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Simulation study of Ferricyanide/Ferrocyanide concentric annulus thermocell with different electrode spacing and cell direction

机译:具有不同电极间距和细胞方向的铁氰化物/赤氧化氰酯同心环热电粒的仿真研究

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Thermogalvanic cell also named as thermocell is a new type of technology converting low-grade thermal energy to electricity. In this study, we establish an one-dimensional model of a Fe(CN)6~(3-/4-) concentric annulus thermocell and evaluate the influence of electrode spacing and cell direction on the cell performance. Results indicate the ratio of electrolyte thermal resistance to total thermal resistance plays a crucial role in cell performance while electric resistance has relatively less influence. The power of thermocell rises significantly as the electrode spacing increases, from about 0.75mW in both directions to 1.75 mW in horizontal direction and 2.75 mW in vertical direction. Convection of electrolyte is unfavorable to cell performance and the critical electrode spacing where convection begins to affect heat transfer is predicted to be the optimized spacing. At all values of electrode spacing in this study, thermocell in vertical direction performs better than that of horizontal direction.
机译:Thermogalvanic细胞又称thermocell是一种新型技术的低品位热能转换为电能。在这项研究中,我们建立的Fe(CN)6的〜(3- / 4-)的一维模型同心环thermocell和评价的电极间距和细胞方向的对电池性能的影响。结果表明,以总热阻电解质热阻之比在细胞的性能至关重要的作用,而电阻具有相对较少的影响。的thermocell功率作为电极在水平方向的两个方向至1.75毫瓦和2.75毫瓦在垂直方向间距增大,约0.75MW显著上升。电解质的对流是不利的电池性能,并且其中对流开始影响传热临界电极间距被预测为最优化的间距。在这项研究中,在thermocell垂直方向进行比水平方向的更好电极间距的所有值。

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