Optimizing fuel transport and distribution in gradient channel anode of solid oxide fuel cell

被引:3
|
作者
Wei, Shilin [1 ]
Zheng, Keqing [2 ]
Yan, Yangtian [2 ]
Liu, Weiqi [1 ]
Bai, Peiyao [1 ]
Wang, Shaorong [1 ]
Xu, Lang [1 ]
机构
[1] China Univ Min & Technol, Sch Chem Engn & Technol, MOE Key Lab Coal Proc & Efficient Utilizat, 1 Daxue Rd, Xuzhou 221116, Jiangsu, Peoples R China
[2] China Univ Min & Technol, Sch Low Carbon Energy & Power Engn, 1 Daxue Rd, Xuzhou 221116, Jiangsu, Peoples R China
关键词
Anode electrode; Gas diffusion; Gas distribution; Gradient channel; SOFC; DUSTY-GAS; PERFORMANCE; PREDICTION; FICKS;
D O I
10.1016/j.ces.2023.119558
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Precise geometrical adjustment of an anode is crucial for optimizing the performance of solid oxide fuel cell (SOFC). Fuel gas components of SOFC, including H-2, CH4, CO, CO2 and H2O, are complex in composition but play a significant role in determining the efficiency of SOFC. This study examines the fuel transport and distribution and the resultant SOFC performance by constructing various gradient channel anode (GCA) structures. The findings show that compared to the traditional un-gradient channel anode (un-GCA) cell, the GCA cell results in more uniform gas distribution and better diffusion of fuel gases, particularly H-2, CH4 and H2O. Because of the improved gas diffusion in the anode electrode, the GCA (12 mu m) cell exhibits a 2.34 % improvement in power density compared to the un-GCA cell at 800 degrees C and 0.6 V. Additionally, after increasing the mole fractions of H-2 and CH4 in the fuel gas, the power density of the GCA (12 mu m) cell is improved by 2.42 % compared with that of the un-GCA cell under the same condition. This study provides clear evidence that incorporating the gradient channel structure in the anode can effectively enhance gas transport, minimize localized gas aggregation and eventually improve the performance of SOFC.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Thermal Stress of Solid Oxide Fuel Cell with Gradient Porosity Anode
    Song, Ming
    Du, Chuansheng
    Wang, Bingying
    Ma, Shuai
    Jiang, Wenchun
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2022, 50 (05): : 1233 - 1240
  • [2] The effect of pressure gradient on anode micro modeling of solid oxide fuel cell
    Hu, Aosheng
    Zhou, Jianqiu
    Chen, Bingbing
    Wu, Youyi
    IONICS, 2015, 21 (07) : 2005 - 2017
  • [3] The effect of pressure gradient on anode micro modeling of solid oxide fuel cell
    Aosheng Hu
    Jianqiu Zhou
    Bingbing Chen
    Youyi Wu
    Ionics, 2015, 21 : 2005 - 2017
  • [4] Solid Oxide Fuel Cell Anode Materials
    E. M. Brodnikovskii
    Powder Metallurgy and Metal Ceramics, 2015, 54 : 166 - 174
  • [5] Solid Oxide Fuel Cell Anode Materials
    Brodnikovskii, E. M.
    POWDER METALLURGY AND METAL CERAMICS, 2015, 54 (3-4) : 166 - 174
  • [6] Impact on Fuel Transport Efficiency in Anode of Planar Solid Oxide Fuel Cells
    Miao, Fuxing
    INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2013, 8 (10): : 11814 - 11822
  • [7] Solid oxide fuel cell anode for the direct utilization of ethanol as a fuel
    Venancio, Selma A.
    de Miranda, Paulo Emilio V.
    SCRIPTA MATERIALIA, 2011, 65 (12) : 1065 - 1068
  • [8] Nondestructive Imaging and Analysis of Transport Processes in the Solid Oxide Fuel Cell Anode
    Grew, K. N.
    Peracchio, A. A.
    Izzo, J. R., Jr.
    Chiu, W. K. S.
    SOLID OXIDE FUEL CELLS 11 (SOFC-XI), 2009, 25 (02): : 1861 - 1870
  • [9] Poisoning and Activation of Anode for Solid Oxide Fuel Cell
    Li Y.
    Li J.
    Lyu Z.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2021, 49 (01): : 126 - 135
  • [10] Phenomenological Theory of Solid Oxide Fuel Cell Anode
    Ioselevich, A. S.
    Kornyshev, A. A.
    FUEL CELLS, 2001, 1 (01) : 40 - 65