4.6 Article

Mechanisms of Accelerated Degradation in the Front Cells of PEMFC Stacks and Some Mitigation Strategies

Journal

CHINESE JOURNAL OF MECHANICAL ENGINEERING
Volume 26, Issue 6, Pages 1250-1258

Publisher

SPRINGEROPEN
DOI: 10.3901/CJME.2013.06.1250

Keywords

Proton exchange membrane fuel cell; Degradation mechanism; Mitigation strategy

Funding

  1. National Basic Research Program of China (973 Program) [2012CB215500]
  2. National Hi-tech Research and Development Program of China(863 Program) [2012AA1106012, 2012AA053402]
  3. National Natural Science Foundation of China [20976095]
  4. Specialized Research Fund for the Doctoral Program of Higher Education, China [20090002110074]

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The accelerated degradation in the front cells of a polymer electrolyte membrane fuel cell(PEMFC) stack seriously reduces the reliability and durability of the whole stack. Most researches only focus on the size and configuration of the gas intake manifold, which may lead to the maldistribution of flow and pressure. In order to find out the mechanisms of the accelerated degradation in the front cells, an extensive program of experimental and simulation work is initiated and the results are reported. It is found that after long-term lifetime tests the accelerated degradation in the front cells occurs in all three fuel cell stacks with different flow-fields under the U-type feed configuration. Compared with the rear cells of the stack, the voltage of the front cells is much lower at the same current densities and the membrane electrode assembly(MEA) has smaller active area, more catalyst particle agglomeration and higher ohmic impedance. For further investigation, a series of three dimensional isothermal numerical models are built to investigate the degradation mechanisms based on the experimental data. The simulation results reveal that the dry working condition of the membrane and the effect of high-speed gas scouring the MEA are the main causes of the accelerated degradation in the front cells of a PEM fuel cell stack under the U-type feed configuration. Several mitigation strategies that would mitigate these phenomena are presented: removing cells that have failed and replacing them with those of the same aging condition as the average of the stack; choosing a Z-type feed pattern instead of a U-type one; putting several air flow-field plates without MEA in the front of the stack; or exchanging the gas inlet and outlet alternately at a certain interval. This paper specifies the causes of the accelerated degradation in the front cells and provides the mitigation strategies.

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