质子交换膜燃料电池
阳极
氢
氢燃料
直接乙醇燃料电池
制动比油耗
电解质
材料科学
氢燃料强化
化学工程
环境科学
废物管理
化学
燃料电池
燃烧
工程类
电极
有机化学
物理化学
作者
Tommy Rockward,Jacob Valdez,Rangachary Mukundan
出处
期刊:Meeting abstracts
[Institute of Physics]
日期:2016-09-01
卷期号:MA2016-02 (38): 2467-2467
标识
DOI:10.1149/ma2016-02/38/2467
摘要
Research has shown that contaminants in the hydrogen fuel stream have an impact on Polymer Electrolyte Membrane Fuel Cells (PEMFCs) performance that is influenced by the platinum loading, membrane thickness, the impurity, its concentration and PEMFC operating conditions such as cell temperature, relative humidity, and back pressure. A significant portion of previous reported results were conducted with the fuel cell being operated in single-pass mode where the exhaust hydrogen is vented from the fuel cell. While these findings have proven useful in improving the fundamental understanding of the poisoning mechanisms of non-hydrogen species (contaminants) in operating single fuel cells; the question remains whether or not these findings correlate to PEMFC systems that use a re-circulating fuel stream as being designed by the OEMs. Some advantages of re-circulating the anode exhaust gas back into the anode inlet are: 1) the anode outlet water is returned into the dry H 2 fuel stream to obtain proper humidification and also 2) the excess H 2 fuel is returned to enhance fuel utilization. While these advantages are attractive, there are some inherent challenges that are introduced in fuel re-circulation mode. Two of the more notable drawbacks involve inert gas build-up due to crossover and the accumulation of contaminants in the anode. In this study, we focus our efforts on correlating the impact of CO and H 2 S on fuel cell performance in H 2 single-pass versus H 2 re-circulation mode using the SAE J2719 1 and ISO 14687-2 Hydrogen Fuel Product Specification 2 limits (4 ppb H 2 S and 200 ppb CO). This study was conducted on Membrane Electrode Assemblies (MEAs) at the 2015 DOE target loadings for platinum (anode: 0.05 mg/cm 2 and cathode: 0.1 mg/cm 2 ). References: SAE J2719: Hydrogen Fuel Quality for Fuel Cell Vehicles, www.sae.org ISO 14687-2, Hydrogen Fuel – Product Specification, Part 2: PEM fuel cell applications for road vehicles, http://www.iso.org/iso/catalogue_detail.htm?csnumber=55083 Acknowledgements: The authors gratefully acknowledge the financial support of the DOE Fuel Cell Technologies Office and the support of Technology Development Manager, Charles (Will) James, Jr.
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