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Modelling the effects of oxygen evolution in the all-vanadium redox flow battery

机译:模拟全钒氧化还原液流电池中氧气释放的影响

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摘要

The impact of oxygen evolution and bubble formation on the performance of an all-vanadium redox flow battery is investigated using a two-dimensional, non-isothermal model. The model is based on mass, charge, energy and momentum conservation, together with a kinetic model for the redox and gas-evolving reactions. The multi-phase mixture model is used to describe the transport of oxygen in the form of gas bubbles. Numerical simulations are compared to experimental data, demonstrating good agreement. Parametric studies are performed to investigate the effects of changes in the operating temperature, electrolyte flow rate and bubble diameter on the extent of oxygen evolution. Increasing the electrolyte flow rate is found to reduce the volume of the oxygen gas evolved in the positive electrode. A larger bubble diameter is demonstrated to increase the buoyancy force exerted on the bubbles, leading to a faster slip velocity and a lower gas volume fraction. Substantial changes are observed over the range of reported bubble diameters. Increasing the operating temperature was found to increase the gas volume as a result of the enhanced rate of O2 evolution. The charge efficiency of the cell drops markedly as a consequence.
机译:使用二维非等温模型研究了氧气逸出和气泡形成对全钒氧化还原液流电池性能的影响。该模型基于质量,电荷,能量和动量守恒,以及氧化还原和气体演化反应的动力学模型。多相混合物模型用于描述气泡形式的氧气的传输。将数值模拟与实验数据进行了比较,证明了很好的一致性。进行参数研究以研究工作温度,电解质流速和气泡直径的变化对氧气析出程度的影响。发现增加电解质流速降低了在正极中放出的氧气的量。已证明较大的气泡直径可增加施加在气泡上的浮力,从而导致更快的滑移速度和更低的气体体积分数。在报告的气泡直径范围内观察到了很大的变化。由于提高了O2的释放速率,发现提高工作温度会增加气体量。结果,电池的充电效率显着下降。

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