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Stack Design Considerations for Vanadium Redox Flow Battery

机译:钒氧化还原液流电池的堆栈设计注意事项

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摘要

In this paper we deal with strategic considerations in designing the stack of a vanadium redox flow battery. The design of the stacks is complicated by the presence of a number of parameters that can influence the performance. For a given stack power, the cell size and the number of cells are inversely related. As the cell size increases, concerns arise over uniform circulation of electrolyte over the cell and the pressure drop incurred in circulating a larger flow rate over a longer flow path. In the present paper, these issues have been studied experimentally and through model estimates. A short stack of four cells has been prepared by connecting them in series electrically and its electrochemical performance, including pressure drop, has been characterized over a range of important design parameters. It is shown that, for the same local electrochemical performance, increasing the cell size increases the gravimetric and volumetric efficiency of the stack. Although the cell pressure drop increases with increasing cell size, the pressure drop in the manifold is reduced as there are fewer number of channels. This leads to a decrease in the parasitic power consumption for electrolyte circulation. For large-powered stacks, further reduction in pressure drop can be achieved by making deeper grooves in the serpentine channels.
机译:在本文中,我们在设计钒氧化还原液流电池堆时涉及了战略考虑。堆栈的设计由于存在许多可能影响性能的参数而变得复杂。对于给定的堆叠功率,像元大小和像元数成反比。随着电池尺寸的增加,会引起电解液在电池上的均匀循环以及在较长的流动路径上以较大的流量循环时引起的压降的担忧。在本文中,这些问题已通过实验和模型估计进行了研究。通过将四个电池串联在一起,可以制备出四个电池的短堆栈,并且已在一系列重要设计参数上表征了其电化学性能(包括压降)。结果表明,对于相同的局部电化学性能,增加电池尺寸会增加电池堆的重量和体积效率。尽管孔压降随着孔尺寸的增加而增加,但歧管中的压降却随着通道数量的减少而减小。这导致电解质循环的寄生功率消耗的减少。对于大功率烟囱,可通过在蛇形通道中形成更深的凹槽来进一步降低压降。

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