A comprehensive experimental and modelling approach for the evaluation of cross-over fluxes in Vanadium Redox Flow Battery

Marco Cecchetti, Francesco Toja, Andrea Casalegno, Matteo Zago
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引用次数: 1

Abstract

Vanadium cross-over is a critical issue in Vanadium Redox Flow Battery consisting in a complex interplay of different mechanisms of which a complete comprehension has not been reached yet. Due to the complexity of the involved phenomena, several models have been developed in literature to investigate vanadium cross-over. However, the conventional approaches for model calibration present a limited set of experiments for the validation preventing a complete understanding of cross-over phenomena. In this work a new and comprehensive approach is proposed. It is based on charge-discharge cycles with fixed exchanged capacity, able to isolate the capacity loss induced by cross-over fluxes, and on the measure of the self-discharge of the single electrolyte solutions by exploiting through-plate reference electrodes. Moreover, a 1D physically-based model of the operation of the battery is developed and calibrated on the data of electrolyte imbalance during charge-discharge cycles at three different current densities to obtain model parameters able to accurately describe the involved physics in different operating conditions. The model is then exploited to investigate the main vanadium transport mechanisms through the membrane and to evaluate the influence of the current density on the vanadium cross-over fluxes, net vanadium transport and self-discharge rate of the electrolyte.
钒氧化还原液流电池交叉通量的综合实验和建模方法
钒交叉是钒氧化还原液流电池中的一个关键问题,它是多种机制相互作用的产物,目前尚未完全理解。由于所涉及的现象的复杂性,文献中已经建立了几种模型来研究钒交叉。然而,传统的模型校准方法为验证提供了一组有限的实验,阻止了对交叉现象的完全理解。在这项工作中,提出了一种新的综合方法。它基于具有固定交换容量的充放电循环,能够隔离由交叉通量引起的容量损失,并通过利用通板参考电极对单个电解质溶液的自放电进行测量。此外,基于三种不同电流密度下充放电循环过程中电解质失衡的数据,建立并校准了电池运行的一维物理模型,获得了能够准确描述不同运行条件下所涉及的物理特性的模型参数。然后利用该模型研究了钒通过膜的主要输运机制,并评估了电流密度对电解质中钒的交叉通量、净钒输运和自放电速率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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