TY - JOUR
T1 - Theoretical examination of effective oxygen diffusion coefficient and electrical conductivity of polymer electrolyte fuel cell porous components
AU - Inoue, Gen
AU - Yokoyama, Kouji
AU - Ooyama, Junpei
AU - Terao, Takeshi
AU - Tokunaga, Tomomi
AU - Kubo, Norio
AU - Kawase, Motoaki
N1 - Funding Information:
This research was financially supported by the New Energy and Industrial Technology Development Organization (NEDO) , Japan. Additionally, we would like to thank the Low-Carbon Research Network Japan in the National Institute for Materials Science (NIMS) for using their FIB-SEM equipment.
Publisher Copyright:
© 2016 Elsevier B.V.
Copyright:
Copyright 2016 Elsevier B.V., All rights reserved.
PY - 2016/9/30
Y1 - 2016/9/30
N2 - The reduction of oxygen transfer resistance through porous components consisting of a gas diffusion layer (GDL), microporous layer (MPL), and catalyst layer (CL) is very important to reduce the cost and improve the performance of a PEFC system. This study involves a systematic examination of the relationship between the oxygen transfer resistance of the actual porous components and their three-dimensional structure by direct measurement with FIB-SEM and X-ray CT. Numerical simulations were carried out to model the properties of oxygen transport. Moreover, based on the model structure and theoretical equations, an approach to the design of new structures is proposed. In the case of the GDL, the binder was found to obstruct gas diffusion with a negative effect on performance. The relative diffusion coefficient of the MPL is almost equal to that of the model structure of particle packing. However, that of CL is an order of magnitude less than those of the other two components. Furthermore, an equation expressing the relative diffusion coefficient of each component can be obtained with the function of porosity. The electrical conductivity of MPL, which is lower than that of the carbon black packing, is considered to depend on the contact resistance.
AB - The reduction of oxygen transfer resistance through porous components consisting of a gas diffusion layer (GDL), microporous layer (MPL), and catalyst layer (CL) is very important to reduce the cost and improve the performance of a PEFC system. This study involves a systematic examination of the relationship between the oxygen transfer resistance of the actual porous components and their three-dimensional structure by direct measurement with FIB-SEM and X-ray CT. Numerical simulations were carried out to model the properties of oxygen transport. Moreover, based on the model structure and theoretical equations, an approach to the design of new structures is proposed. In the case of the GDL, the binder was found to obstruct gas diffusion with a negative effect on performance. The relative diffusion coefficient of the MPL is almost equal to that of the model structure of particle packing. However, that of CL is an order of magnitude less than those of the other two components. Furthermore, an equation expressing the relative diffusion coefficient of each component can be obtained with the function of porosity. The electrical conductivity of MPL, which is lower than that of the carbon black packing, is considered to depend on the contact resistance.
UR - http://www.scopus.com/inward/record.url?scp=84982694124&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84982694124&partnerID=8YFLogxK
U2 - 10.1016/j.jpowsour.2016.07.107
DO - 10.1016/j.jpowsour.2016.07.107
M3 - Article
AN - SCOPUS:84982694124
SN - 0378-7753
VL - 327
SP - 610
EP - 621
JO - Journal of Power Sources
JF - Journal of Power Sources
ER -