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A 3-D Numerical Model to Predict Low Temperature Aluminum Electrochemical Process Using Ionic Liquids as Electrolytes at Different Boundary Conditions

机译:一种三维数值模型,以预测不同边界条件下电解质的低温铝电化学工艺

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Aluminum separation process using low temperature ionic liquids electrolytes is an energy-efficient and environmental benign metal extraction technology. A 3-D numerical model was developed to predict this electrochemical process. The average current density of anode and cathode was set as the evaluation standard. The influence of batch reactor geometries, number and distance between electrodes, reactor domain and inlet temperature, inlet flow velocity to the current density was studied. Three kinds of ionic liquids [EMIM]C1-AlCl_3, [HrMIM]Cl-AlCl_3, and [BMIM]Cl-AlCl_3 electrolytes were compared. Uncertainty analysis of electrolyte parameters like electrical conductivity, thermal conductivity, density, specific heat, and viscosity was also conducted. The results give some reference value for different boundary conditions and indicate that to get a larger current density; the inlet temperature should be as high as the domain. It also shows the electrical conductivity plays a decisive role in determining the current density. Those simulation results were also verified by the experiment.
机译:使用低温离子液体电解质的铝分离过程是一种节能和环境良性金属提取技术。开发了三维数值模型以预测这种电化学过程。将阳极和阴极的平均电流密度设定为评估标准。批量反应器几何形状的影响,电极之间的数量和距离,反应器结构域和入口温度,入口流速与电流密度的入口流速。比较了三种离子液体[emim] C1-ALCL_3,[HRMIM] CL-ALCL_3和[BMIM] CL-ALCL_3电解质。还进行了电解质参数的不确定性分析,如电导率,导热性,密度,比热和粘度。结果为不同的边界条件提供了一些参考值,并表明要获得更大的电流密度;入口温度应高达域。它还示出了导电性在确定电流密度时起着决定性作用。这些仿真结果也通过实验验证。

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