An investigation of the PEM fuel cells performance with partially restricted cathode flow channels and metal foam as a flow distributor

被引:170
作者
Afshari, E. [1 ]
Mosharaf-Dehkordi, M. [1 ]
Rajabian, H. [2 ]
机构
[1] Univ Isfahan, Dept Mech Engn, Fac Engn, Esfahan, Iran
[2] Grad Univ Adv Technol, Dept Mech Engn, Kerman, Iran
关键词
PEM fuel cell; Baffles; Metal foam; Current density distribution; Temperature distribution; BIPOLAR/END PLATES; PRESSURE-DROP; POROUS-MEDIA; FIELD DESIGN; 2-PHASE FLOW; MODEL; SIMULATIONS; TRANSPORT; BEHAVIOR; PHASE;
D O I
10.1016/j.energy.2016.10.101
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present work, the performance of proton exchange membrane fuel cells is studied for three cases; A fuel cell with two parallel flow channels (model A), locally baffle restricted flow channels (model B), and metal foam as a flow distributor (model C). The fully coupled thermal-electrochemical equations are numerically solved in three dimensions, based on the macroscopic, single-domain, and finite-volume approaches. While having no significant effect on temperature distribution, the existence of baffles inside flow channels results in more oxygen penetration into gas diffusion and catalyst layers at the cathode side of the cell. This improves the chemical reaction rate, current density and cell performance. Using metal foam increases oxygen concentration and current density at the cathode catalyst surface, and improves the uniformity of their distributions. Furthermore, a more uniform temperature distribution is achieved, when compared with the other cases. For the considered dimensions, it is observed that decreasing the flow channel depth results to an increase in current density and also in pressure drop along channels (models A and C). Moreover, increasing metal foam porosity can increase the current density value- and decrease pressure drop in model C, while it has nearly no effects on temperature distribution. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:705 / 715
页数:11
相关论文
共 40 条
[1]   Effects of the cell thermal behavior and water phase change on a proton exchange membrane fuel cell performance [J].
Afshari, E. ;
Jazayeri, S. A. .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (04) :655-662
[2]   Numerical predictions of performance of the proton exchange membrane fuel cell with baffle(s)-blocked flow field designs [J].
Afshari, Ebrahim ;
Houreh, Nasser Baharlou .
INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2014, 28 (16)
[3]   Effect of water phase change on temperature distribution in proton exchange membrane fuel cells [J].
Afshari, Ebrahim ;
Jazayeri, Seyed Ali ;
Barzi, Yaser Mollayi .
HEAT AND MASS TRANSFER, 2010, 46 (11-12) :1295-1305
[4]   Metal foams as flow field and gas diffusion layer in direct methanol fuel cells [J].
Arisetty, Srikanth ;
Prasad, Ajay K. ;
Advani, Suresh G. .
JOURNAL OF POWER SOURCES, 2007, 165 (01) :49-57
[5]  
Baroutaji A., 2014, Journal of Energy Challenges and Mechanics, V1, P95
[6]   Simulations of flow through open cell metal foams using an idealized periodic cell structure [J].
Boomsma, K ;
Poulikakos, D ;
Ventikos, Y .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2003, 24 (06) :825-834
[7]  
Carton J, 2011, THESIS
[8]   Representative model and flow characteristics of open pore cellular foam and potential use in proton exchange membrane fuel cells [J].
Carton, J. G. ;
Olabi, A. G. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (16) :5726-5738
[9]   Water droplet accumulation and motion in PEM (Proton Exchange Membrane) fuel cell mini-channels [J].
Carton, J. G. ;
Lawlor, V. ;
Olabi, A. G. ;
Hochenauer, C. ;
Zauner, G. .
ENERGY, 2012, 39 (01) :63-73
[10]   Design of experiment study of the parameters that affect performance of three flow plate configurations of a proton exchange membrane fuel cell [J].
Carton, J. G. ;
Olabi, A. G. .
ENERGY, 2010, 35 (07) :2796-2806