Three Dimensional Model of a High Temperature PEMFC. Study of the Flow Field Effect on Performance

被引:25
作者
Sousa, T. [1 ]
Mamlouk, M. [2 ]
Scott, K. [2 ]
Rangel, C. M. [1 ]
机构
[1] LNEG Fuel Cells & Hydrogen Unit, P-1649038 Lisbon, Portugal
[2] Newcastle Univ, Fac Sci Agr & Engn, Sch Chem Engn & Adv Mat, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England
关键词
3D PEMFC Model; Flow Field; High Temperature PEM; Modelling; PEMFC; Polybenzimidazole; PHOSPHORIC-ACID MEMBRANES; FUEL-CELL; NONISOTHERMAL MODEL; TRANSPORT; EXCHANGE;
D O I
10.1002/fuce.201100197
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
A three-dimensional isothermal model of a high temperature polymer membrane fuel cell equipped with polybenzimidazole membrane is described. All major transport phenomena were taken into account except the species crossover through the membrane. The cathode catalyst layer was treated as spherical catalyst agglomerates with porous inter-agglomerate spaces. The inter-agglomerate spaces were filled with a mixture of electrolyte (hot phosphoric acid) and polytetrafluoroethylene (PTFE). This approach proved to be an essential requirement for accurate simulation. In this particular paper, the influence of different flow field designs and dimensions on performance was intensely study. Traditional configurations were tested (straight, serpentine, pin-in, and interdigitated), and new designs were proposed. With these new designs, we tried to maximize performance by providing homogeneous reactants distribution over the active area keeping low-pressure drop and relatively high velocity. The dimension and position of the inlet and outlet manifolds were also analyzed. From the obtained results a massive influence of the manifolds position and dimension on performance was observed. This fact can provide important guidelines for future bipolar plates optimization.
引用
收藏
页码:566 / 576
页数:11
相关论文
共 13 条
[1]   Three-dimensional computational analysis of transport phenomena in a PEM fuel cell [J].
Berning, T ;
Lu, DM ;
Djilali, N .
JOURNAL OF POWER SOURCES, 2002, 106 (1-2) :284-294
[2]   Three dimensional modeling of high temperature PEM fuel cells [J].
Cheddie, Denver F. ;
Munroe, Norman D. H. .
JOURNAL OF POWER SOURCES, 2006, 160 (01) :215-223
[3]   Numerical prediction of mass-exchange between cathode and anode channels in a PEM fuel cell [J].
Dutta, S ;
Shimpalee, S ;
Van Zee, JW .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2001, 44 (11) :2029-2042
[4]   Three-dimensional model of a 50 cm2 high temperature PEM fuel cell. Study of the flow channel geometry influence [J].
Lobato, Justo ;
Canizares, Pablo ;
Rodrigo, Manuel A. ;
Pinar, F. Javier ;
Mena, Esperanza ;
Ubeda, Diego .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (11) :5510-5520
[5]  
Mamlouk M., 2011, INT J ELECTROCHEM, V2011, P1
[6]   Transient response of high temperature PEM fuel cell [J].
Peng, J. ;
Shin, J. Y. ;
Song, T. W. .
JOURNAL OF POWER SOURCES, 2008, 179 (01) :220-231
[7]   Numerical simulation of proton exchange membrane fuel cells at high operating temperature [J].
Peng, Jie ;
Lee, Seung Jae .
JOURNAL OF POWER SOURCES, 2006, 162 (02) :1182-1191
[8]   Modelling and experimental validation of a high temperature polymer electrolyte fuel cell [J].
Scott, K. ;
Pilditch, S. ;
Mamlouk, M. .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2007, 37 (11) :1245-1259
[9]   A Non-isothermal Model of a Laboratory Intermediate Temperature Fuel Cell Using PBI Doped Phosphoric Acid Membranes [J].
Sousa, T. ;
Mamlouk, M. ;
Scott, K. .
FUEL CELLS, 2010, 10 (06) :993-1012
[10]   A dynamic non-isothermal model of a laboratory intermediate temperature fuel cell using PBI doped phosphoric acid membranes [J].
Sousa, T. ;
Mamlouk, M. ;
Scott, K. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (21) :12065-12080