Quick crossover current measurement of a polymer electrolyte fuel cell stack with and without cell voltage terminals

2019 ◽  
Vol 409 ◽  
pp. 6-12 ◽  
Author(s):  
Hiroyuki Gunji ◽  
Mika Eguchi ◽  
Fumiaki Sekine ◽  
Yasuyuki Tsutsumi
Author(s):  
Akimitsu Ishihara ◽  
Shigenori Mitsushima ◽  
Nobuyuki Kamiya ◽  
Ken-Ichiro Ota

An exergy (available energy) analysis has been conducted on a typical polymer electrolyte fuel cell (PEFC) system using methanol. The material balance and enthalpy balance were calculated for the PEFC system using methanol steam reforming, and the exergy flow was obtained. Based on these results, the exergy loss in each unit was obtained, and the difference between the enthalpy and exergy was discussed. The exergy loss in this system was calculated to be 178kJ/mole MeOH for the steam reforming process of methanol. Although the enthalpy efficiency approached unity as the recovery rate of the waste heat from the cell approached unity, the exergy efficiency remained around 0.45 since the cell’s operating temperature of 80°C is low. It was also found that the cell voltage should exceed 0.82V in order to obtain the exergy efficiency of 0.5 or higher. A direct methanol fuel cell (DMFC) was analyzed using the exergy and compared with the methanol reforming PEFC. In order to obtain the exergy efficiency higher than that of PEFC with steam reforming, the cell voltage of the DMFC should be 0.48V or greater at the current density of 600mA/cm2.


Author(s):  
Pengtao Sun ◽  
Su Zhou

Two cases of heat transfer processes for a general polymer electrolyte fuel cell (PEFC) stack in a sub-freezing environment are studied in this paper: cooling-down and heating-up. We investigate the time consumption problem for both of these two cases in order to find the way to normally restart fuel cell stack without regard to electrochemical reaction. We consider the action of heat transfer in lieu of generated chemical energy to PEFC in sub-freezing environment by means of heat insulator. In the numerical simulation, we define a combined finite element/upwind finite volume discretization to approximate the heat transport equation for different cases of heat transport process, and obtain the stable and reasonable numerical solutions. These results correspondingly provide explicit ways to preserve heat in PEFC stack in the sub-freezing environment.


2019 ◽  
Vol 44 (3) ◽  
pp. 1851-1856 ◽  
Author(s):  
Risako Tanii ◽  
Ryota Ogawa ◽  
Hisayoshi Matsushima ◽  
Mikito Ueda

2019 ◽  
Vol 25 (1) ◽  
pp. 1999-2007 ◽  
Author(s):  
Antonino Salvatore Aricò ◽  
Alessandra Di Blasi ◽  
Giovanni Brunaccini ◽  
Francesco Sergi ◽  
Vincenzo Antonucci ◽  
...  

2006 ◽  
Vol 162 (1) ◽  
pp. 81-93 ◽  
Author(s):  
Gen Inoue ◽  
Takashi Yoshimoto ◽  
Yosuke Matsukuma ◽  
Masaki Minemoto ◽  
Hideki Itoh ◽  
...  

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