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Temperature, charging current and state of charge effects on iron-vanadium flow batteries operation

机译:温度,充电电流和充电状态对铁钒液流电池运行的影响

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摘要

Reliable and low cost energy storage technologies are required in order to store electrical energy on a large scale, as the power generated from intermittent renewable resources is continuously growing. Redox flow batteries are considered as a promising technology to lead a balanced solution for the future low emissions power sector challenges. The effect of temperature, charge/discharge current and state of charge on the performance of an iron -vanadium flow battery has been investigated in this study. VCl3 and FeCl2 in HCl(aq) electrolytes have been used for the anolyte and catholyte respectively, while graphite felt has been used for the electrodes. The results reveal an optimum operating temperature of similar to 47 degrees C and an optimum charging current of 50 mA cm(-2) when the battery is in a state of charge between 20 and 80%. The calculated voltage and coulombic efficiencies were estimated to be similar to 85%. Under a mean linear flow velocity of similar to 40 cm s(-1), it has been found that the process is controlled by the sluggish kinetics of the V2+/V3+ half-reaction. The kinetic constant has been calculated equal to 0.8 . 10-5 cm s(-1) at 30 degrees C and 4.5 . 10(-5) cm s(-1) at 47 degrees C, resulting in an activation energy of similar to 110 kJ mol(-1). A model based on the exchange current density values and the state of charge, has been used to calculate the charge transfer coefficient. The latter was found to decrease with respect to temperature from 0.63 at 30 degrees C to 0.13 at 52 degrees C.
机译:随着间歇性可再生资源产生的电力不断增长,需要可靠且低成本的能量存储技术以大规模存储电能。氧化还原液流电池被认为是一种有前途的技术,可以为未来的低排放电力行业挑战提供平衡的解决方案。在这项研究中,研究了温度,充电/放电电流和充电状态对铁钒液流电池性能的影响。 HCl(aq)电解质中的VCl3和FeCl2已分别用作阳极电解液和阴极电解液,而石墨毡已用作电极。结果表明,当电池处于20%至80%的充电状态时,最佳工作温度类似于47摄氏度,最佳充电电流为50 mA cm(-2)。计算出的电压和库仑效率估计接近85%。在类似于40 cm s(-1)的平均线性流速下,已发现该过程受V2 + / V3 +半反应的缓慢动力学控制。计算出的动力学常数等于0.8。在30度C和4.5下10-5 cm s(-1)。 10(-5)cm s(-1)在47摄氏度,导致的活化能类似于110 kJ mol(-1)。基于交换电流密度值和电荷状态的模型已用于计算电荷转移系数。发现后者相对于温度从30摄氏度的0.63降低到52摄氏度的0.13。

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