4.7 Article

Air flow and pressure optimization for air supply in proton exchange membrane fuel cell system

Journal

ENERGY
Volume 238, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2021.121949

Keywords

PEMFC; Air supply strategy; Air excess ratio; Air pressure; Dynamic response; Output power

Funding

  1. National key Research and development program [2018YFB0105405]
  2. Shanghai Automotive Industry Science and Technology Development Foundation [1906]
  3. National Natural Science Foundation of China [21805210]
  4. Chongqing Science and Technology Commission [cstc2019jscx-zdztzxX0033]

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The study focused on the air supply of a proton exchange fuel cell (PEMFC) system in order to improve performance, analyzing the impact of operating parameters on output performance. An optimization model and air supply strategy were proposed to enhance system performance.
To study the air supply of proton exchange fuel cell (PEMFC) system to avoid air starvation, a proton PEMFC system model mainly including the stack (30 kW, 240 cells, 190 cm(2) activation area) and air supply system is developed. Model's average relative errors of output mass flow and pressure are 2.9% and 0.756% respectively. Model' saverage relative error of output voltage is 2.678%. Subsequently, the influence of operating parameters (air excess ratio and air pressure) on output performance (dynamic response of stack voltage and on net output power of PEMFC system) is analyzed. When air excess ratio is 4 and pressure is 1.7 bar respectively, voltage's dynamic response reaches the best level. Optimal pressure to output maximum net power is always located in lower value region and optimal flow shows a tendency to be gradually larger as current increases. Then the optimization model to determine working points of each parameter aiming at comprehensively improve voltage's dynamic response and net output power of PEMFC system simultaneously is presented. Based on this, an optimized air supply strategy of replenishing air upon loading is innovatively proposed. This research can be further used to guide the development of control strategy of air supply. (C) 2021 Elsevier Ltd. All rights reserved.

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