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Thermal modelling of battery configuration and self-discharge reactions in vanadium redox flow battery

机译:钒氧化还原液流电池中电池结构和自放电反应的热模型

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摘要

During the operation of vanadium redox flow battery, the vanadium ions diffuse across the membrane as a result of concentration gradients between the two half-cells in the stack, leading to self-discharge reactions in both half-cells that will release heat to the electrolyte and subsequently increase the electrolyte temperature. In order to avoid possible thermal precipitation in the electrolyte solution and prevent possible overheating of the cell components, the electrolyte temperature needs to be known. In this study, the effect of the self-discharge reactions was incorporated into a thermal model based on energy and mass balances, developed for the purpose of electrolyte temperature control. Simulations results have shown that the proposed model can be used to investigate the thermal effect of the self-discharge reactions on both continuous charge-discharge cycling and during standby periods, and can help optimize battery designs and fabrication for different applications.
机译:在钒氧化还原液流电池运行期间,由于电池堆中两个半电池之间的浓度梯度,钒离子在整个膜上扩散,导致两个半电池中的自放电反应,这将释放热量到电解质中然后提高电解液温度。为了避免电解质溶液中可能的热沉淀并防止电池组件可能的过热,需要知道电解质的温度。在这项研究中,自放电反应的影响被纳入到基于能量和质量平衡的热模型中,该模型是为控制电解质温度而开发的。仿真结果表明,提出的模型可用于研究自放电反应对连续充放电循环和待机期间的热效应,并有助于优化电池设计和制造以适应不同的应用。

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