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NUMERICAL SIMULATION ON COUPLED MULTI-FIELD OF THE PERFORATED ANODE IN ALUMINIUM REDUCTION CELLS UNDER LOW CARBON OPERATION

机译:低碳操作下铝电解槽中多孔阳极耦合多场的数值模拟

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摘要

Perforation on the anode block is a new way of energy conservation. The bubbles under the anode block can be eliminated from the holes, and the energy consumption is reduced. The physical and mathematical models of perforated anode and bubble layer were established, and the thickness of the anode bubble layer and temperature field, electric field and thermal stress field were simulated. The simulation results show that the thickness of the bubble layer is 1.28cm of the perforated anode, reduced by 0.72cm compared to a normal anode, of which corresponding voltage is less than 240mV; the minimum temperature of anode block is 704.3-, and the temperature distribution in a horizontal plane presents a wave shape due to the holes; the voltage drop of the perforated anode is 379mV and the current density distribution of the perforated anode and ordinary anode are consistent; the maximum of thermal stress is 17.4MPa in the perforated anode, which is far less than the allowable stress. The perforated anode industrial was conducted on three cells. The average cell voltage of perforated anodes decreases 229mV than the traditional reduction cell after longterm operation, which is agreed with the theoretical calculation.
机译:阳极块上的穿孔是一种新的节能方式。阳极块下方的气泡可从孔中消除,并降低了能耗。建立了多孔阳极和气泡层的物理数学模型,模拟了阳极气泡层的厚度,温度场,电场和热应力场。仿真结果表明,气泡层的厚度为穿孔阳极的1.28cm,与普通阳极相比减小了0.72cm,其对应的电压小于240mV。阳极块的最低温度为704.3℃,由于孔的存在,水平面内的温度分布呈波形。穿孔阳极的压降为379mV,穿孔阳极与普通阳极的电流密度分布一致。穿孔阳极的最大热应力为17.4MPa,远小于允许应力。穿孔阳极工业在三个电池上进行。长期运行后,穿孔阳极的平均电池电压比传统的还原电池降低229mV,这与理论计算是一致的。

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