Three-Dimensional PEM Fuel Cells Modeling using COMSOL Multiphysics

Authors

  • M Jourdani
  • H Mounir
  • A Marjani

DOI:

https://doi.org/10.21152/1750-9548.11.4.427

Abstract

Proton Exchange Membrane Fuel Cell (PEMFC) has become one of the most promising energy technologies at the present time. Several factors are driving the growing interest in this technology. Modeling different phenomena occurring in PEMFC plays an important role in this development and performance. The performance of a Proton Exchange Membrane Fuel Cell (PEMFC) depends on the characteristics of the membrane, gas diffusion layer (GDL), catalyst and operating parameters such as operating pressure, cell operation temperature, relative humidity, and mass flow rate of feed gases, channel geometries and design of the stack. Recent studies on the compilation of factors affecting durability and performance of PEMFC indicate that the performance of fuel cell strongly depends on the performance of its membrane. In this paper, a three-dimensional PEM fuel Cell model has been developed and is used to investigate the effects of geometry membrane on cell performance. The numerical results indicated that a thinner membrane corresponds to the higher current density, the hydrogen and oxygen consumption and, accordingly water production is high. Finally, the numerical results of the proposed CFD model are compared with the available experimental data and that represent good agreement.

References

M. Jourdani, H. Mounir, and A. El Marjani, “Compilation of Factors Affecting Durability of Proton Exchange Membrane Fuel Cell (PEMFC),” International Journal of Engineering Science & Advanced Technology, Volume-7 (Jan-Feb 2017), Issue-1, pp.100-107. https://doi.org/10.1109/irsec.2014.7059906

M. Jourdani, H. Mounir, and A. El Marjani, “Temperature distribution effect on the performance of PEM Fuel cell modeling and simulation using Ansys Fluent,” in Proceedings of 2015 IEEE International Renewable and Sustainable Energy Conference, IRSEC 2015. https://doi.org/10.1109/irsec.2015.7455082

B. Viswanathan and M. Aulice Scibioh, “Fuel Cells -Principles and Applications,” CRC Press, ISBN: 9781420060287, Taylor & Francis Group, (USA), (March, 2007)

J.H Wee, “Applications of proton exchange membrane fuel cell systems,” Renewable and Sustainable Energy Reviews, v.11, n.8, p. 1720-1738, 2007. https://doi.org/10.1016/j.rser.2006.01.005

Fuel Cell Industry Review 2015, E4tech strategic thinking in sustainable energy: pp.16-35, 2016 Fuel Cells Section, Multi-Year Research, Development, and Demonstration Plan

H. Nur, M. Marvin, S. Mohd, and I. Rosli, “Simulation of porosity and PTEE content in gas diffusion layer on proton exchange membrane fuel cell performamnce ,” Journal of Engineering Science and Technology, Vol. 11, No. 1 (2016):pp. 085 – 095

K. Rameshkumar, R. Girimurugan, and M. Jegan, “Numerical Investigation of Reactant Gases Pressure Distribution at Gas Diffusion Layer in High Temperature PEM Fuel Cell with Single Flow Channel Configuration,” International Journal of Research (IJR), e-ISSN: 2348-6848, p- ISSN: 2348-795X Volume 2, No 3, Issue 3, March 2015. https://doi.org/10.26643/ijr

K. Youcef, K.Z. Yasmina, and B. Ahmed, “Modeling of Transport Phenomena in A PEM Fuel Cell,’’International Journal of Soft Computing and Engineering (IJSCE) ISSN: 2231-2307, Volume-3, Issue-1, March 2013

J.P Kloess, X. Wang, J. Liu, Z. Shi and L. Guessous, “Investigation of bio-inspired flow channel designs for bipolar plates in proton exchange membrane fuel cells,” Journal of Power Sources, 188(1), pp 132-140, 2009. https://doi.org/10.1016/j.jpowsour.2008.11.123

Xu. Zhang, L. Guo, and L. Hongtan, “Recovery mechanisms in proton exchange membrane fuel cells after accelerated stress tests,” Journal of Power Sources, vol. 296, pp. 327–334,2015. https://doi.org/10.1016/j.jpowsour.2015.07.063

S.M. Haile, “Fuel cell materials and components,” Acta Materialia , Vol. 51, Issue 19, 25 November 2003, Pages 5981–6000. https://doi.org/10.1016/j.actamat.2003.08.004

D. Shou, J. Fan, and F. Ding, “Effective diffusivity of gas diffusion layer in proton exchange membrane fuel cells,” Journal of Power Sources, vol. 225, pp. 179-186, 2013. https://doi.org/10.1016/j.jpowsour.2012.10.039

I. Kong, A. Jung, and M. Kim, “Investigations on the double gas diffusion backing layer for performance improvement of self- humidified proton exchange membrane fuel cells,” Applied Energy, vol. 176, 2016. https://doi.org/10.1016/j.apenergy.2016.05.057

J. Larminie, and A. Dicks, “Fuel Cell Systems Explained,” Second Edition. John Wiley & Sons 2003. Chichester.

W.M. Yan, C.Y. Hsueh, C.Y. Soong, F. Chen, C.H. Cheng, and S.C. Mei,“Effects of fabrication processes and material parameters of GDL on cell performance of PEM fuel cell,” International Journal of Hydrogen Energy 32 (2007) 4452 – 4458. https://doi.org/10.1016/j.ijhydene.2007.02.003

A. Maher and Sadiq Al-Baghdadi, “Mechanical behaviour of membrane electrode assembly (MEA) during cold start of PEM fuel cell from subzeroenvironment temperature,” International Journal of Energy and Environment (IJEE) , Volume 6, Issue 2, 2015 pp.107-114.

K. Broka and P. Ekdunge, “Oxygen and Hydrogen Permeation Properties and Water Uptake of Nafion 117 Membrane and Recast Film for PEM Fuel Cell,” Sweden, Chapman & Hall, 1997

M. Ceraolo, C. Miulli and A. Pozio, “Modelling Static and Dynamic Behavior of Proton Exchange Membrane Fuel Cells on the Basis of Electro-chemical Description,” Journal of Power Sources, v.113, pp.131-144, 2003. https://doi.org/10.1016/s0378-7753(02)00565-7

G.J.M. Janssen and M.L.J. Overvelde, “Water Transport in the Proton-Exchange-Membrane Fuel Cell: Measurements of the Effective Drag Coefficient,” Journal of Power Sources, v. 101, pp.117-125, 2001. https://doi.org/10.1016/s0378-7753(01)00708-x

D. R. Morris and X. Sun, “Water-Sorption and Transport Properties of Nafion 117H,” Journal of Applied Polymer Science, v. 50, pp. 1445- 1452, 1993. https://doi.org/10.1002/app.1993.070500816

D. Chen and H. Peng, “Modeling and Simulation of a PEM Fuel Cell Humidification System,” Proceeding of the 2004 American Control Conference Boston, Massachusetts June 30-July2, 2004. https://doi.org/10.23919/acc.2004.1383707

A. Atifi, H. Mounir, and A. EL Marjani, “Effect of internal current, fuel crossover, and membrane thickness on a PEMFC performance,” in Proceedings of 2014 International Renewable and Sustainable Energy Conference, IRSEC 2014, 2014, pp.907-912. https://doi.org/10.1109/irsec.2014.7059860

V. Ionescu, “Finite Element Method Modeling of a High Temperature PEM FUEL CELL,’’ Romanian Journal of Physics, Vol. 59, Nos. 3–4, P. 285–294, Bucharest, 2014

Z. Belkhiri, M. Zeroual, H. Ben Moussa and B. Zitouni, “ Effect of temperature and water content on the performance of PEM fuel cell, ’’ Revue des Energies Renouvelables Vol. 14 N°1 (2011) 121 – 130

I. Khazaee, M. Ghazikhani, and M. Nasr Esfahani, “Effect of gas diffusion layer and membrane properties in an annular proton exchange membrane fuel cell,” Applied Surface Science 258 (2012) pp.2141–2148. https://doi.org/10.1016/j.apsusc.2011.03.062

Bates and Alex Martin, "Experimental and analytical study of an open cathode polymer electrolyte membrane fuel cell, " Electronic Theses and Dissertations, 2015, Paper 1658. https://doi.org/10.18297/etd/1658

Hong Zhu and Yongsheng Wei, “ Model and simulation of proton exchange membrane fuel cell performance at different porosity of diffusion layer, I.J.Modern Education and Computer Science,2011,2,22-28. https://doi.org/10.5815/ijmecs.2011.02.04

Abdellah Beicha and Radia Zaamoucheb, “Electrochemical model for proton exchange membrane fuel cell systems,” Journal of Power Technologies, 93 (1) (2013) ,27–36

R. F. Mann, J. C. Amphlett, M. A. Hooper, H. M. Jensen, B. A. Peppley, and P. R. Roberge, “Development and application of a generalised steady-state electrochemical model for a pem fuel cell,” Journal of Power Sources 86 (1- 2) (2000) 173–180. https://doi.org/10.1016/s0378-7753(99)00484-x

G. Nguyen and R. White, “A water and heat management model for proton-exchange-membrane fuel cells,” Journal of Electrochemical Society 140 (8) (1993) 2178–2186. https://doi.org/10.1149/1.2220792

T. Springer, T. Zawodzinski, and S. Gottesfeld, “Polymer electrolyte fuel cell model,” Journal of Electrochemical Society 138 (8) (1991) 2334–2342

T.C. Jen, T.Z. Yan, and Q.H. Chen, “Numerical simulation of proton exchange membrane fuel cell,” WIT Transactions on State of the Art in Science and Engineering, Vol 10, 2005 WIT Press. https://doi.org/10.2495/1-85312-840-6/06

Published

2017-12-31

How to Cite

Jourdani, M., Mounir, H., & Marjani, A. (2017). Three-Dimensional PEM Fuel Cells Modeling using COMSOL Multiphysics. The International Journal of Multiphysics, 11(4), 427-442. https://doi.org/10.21152/1750-9548.11.4.427

Issue

Section

Articles