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首页> 外文期刊>Electrochimica Acta >Performance of a thermally regenerative ammonia-based flow battery with 3D porous electrodes: Effect of reactor and electrode design
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Performance of a thermally regenerative ammonia-based flow battery with 3D porous electrodes: Effect of reactor and electrode design

机译:3D多孔电极的热再生氨基流动电池的性能:反应器和电极设计的影响

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摘要

The thermally regenerative ammonia-based batteries (TRABs) provide a promising approach for recovering electrical energy from low-grade waste heat. To promote the power generation, the reactor design, electrode pore density, and flow rate are investigated in this study. The results show that different reactor designs induce different mass transfer effects and significantly influence the power generation of the TRABs. TRAB without an electrolyte chamber but with a flow-through electrode on each side (TRAB-FT) results in the most effective mass transfer, obtaining the highest maximum power density (22.9 W m(-2)), total charge (1268.3C), and energy density (818.2 Wh m(-3)). Regarding the electrode pore density, the maximum performance increases initially and later decreases as the electrode pore density (pores per linear inch, PPI) of the electrode increases, and the optimal electrode pore density is 100 PPI for the TRAB-FT. This is attributed to the electrode porosity effect on the electrode specific surface and mass transfer resistance. In addition, the electrolyte flow rate significantly influences the performance of the TRAB-FT. With the increase in the flow rate, the power production shows an increasing trend with a gradually reduced increasing rate, obtaining an optimal electrolyte flow rate of 15 mL min(-1). (c) 2019 Elsevier Ltd. All rights reserved.
机译:基于热再生的氨基电池(TRABS)提供了从低级废热中回收电能的有希望的方法。为了促进发电,在本研究中研究了电极设计,电极孔密度和流速。结果表明,不同的反应器设计诱导不同的传质效果,从而显着影响特拉巴的发电。没有电解质室但在每侧的流通电极(Trab-FT)上具有最有效的传质,获得最高功率密度(22.9W m(-2)),总电荷(1268.3c) ,能量密度(818.2WH m(-3))。关于电极孔浓度,最初的性能最初增加,随后随后电极的电极孔密度(PPI)的电极孔密度(PPI)增加而增加,并且最佳电极孔密度为TRAB-FT为100ppi。这归因于电极孔隙效应对电极的比表面和传质阻力。此外,电解质流速显着影响Trab-FT的性能。随着流速的增加,电力产生显示出逐渐降低的趋势逐渐降低,获得15mL min(-1)的最佳电解质流速。 (c)2019 Elsevier Ltd.保留所有权利。

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