会议论文详细信息
7th International Conference on Cooling & Heating Technologies
Cooling channels design analysis with chaotic laminar trajectory for closed cathode air-cooled PEM fuel cells using non-reacting numerical approach
材料科学;物理学
Mohamed, W.W.A.N.^1
Alternative Energy Research Centre, Faculty of Mechanical Engineering, Universiti Teknologi MARA, Malaysia^1
关键词: Cooling effectiveness;    Fuel cell application;    Maximum temperature gradient;    Non-conventional methods;    Numerical investigations;    Overall cooling effectiveness;    Parametric variation;    Polymer electrolyte membranes;   
Others  :  https://iopscience.iop.org/article/10.1088/1757-899X/88/1/012065/pdf
DOI  :  10.1088/1757-899X/88/1/012065
学科分类:材料科学(综合)
来源: IOP
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【 摘 要 】

The thermal management of Polymer Electrolyte Membrane (PEM) fuel cells contributes directly to the overall power output of the system. For a closed cathode PEM fuel cell design, the use of air as a cooling agent is a non-conventional method due to the large heat load involved, but it offers a great advantage for minimizing the system size. Geometrical aspects of the cooling channels have been identified as the basic parameter for improved cooling performance. Numerical investigation using STAR: CCM computational fluid dynamics platform was applied for non-reacting cooling effectiveness study of various channel geometries for fuel cell application. The aspect ratio of channels and the flow trajectory are the parametric variations. A single cooling plate domain was selected with an applied heat flux of 2400 W/m2while the cooling air are simulated at Reynolds number of 400 that corresponds to normal air flow velocities using standard 6W fans. Three channel designs of similar number of channels (20 channels) are presented here to analyze the effects of having chaotic laminar flow trajectory compared to the usual straight path trajectory. The total heat transfer between the cooling channel walls and coolant were translated into temperature distribution, maximum temperature gradient, average plate temperature and overall cooling effectiveness analyses. The numerical analysis shows that the chaotic flow promotes a 5% to 10% improvement in cooling effectiveness, depending on the single-axis or multi-axis flow paths applied. Plate temperature uniformity is also more realizable using the chaotic flow designs.

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