Effect of thermal decomposition products of coal on anodic reactions in direct carbon fuel cells

被引:0
作者
Younghoon Rhie
Seongyong Eom
Seongyool Ahn
Gyungmin Choi
Duckjool Kim
机构
[1] Pusan National University,Graduate School of Mechanical Engineering
[2] CRIEPI,School of Mechanical Engineering
[3] Pusan National University,undefined
来源
Journal of Mechanical Science and Technology | 2014年 / 28卷
关键词
Direct carbon fuel cell; Coal; Volatile matters; Electrochemical impedance spectroscopy;
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摘要
The effect of inherent volatile matter in fuels on anodic electrochemical reactions was investigated in a direct carbon fuel cell (DCFC). Through thermal decomposition, raw coals, which are used as power source in the DCFC system, release gases under an operating temperature of 700°C. These exhaust gases change the gas composition around the anode and affect the system’s electrochemical reaction. To investigate the effect of produced gases, a comparative study was conducted between Indonesian sub-bituminous coal and char obtained through thermal treatment. The open circuit voltage of raw coal increased to 0.23 V compared with that of char. The maximum power density of raw coal (52 mW/cm2) was also higher than that of char (37 mW/cm2) because of the enhanced electron transport caused by the additional reaction of hydrogen, methane, and carbon monoxide. The influence of volatile matter on the anodic electrolyte-electrode interface was analyzed with the use of the equivalent circuit induced from fitting the impedance data.
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页码:3807 / 3812
页数:5
相关论文
共 71 条
  • [1] Giddey S.(2012)A comprehensive review of direct carbon fuel cell technology Progress in Energy and Combustion Science 38 360-399
  • [2] Badwal S. P. S.(2007)Direct carbon fuel cell: Fundamentals and recent developments Journal of Power Source 167 250-257
  • [3] Kulkarni A.(2012)An experimental study on the characteristics of electrochemical reactions of RDF/RPF in the direct carbon fuel cell Transaction of the Korean Hydrogen and New Energy Society 23 513-520
  • [4] Munnings C.(2013)Utilization of wood biomass char in a direct carbon fuel cell (DCFC) system Applied Energy 105 207-216
  • [5] Cao D.(2013)Appl1ication of refuse fuels in a direct carbon fuel cell system Energy 51 447-456
  • [6] Sun Y.(2012)Analysis of the carbon anode in direct carbon conversion fuel cells International Journal of Hydrogen Energy 37 19319-19328
  • [7] Wang G.(2010)Evaluation of raw coals as fuels for direct carbon fuel cells Journal of Power Sources 195 4051-4058
  • [8] Ahn S. Y.(2012)Analytical modeling of electrochemical mechanisms in CO2 and CO/CO2 producing Direct Carbon Fuel Cell Journal of Electroanalytical Chemistry 668 99-106
  • [9] Rhie Y. H.(2010)Performance improvement of direct carbon fuel cell by introducing catalytic gasification process Journal of Power Sources 195 4660-4666
  • [10] Eom S. Y.(1999)Comparative study on the oxygen dissolution behaviour in 62/38 mol% Li/K and 52/48 mol% Li/Na carbonate Journal of Electroanalytical Chemistry 470 39-45