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A numerical model for a thermally-regenerative ammonia-based flow battery using for low grade waste heat recovery

机译:用于低品位废热回收的蓄热式氨基液流电池的数值模型

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A stationary and a transient two-dimensional models, based on the universal conservation laws and coupled with electrochemical reactions, are firstly applied to describe a single thermally-regenerative ammonia-based flow battery (TR-AFB), and emphasis is placed on studying the effects of reactant concentrations, physical properties of the electrolyte, flow rates and geometric parameters of flow channels on the battery performance. The model includes several experimental parameters measured by cyclic voltammetry (CV), chronoamperometry (CA) and Tafel plot. The results indicate that increasing NH3 concentration has a decisive effect on the improvement of power production and is beneficial to use higher Cu2+ concentrations, but the endurance of membrane and self discharge need to be considered at the same time. It is also suggested that appropriately reducing the initial Cu (NH3)(4)(2+) concentration can promote power and energy densities and mitigate cyclical fluctuation. The relation between the energy and power densities is given, and the models are validated by some experimental data.
机译:首先,基于普遍守恒定律并结合电化学反应,建立了静态和瞬态二维模型来描述单个热再生氨基液流电池(TR-AFB),并着重研究了反应物浓度,电解质的物理特性,流速和流道的几何参数对电池性能的影响。该模型包括通过循环伏安法(CV),计时电流法(CA)和塔菲尔图测量的几个实验参数。结果表明,增加NH3浓度对提高发电量具有决定性作用,并且有利于使用较高的Cu2 +浓度,但需要同时考虑膜的耐久性和自放电。还建议适当降低初始Cu(NH3)(4)(2+)浓度可提高功率和能量密度并减轻周期性波动。给出了能量密度和功率密度之间的关系,并通过一些实验数据验证了该模型。

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