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现代铝电解槽的电磁流动 (Ⅰ)基本特点与控制方程 被引量:2

THE ELECTROHYDROMAGNETICS OF THE HALL-HEROULT CELL (Ⅰ) CHARACTERISTIC FEATURES AND THE CONTROLLING EQUATIONS
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摘要 对现代铝电解槽内流体运动进行整体分析,将碳阳极下表面到碳阴极上表面的流体分成几个带区,并对各带区流动及其关联建立了相应的数学模型。在强大电磁力作用下,电解质熔体和铝液作分层水平循环流动,这种流动一般说来是有旋的;阳极下表面气体生成是大量的、随机的,其整体作用将改变液体分层流动的边界条件,其个别作用将引起扰动在液体中特别是其分界面上传播。本文还将电磁力沿三个方向分解,导出了适合于冶金电磁流动分析的YM型运动方程,并据此清楚地剖析了电磁力对运动的影响,建立了电磁流动由层流向湍流转捩的判据以及流动的相似参数。 Having divided the whole flow field of a Hall-Heroult Cell into several zones and established a combination of all individual models of these zones, this paper presented an overall interdisplinary treatment of the cell flow, which, driven by powerful Lorentz force and affected by the bubbles attached to the anode's underside, is characteristically stratified and essentially rotational. Moreover, an applicable momentum equation of electrically conducting fluid has been brought out, and the effects of the Lorentz force, the criterion of motion transformation and the similarity parameters have been made clear. As a result, a solid foundation of theoretical analysis, numerical calculation and physical mo- delling for the Hall-Heroult Cell has been laid down.
作者 岳林 梅炽
出处 《中南矿冶学院学报》 CSCD 1991年第6期636-643,共8页
关键词 电解槽 铝电解 电磁 流动 控制方程 aluminium reduction cell electrohydromagnetics nonlinear equation system similarity parameters of flow
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参考文献2

  • 1S. K. Banerjee,J. W. Evans. Measurements of magnetic fields and electromagnetically driven melt flow in a physical model of a hall-héroult cell[J] 1990,Metallurgical Transactions B(1):59~69
  • 2J. W. Evans,Y. Zundelevich,D. Sharma. A Mathematical model for prediction of currents, magnetic fields, melt velocities, melt topography and current efficiency in Hall-Héroult cells[J] 1981,Metallurgical Transactions B(2):353~360

同被引文献17

  • 1戚喜全,冯乃祥,崔建忠.工艺条件对电解槽融体中电流分布影响的数值计算[J].有色金属,2004,56(3):63-66. 被引量:2
  • 2梁学民 于家谋.我国280 kA超大型铝电解槽开发工业实验[J].轻金属,:54-58.
  • 3李相鹏.[D].长沙:中南大学,2004.
  • 4Johnson A R. Metal pad velocity measurement in aluminum reduction cells[J]. Light Metals[C]. Warrendale, Pennsylvania: TMS, 1978. 45-50.
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  • 6Robl R F. Metal flow dependence on ledging in hallheroult cells [A]. Light Metals [C]. Warrendale,Pennsylvania: TMS, 1983. 449 - 456.
  • 7Arita Y, Ikeuchi H. Numerical calculation of bath and metal convection pattern and their interface profile in Al reduction cells[A]. Light Metals[C]. Warrendale,Pennsylvania: TMS, 1981. 357-371.
  • 8Tarapore E D. The effect of some operating variables on flow in aluminum reduction cells[A]. Light Metals[C]. Warrendale, Pennsylvania: TMS, 1983. 341-355.
  • 9Segatz M, Vogelsang D, Droste C, et al. Modelling of transient magnetro-hydrodynamic phenomena in hallhaeroult cells [A]. Light Metals [C]. Warrendale,Pennsylvania: TMS, 1993. 361-368.
  • 10Potocnik V, Larrcosche F. Comparision of measured and calculated metal pad velocities for different prebake cell designs[A]. Light Metals[C]. Warrendale, Pennsylvania: TMS, 2001. 419 - 425.

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