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Low temperature operation and influence parameters on the cold start ability of portable PEMFCs

机译:低温运行及其对便携式PEMFC冷启动能力的影响参数

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The start up behaviour of PEM fuel cells below 0℃ is one of the most challenging tasks to be solved before commercialisation. The automotive industry started to develop solutions to reduce the start up time of fuel cell systems in the middle of the nineties. The strategies varied from catalytic combustion of hydrogen on the electrode catalyst to fuel starvation or external stack heating via cooling loops to increase the stack temperature. Beside the automotive sector the cold start ability is as well important for portable PEMFC applications for outdoor use. But here the cold start issue is even more complicated, as the fuel cell system should be operated as passive as possible. Below 0℃ freezing of water inside the PEMFC could form ice layers in the electrode and in the gas diffusion layer. Therefore the cell reaction is limited or even inhibited. Product water during the start up builds additional barriers and leads to a strong decay of the output power at isothermal operating conditions. In order to find out which operational and hardware parameters affect this decay, potentiostatic experiments on single cells were performed at isothermal conditions. These experiments comprise investigations of the influence of membrane thickness and different GDL types as well as the effect of gas flow rates and humidification levels of the membrane. As pre stage to physical based models, empirical based prediction models are used to gain a better understanding of the main influence parameters during cold start. The results are analysed using the statistical software Cornerstone 4.0. The experience of single cell investigations are compared to start up behaviour of portable fuel cell stacks which are operated in a climate chamber at different ambient temperatures below 0℃. Additional flow sharing problems in the fuel cell stack could be seen during cold start up experiments.
机译:PEM燃料电池在0℃以下的启动行为是商业化之前要解决的最具挑战性的任务之一。在90年代中期,汽车工业开始开发解决方案以减少燃料电池系统的启动时间。这些策略的范围从氢在电极催化剂上的催化燃烧到燃料不足或通过冷却回路加热外部烟囱以增加烟囱温度。除汽车领域外,冷启动能力对于便携式PEMFC户外应用也同样重要。但是这里的冷启动问题更加复杂,因为燃料电池系统应尽可能被动地运行。低于0℃,PEMFC内部的水冻结会在电极和气体扩散层中形成冰层。因此,细胞反应受到限制甚至被抑制。在启动过程中,产品水会建立更多的障碍,并导致等温运行条件下输出功率的强烈衰减。为了找出哪些操作和硬件参数会影响这种衰减,在恒温条件下对单个电池进行了恒电位实验。这些实验包括对膜厚度和不同GDL类型的影响以及气体流速和膜加湿水平的影响的研究。作为基于物理的模型的前期准备工作,基于经验的预测模型用于更好地理解冷启动期间的主要影响参数。使用统计软件Cornerstone 4.0分析结果。将单电池研究的经验与便携式燃料电池堆的启动行为进行了比较,这些便携式燃料电池堆在气候室内在低于0℃的不同环境温度下运行。在冷启动实验期间,还会看到燃料电池堆中的其他流量分配问题。

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