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首页> 外文期刊>Journal of Fuel Cell Science and Technology >Using a Stack Shunt to Mitigate Catalyst Support Carbon Corrosion in Polymer Electrolyte Membrane Fuel Cell Stacks During Start-Stop Cycling
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Using a Stack Shunt to Mitigate Catalyst Support Carbon Corrosion in Polymer Electrolyte Membrane Fuel Cell Stacks During Start-Stop Cycling

机译:在启动-停止循环期间,使用堆分流器缓解聚合物电解质膜燃料电池堆中催化剂支持的碳腐蚀

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Carbon black based electrodes are generally recognized as state of the art for PEM fuel cell technology due to the high performance achieved with a relatively low Pt content. However, the catalyst carbon support is prone to carbon oxidation. This leads to a loss of the catalyst area and overall performance, along with a higher mass transport loss due to an increased flooding tendency. This phenomenon is particularly severe when the fuel cell experiences repetitive start-stop cycles. Therefore, specific countermeasures against catalyst layer carbon oxidation are required, especially for automotive and backup power applications, where the startup/shutdown rate is considerably high. The authors evaluated a basic design that uses a stack shunt. A properly modified control protocol, which includes the stack shunt, is able to avoid high cathode potential peaks, which are known to accelerate catalyst carbon support corrosion and its negative effects. During two separate durability tests, one adopting the shunt design and another using nonprotected shutdown, a 24-cell stack was subjected to continuous starts and stops for several months and its performance constantly monitored. The results show that when the shunt is used, there is a 37% reduction in the voltage degradation rate for each startup/shutdown cycle and a two-fold increase in the number of startup/shutdown cycles before an individual cell reached the specified "end of life" voltage criteria. Furthermore, ex situ FE-SEM analysis revealed cathode catalyst layer thinning, which is an indication that the emerging degradation mechanism is the catalyst support carbon corrosion, as expected. This provides further support that the constant voltage degradation rate typically experienced in PEMFCs can be primarily attributed to the catalyst support carbon corrosion rate. The proposed shunt protocol is very cost effective and does not require any substantial changes in the system. For this reason, its adoption is recommended as a viable method to decrease the catalyst support carbon corrosion rate and extend the operating life of the PEMFC stack.
机译:基于碳黑的电极通常被认为是PEM燃料电池技术的最新技术,这是由于Pt含量较低而获得的高性能。然而,催化剂碳载体易于碳氧化。这导致催化剂面积和整体性能的损失,以及由于增加的溢流趋势而导致的更高的传质损失。当燃料电池经历反复的起停循环时,这种现象特别严重。因此,需要针对催化剂层碳氧化的特定对策,特别是对于启动/关闭率非常高的汽车和备用电源应用。作者评估了使用堆栈分流器的基本设计。经过适当修改的控制协议(包括烟囱分流器)能够避免出现高阴极电位峰,众所周知,这会加速催化剂碳载体腐蚀及其负面影响。在两项单独的耐久性测试中,一项采用分流设计,另一项采用无保护的停机,一个24节电池组经受了几个月的连续启动和停止操作,并不断对其性能进行监控。结果表明,使用分流器时,在每个电池到达指定的“结束”之前,每个启动/关闭周期的电压降级率降低了37%,启动/关闭周期的数量增加了两倍。寿命”电压标准。此外,异位FE-SEM分析显示阴极催化剂层变薄,这表明新出现的降解机理是催化剂载体碳腐蚀,正如预期的那样。这提供了进一步的支持,即PEMFC中通常经历的恒定电压降级速率可以主要归因于催化剂载体的碳腐蚀速率。所提出的分流协议非常具有成本效益,并且不需要对系统进行任何实质性更改。因此,建议采用该方法作为降低催化剂载体碳腐蚀速率并延长PEMFC电池组使用寿命的可行方法。

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