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Lifetime expectancy of molten carbonate fuel cells: Part Ⅱ. Cell life simulation using bench and coin-type cells

机译:熔融碳酸盐燃料电池的寿命:第Ⅱ部分。 使用台式和硬币型细胞进行细胞寿命模拟

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The lifetime of molten carbonate fuel cells is simulated in terms of electrolyte loss rate, voltage reduction rate, and activation energy using 7 cm(2) coin- and 100 cm(2) bench-type molten carbonate fuel cells. Arrhenius plots are used to determine the temperature dependence of the anode gas-phase mass transfer resistance, cathode gas and liquid-phase mass transfer resistances and electrolyte loss rate. The gas-phase mass transfer resistance of the anode has positive activation energy, indicating more substantial resistance at higher temperatures. The cathodic gas-phase mass transfer resistance has small and negative activation energy. In contrast, the cathode shows negative and positive activation energies at the mass transfer resistance of superoxide ion (O-2(-)) and CO2 in the liquid electrolytes, respectively. The negative value indicates a lower overpotential at higher temperatures and vice versa. The Arrhenius plot of the electrolyte weight loss rate shows positive activation energy, indicating that an increase in temperature causes a simultaneous increase in electrolyte weight loss. The cell life of a molten carbonate fuel cell is predicted using a factor that relates the voltage reduction and electrolyte loss rates. A lower value of the factor gives a longer cell life. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:熔融碳酸盐燃料电池的寿命在电解质损失率,降压率和使用7cm(2)枚币和100cm(2)个台式熔融碳酸盐燃料电池的碳酸盐燃料电池方面模拟了电解质损失率,降压率和活化能量。 Arhenius图用于确定阳极气相传质电阻,阴极气体和液相传质电阻和电解质损失率的温度依赖性。阳极的气相传质电阻具有阳性活化能量,在较高温度下表明更显着的电阻。阴极气相传质电阻具有较小且阴性的活化能量。相反,阴极显示出在超氧化物离子(O-2())和液体电解质中的CO 2的传质电阻处的负激活能量。负值表示在较高温度下的低过电位,反之亦然。电解质重量损失率的Arrhenius图显示出阳性活化能量,表明温度的增加导致电解质重量损失同时增加。使用与电压降低和电解质损失率相关的因子来预测熔融碳酸盐燃料电池的细胞寿命。该因素的较低价值给出了更长的细胞寿命。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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