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Numerical analysis of the single electrode heat effect in molten carbonate fuel cells: temperature analysis of the electrolyte plate by applying irreversible thermodynamics

机译:熔融碳酸盐燃料电池中单电极热效应的数值分析:应用不可逆热力学对电解质板进行温度分析

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摘要

A temperature analysis model of a molten carbonate fuel cells (MCFC) stack is used to calculate the single electrode heat effects. The magnitude of heat which evolves from the cathode and absorbed at the anode is large, and in similar value to the electrical output of a MCFC. This suggests that the heat evolution of a single electrode causes a temperature difference between the electrodes. The temperature distribution in the electrolyte plate is evaluated to establish more accurate results concerning the temperature analysis model of the stack. The temperature distribution in the electrolyte plate is studied by applying irreversible thermodynamics. When the operating current density is less than 3000 A m{sup}(-2) and the thermal conductivity of the electrolyte is more than 2Wm{sup}(-1)K{sup}(-1), the temperature difference between cathode and anode is estimated to be less than approximately 1K. This result proves that the temperature difference between the electrodes can be supposed constant in constructing the temperature analysis model of the MCFC stack. This results also allows us to construct a two-dimensional heat production distribution in the cell plane and discrete heat production distribution in the stacking direction for the practical use of the temperature analysis model.
机译:熔融碳酸盐燃料电池(MCFC)堆的温度分析模型用于计算单电极热效应。从阴极放出并在阳极吸收的热量很大,其值与MCFC的电输出相似。这表明单个电极的放热导致电极之间的温度差。评估电解质板中的温度分布以建立有关电池堆温度分析模型的更准确结果。通过应用不可逆的热力学来研究电解质板中的温度分布。当工作电流密度小于3000 A m {sup}(-2)且电解质的热导率大于2Wm {sup}(-1)K {sup}(-1)时,阴极之间的温差阳极估计小于约1K。该结果证明,在构建MCFC堆的温度分析模型时,可以假设电极之间的温差恒定。该结果还使我们能够在单元平面中构造二维热量产生分布,并在堆叠方向上构造离散的热量产生分布,以实际使用温度分析模型。

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