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An alternative low-loss stack topology for vanadium redox flow battery: Comparative assessment

机译:钒氧化还原液流电池的另一种低损耗电池堆拓扑:比较评估

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Two vanadium redox flow battery topologies have been compared. In the conventional series stack, bipolar plates connect cells electrically in series and hydraulically in parallel. The alternative topology consists of cells connected in parallel inside stacks by means of monopolar plates in order to reduce shunt currents along channels and manifolds. Channelled and flat current collectors interposed between cells were considered in both topologies. In order to compute the stack losses, an equivalent circuit model of a VRFB cell was built from a 2D FEM multiphysics numerical model based on Comsol (R), accounting for coupled electrical, electrochemical, and charge and mass transport phenomena. Shunt currents were computed inside the cells with 3D FEM models and in the piping and manifolds by means of equivalent circuits solved with Matlab (R). Hydraulic losses were computed with analytical models in piping and manifolds and with 3D numerical analyses based on ANSYS Fluent (R) in the cell porous electrodes. Total losses in the alternative topology resulted one order of magnitude lower than in an equivalent conventional battery. The alternative topology with channelled current collectors exhibits the lowest shunt currents and hydraulic losses, with round-trip efficiency higher by about 10%, as compared to the conventional topology. (C) 2016 Elsevier B.V. All rights reserved.
机译:比较了两种钒氧化还原液流电池的拓扑结构。在常规的串联堆中,双极板将电池电串联和液压并联。替代拓扑包括通过单极板并联连接在内部堆叠中的电池,以减少沿通道和歧管的并联电流。在两种拓扑结构中都考虑了介于单元之间的通道式集电器和扁平式集电器。为了计算电池堆损耗,从基于Comsol(R)的2D FEM多物理场数值模型构建了VRFB电池的等效电路模型,其中考虑了电,电化学以及电荷和质量输运现象。分流电流通过3D FEM模型在单元内部以及在管道和歧管中通过用Matlab(R)解决的等效电路进行计算。使用管道和歧管中的分析模型以及基于多孔电池中ANSYS Fluent(R)的3D数值分析来计算水力损失。替代拓扑中的总损耗比等效的传统电池低一个数量级。与常规拓扑相比,具有通道式集电器的替代拓扑显示出最低的并联电流和液压损失,往返效率提高了约10%。 (C)2016 Elsevier B.V.保留所有权利。

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