scholarly journals Analysis of heat and mass transport characteristics in anode-supported solid oxide fuel cells at various operating conditions

2019 ◽  
Vol 75 (8) ◽  
pp. 509-522 ◽  
Author(s):  
Qiuwan Shen ◽  
Shian Li ◽  
Guogang Yang ◽  
Naibao Huang ◽  
Jinliang Yuan ◽  
...  
2006 ◽  
Vol 4 (1) ◽  
pp. 99-106 ◽  
Author(s):  
Marco Cannarozzo ◽  
Simone Grosso ◽  
Gerry Agnew ◽  
Adriana Del Borghi ◽  
Paola Costamagna

Composite electrodes are of great interest in the field of solid oxide fuel cells because their use can improve the performance of these cells. However, an important correlation exists between composition, microstructure, and thickness of an electrode and its performance. This correlation has been investigated in this work using a theoretical model. The model, in order to consider all the losses occurring in an electrode, includes Ohm’s law for ionic and electronic charge transport, and the Butler-Volmer equation to evaluate the activation polarizations, and mass transport equations, taking into account diffusion through porous media, to evaluate the concentration losses. The model shows that the best electrode performance is a trade-off between activation and concentration losses. This is because a decrease in the dimensions of the particles or an increase in its thickness result, on the one hand, in a reduction of the activation polarizations, because of a larger active area for the electrochemical reaction, and, on the other hand, in an increase in the concentration losses due to a more difficult gas diffusion. In particular, in order to understand the impact of concentration losses on the performance of composite electrodes, the simulations have been run with two models, one including and the other one neglecting the mass transport equations. The results show that concentration losses play a role only with thick electrodes composed of small particles, operating at high fuel utilization.


2006 ◽  
Vol 34 (3) ◽  
pp. 12707 ◽  
Author(s):  
DMR Mitchell ◽  
K Sato ◽  
H Omura ◽  
T Hashida ◽  
K Yashiro ◽  
...  

2019 ◽  
Vol 7 (1) ◽  
pp. 381-388 ◽  
Author(s):  
Sindy Mosch ◽  
Nikolai Trofimenko ◽  
Mihail Kusnezoff ◽  
Thomas Betz ◽  
Marco Kellner

Energies ◽  
2020 ◽  
Vol 13 (23) ◽  
pp. 6173
Author(s):  
Linda Barelli ◽  
Gianni Bidini ◽  
Giovanni Cinti

Ammonia has strong potentialities as sustainable fuel for energy applications. NH3 is carbon free and can be synthetized from renewable energy sources (RES). In Solid Oxide Fuel Cells, NH3 reacts electrochemically thereby avoiding the production of typical combustion pollutants such as NOx. In this study, an ammonia-fueled solid oxide fuel cells (SOFC) system design is proposed and a thermodynamic model is developed to evaluate its performance. A SOFC short stack was operated with NH3 in a wide range of conditions. Experimental results are implemented in the thermodynamic model. Electrical efficiency of 52.1% based on ammonia Lower Heating Value is calculated at a net power density of 0.36 W cmFC−2. The operating conditions of the after burner and of the ammonia decomposition reactor are studied by varying the values of specific parameters. The levelized cost of energy of 0.221 $ kWh−1 was evaluated, as introduced by the International Energy Agency, for a system that operates at nominal conditions and at a reference power output of 100 kW. This supports the feasibility of ammonia-fueled SOFC systems with reference to the carbon free energy market, specifically considering the potential development of green ammonia production.


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