Increasing the efficiency of passive fuel cells is a significant hurdle in commercializing small fuel cells. By understanding the interactions within a single cell, possibilities for further performance increases in fuel cell structures overall are uncovered. To investigate the multiphase flows and the interactions between the layers on the anode side of a direct methanol fuel cell (DMFC), a single cell was studied using a two-dimensional model. This multiphase model focuses on the flow mechanism of a single CO2 gas bubble. The model describes the mass transfer in a single cell by using the physical properties of a single bubble and by tracing its movement. The simulation results indicate that the thickness of a gas diffusion layer (GDL) has an effect on the CO2 bubble size at a low power output level. When the power output is increased, the porosity and the GDL’s contact angle with CO2 play a significant role in determining the size of the CO2 bubbles. The final bubble size and the time it takes for the bubbles to penetrate the layers of the DMFC are controlled by the physical properties of the GDL and by the power output. The model suggests that, to achieve optimal performance, the GDL in passive DMFCs should be thick enough to allow bubbles grow to their maximum size. The thickness of the GDL can be calculated by estimating the maximum size of the bubble.
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e-mail: wukui.zheng@hotmail.com
e-mail: arho.suominen@utu.fi
e-mail: henrik.lagercrantz@idbbn.fi
e-mail: aultuo@utu.fi
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February 2012
This article was originally published in
Journal of Fuel Cell Science and Technology
Research Papers
A Two-Dimensional Model for CO2/Fuel Multiphase Flow on the Anode Side of a DMFC
Wukui Zheng,
e-mail: wukui.zheng@hotmail.com
Wukui Zheng
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
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Arho Suominen,
e-mail: arho.suominen@utu.fi
Arho Suominen
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
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Henrik Lagercrantz,
e-mail: henrik.lagercrantz@idbbn.fi
Henrik Lagercrantz
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
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Aulis Tuominen
e-mail: aultuo@utu.fi
Aulis Tuominen
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
Search for other works by this author on:
Wukui Zheng
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
e-mail: wukui.zheng@hotmail.com
Arho Suominen
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
e-mail: arho.suominen@utu.fi
Henrik Lagercrantz
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
e-mail: henrik.lagercrantz@idbbn.fi
Aulis Tuominen
Electronics Productization Research Group, Department of Information Technology, University of Turku
, Ylhäistentie 2 D, 24130 Salo, Finland
e-mail: aultuo@utu.fi
J. Fuel Cell Sci. Technol. Feb 2012, 9(1): 011009 (7 pages)
Published Online: December 22, 2011
Article history
Received:
January 25, 2011
Revised:
October 10, 2011
Online:
December 22, 2011
Published:
December 22, 2011
Citation
Zheng, W., Suominen, A., Lagercrantz, H., and Tuominen, A. (December 22, 2011). "A Two-Dimensional Model for CO2/Fuel Multiphase Flow on the Anode Side of a DMFC." ASME. J. Fuel Cell Sci. Technol. February 2012; 9(1): 011009. https://doi.org/10.1115/1.4005384
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