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Numerical and Experiment Study of Fluid Flow during Electrolytic Process for Magnesium Production

机译:电解镁生产过程中流体流动的数值和实验研究

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Bubbles form at the anode during the electrowinning of magnesium and cause hydrodynamic acceleration and electrical field disturbance. A three-dimensional computational model was developed to investigate the effects of the geometry of the electrochemical chamber and the size distribution of bubbles on the fluid flow in the pilot plant. The results are validated by measurements of the surface characteristics of molten salt and the bubbles formed. Fluid flow at the surface was recorded with a high speed camera, and the distribution of bubble size is determined by inspecting the video images frame by frame. The measured size distribution of the bubbles is entered into the computer simulation of a multi-phase flow. A sloped roof is installed above the electrodes, to enhance the flow of the molten salt, thus resulting in higher current efficiency, lower energy consumption, and higher quality of magnesium metal.
机译:在镁的电解沉积过程中,气泡会在阳极形成,并引起流体动力加速和电场干扰。开发了三维计算模型,以研究电化学室的几何形状和气泡大小分布对中试工厂流体流动的影响。通过测量熔盐和形成的气泡的表面特性来验证结果。用高速照相机记录表面上的流体流动,并通过逐帧检查视频图像来确定气泡尺寸的分布。所测量的气泡尺寸分布被输入到多相流的计算机模拟中。在电极上方安装了倾斜的屋顶,以增强熔融盐的流动,从而导致更高的电流效率,更低的能耗和更高质量的金属镁。

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