DocumentCode :
752959
Title :
A Dynamic Semi-Analytic Channel-to-Channel Model of Two-Phase Water Distribution for a Unit Fuel Cell
Author :
Stefanopoulou, Anna G. ; Kolmanovsky, Ilya V. ; McCain, Buz A.
Author_Institution :
Mech. Eng. Dept., Univ. of Michigan, Ann Arbor, MI, USA
Volume :
17
Issue :
5
fYear :
2009
Firstpage :
1055
Lastpage :
1068
Abstract :
The critical task of controlling the water accumulation within the gas diffusion layer (GDL) and the channels of a polymer-electrolyte-membrane (PEM) fuel cell is shown to benefit from a partial-differential-equation (PDE) approach. Starting from first principles, a model of a fuel cell is represented as a boundary value problem for a set of three coupled nonlinear second-order PDEs for mass transport across the GDL of each electrode. These three PDEs are approximated, with justification founded in linear systems theory and a time-scale decomposition approach, by a semianalytic model that requires less than one-third the number of states to be numerically integrated. A set of numerical transient, analytic transient, and analytic steady-state solutions for the semianalytic model are presented, and an experimental verification of the cell voltage prediction due to liquid-water accumulation is demonstrated. The semianalytic model derived and the associated analysis represent our main contribution for which future expansion of along-the-channel dynamics and statistical consideration of cell-to-cell variations can be implemented for application to control, estimation, and diagnostic algorithms.
Keywords :
linear systems; partial differential equations; proton exchange membrane fuel cells; analytic steady-state solutions; analytic transient; cell voltage prediction; dynamic semi-analytic channel-to-channel model; gas diffusion layer; linear systems theory; liquid-water accumulation; mass transport; numerical transient; partial-differential-equation approach; polymer-electrolyte-membrane fuel cell; semianalytic model; time-scale decomposition approach; two-phase water distribution; unit fuel cell; Fuel cell; model order reduction; modeling; partial differential equations (PDEs); water management;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2008.2005064
Filename :
4840446
Link To Document :
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