0 A/cm~2 instantaneously, cell voltage (V_(cell)) changed in the following manner. Just after the change of current, V_(cell) decreased instantaneously corresponding to IR resistance and decreased again in 10~(-1)s time-scale with the re-distribution of oxygen and with the charge of electric double layer capacitor. Then V_(cell) increased slightly in 10~1s time-scale with PEM vetting. Finally, V_(cell) decreased in 10~2 ~10~3 s time-scale with the development of liquid saturation in GDL.
机译:阐明聚合物电解质燃料电池(PEFC)的瞬态特性非常重要,尤其是当PEFC应用于相对小规模的电力应用时,该应用将承受广泛的负载,并且可能会频繁启动和停止。此外,以水淹没和质子交换膜(PEM)干燥为代表的水管理问题是另一个要解决的问题。洪水是由GDL和/或流道中积聚的液态水引起的。液态水阻碍了气体与活性层之间的传质;它会导致电池性能迅速下降。而且水管理经常涉及PEFC的瞬态响应。基于这些问题,我们编写了一个单元PEFC的数值模拟程序,该程序可以模拟蒸气凝结,液体饱和度增长(与电池电压的动态变化相对应)的连续事件。我们用等效电路制定了质量,动量和能量守恒方程;我们离散化并用数值方法解决了它们。对于GDL中的气/液两相流配方,我们采用了多相混合(M〜2)模型。对于多组分扩散配方,我们利用了Stefan-Maxwell方程。使用该程序,我们模拟了对负载电流快速增加的瞬态响应。当电流密度瞬时从0.5 A / cm〜2变为1.0 A / cm〜2时,电池电压(V_(cell))以下列方式变化。刚好在电流变化后,V_(cell)随IR电阻瞬间降低,并在10〜(-1)s的时间内随着氧气的重新分布和双电层电容器的电荷而再次降低。然后,通过PEM审核,V_(cell)在10〜1s的时间范围内略有增加。最后,随着GDL中液体饱和度的增加,V_(cell)在10〜2〜10〜3 s的时间范围内下降。

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