In an electrolyser, V lin <0 and shunt currents increase with increasing current I. In a discharging (flow) battery, V lin> 0 and shunt currents are negative, as they run in a direction opposite to the stack
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In article number 2000758, Liang An, T.S. Zhao and co-workers explore the fundamental understanding, physicochemical processes, working principles and operation limitations of flow batteries, even
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Introduction Redox flow batteries store the energy in the liquid electrolytes, pumped through the cell and stored in external tanks, rather than in the porous electrodes as for conventional
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Modelling and simulation can play a major role in the design, analysis, control, scale-up and optimisation of a host of technologies, including fuel cells and batteries [1, 2]. Experimental investigations and
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The flow battery is a promising technology for large-scale storage of intermittent power generated from solar and wind farms owing to its unique advantages such as location independence,
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Redox flow batteries (RFBs) have been widely recognized in the domain of large-scale energy storage due to their simple structure, long lifetime, quick response, decoupling of capacity
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Introduction Redox flow batteries store the energy in the liquid electrolytes, pumped through the cell and stored in external tanks, rather than in the porous electrodes as for conventional
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Flow batteries have long been considered the most flexible answer to grid scale energy storage, and modelling is a key component in their development. Recent modelling has moved beyond
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A novel multiscale flow battery simulation approach is presented. Therefore, the mass transfer coefficient (MTC) is extracted from the 3D-resolved microscale simulations, transferred to the
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