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首页> 外文期刊>Journal of power sources >Dynamic thermal-hydraulic modeling and stack flow pattern analysis for all-vanadium redox flow battery
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Dynamic thermal-hydraulic modeling and stack flow pattern analysis for all-vanadium redox flow battery

机译:全钒氧化还原液流电池的动态热工液压建模和堆流型分析

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The present study focuses on dynamic thermal-hydraulic modeling for the all-vanadium flow battery and investigations on the impact of stack flow patterns on battery performance. The inhomogeneity of flow rate distribution and reversible entropic heat are included in the thermal-hydraulic model. The electrolyte temperature in tanks is modeled with the finite element modeling (FEM) technique considering the possible non-uniform distribution of electrolyte temperature. Results show that the established model predicts electrolyte temperature accurately under various ambient temperatures and current densities. Significant temperature gradients exist in the battery system at extremely low flow rates, while the electrolyte temperature tends to be the same in different components under relatively high flow rates. Three stack flow patterns including flow without distribution channels and two cases of flow with distribution channels are compared to investigate their effects on battery performance. It is found that the flow rates are not uniformly distributed in cells especially when the stack is not well designed, while adding distribution channels alleviates the inhomogeneous phenomenon. By comparing the three flow patterns, it is found that the serpentine-parallel pattern is preferable and effectively controls the uniformity of flow rates, pressure drop and electrolyte temperature all at expected levels.
机译:本研究的重点是全钒液流电池的动态热工液压模型,并研究电池堆流型对电池性能的影响。流量分布和可逆熵热的不均匀性包括在热工水力模型中。考虑到可能的电解液温度分布不均,使用有限元建模(FEM)技术对水箱中的电解液温度进行建模。结果表明,所建立的模型可以准确预测各种环境温度和电流密度下的电解质温度。在极低的流量下,电池系统中存在明显的温度梯度,而在相对较高的流量下,不同组件中的电解质温度趋于相同。比较了三种电池堆的流动模式,包括没有分配通道的流动和两种有分配通道的流动,以研究它们对电池性能的影响。发现当单元中的流速不均匀地分布时,特别是当电池堆的设计不当时,而增加分布通道则减轻了不均匀现象。通过比较三种流动模式,发现蛇形平行模式是优选的,并有效地将流速,压降和电解质温度的均匀性均控制在预期水平。

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