TY - JOUR
T1 - Parametric analysis of a high temperature PEM fuel cell based microcogeneration system
AU - Nomnqa, Myalelo
AU - Ikhu-Omoregbe, Daniel
AU - Rabiu, Ademola
N1 - Publisher Copyright:
© 2016 Myalelo Nomnqa et al.
PY - 2016
Y1 - 2016
N2 - This study focuses on performance analysis of a 1 k We microcogeneration system based on a high temperature proton exchange membrane (HT-PEM) fuel cell by means of parametric investigation. A mathematical model for a system consisting of a fuel processor (steam reforming reactor and water-gas shift reactor), a HT-PEM fuel cell stack, and the balance-of-plant components was developed. Firstly, the fuel processor performance at different fuel ratios and equivalence ratio was examined. It is shown that high fuel ratios of 0.9-0.95 and equivalence ratios of less than 0.56 are suitable for acceptable carbon monoxide content in the synthetic gas produced. Secondly, a parametric study of the system performance at different fuel and equivalence ratios using key system operating parameters was conducted. Steam-to-carbon ratio, stack operating temperature, and anode stoichiometry were varied to observe the changes in the microcogeneration system. The analysis shows that the system can reach electrical and cogeneration efficiencies of 30% and 84%, respectively.
AB - This study focuses on performance analysis of a 1 k We microcogeneration system based on a high temperature proton exchange membrane (HT-PEM) fuel cell by means of parametric investigation. A mathematical model for a system consisting of a fuel processor (steam reforming reactor and water-gas shift reactor), a HT-PEM fuel cell stack, and the balance-of-plant components was developed. Firstly, the fuel processor performance at different fuel ratios and equivalence ratio was examined. It is shown that high fuel ratios of 0.9-0.95 and equivalence ratios of less than 0.56 are suitable for acceptable carbon monoxide content in the synthetic gas produced. Secondly, a parametric study of the system performance at different fuel and equivalence ratios using key system operating parameters was conducted. Steam-to-carbon ratio, stack operating temperature, and anode stoichiometry were varied to observe the changes in the microcogeneration system. The analysis shows that the system can reach electrical and cogeneration efficiencies of 30% and 84%, respectively.
UR - https://www.scopus.com/pages/publications/84978371392
U2 - 10.1155/2016/4596251
DO - 10.1155/2016/4596251
M3 - Article
AN - SCOPUS:84978371392
SN - 1687-806X
VL - 2016
JO - International Journal of Chemical Engineering
JF - International Journal of Chemical Engineering
M1 - 4596251
ER -