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Effect of slotted anode on gas bubble behaviors in aluminum reduction cell

journal contribution
posted on 2024-11-02, 07:00 authored by Meijia Sun, Baokuan Li, Linmin Li, Qiang Wang, Jianping Peng, Yaowu Wang, Chi Pok CheungChi Pok Cheung
In the aluminum reduction cells, gas bubbles are generated at the bottom of the anode which eventually reduces the effective current contact area and the system efficiency. To encourage the removal of gas bubbles, slotted anode has been proposed and increasingly adopted by some industrial aluminum reduction cells. Nonetheless, the exact gas bubble removal mechanisms are yet to be fully understood. A three-dimensional (3D) transient, multiphase flow mathematical model coupled with magnetohydrodynamics has been developed to investigate the effect of slotted anode on the gas bubble movement. The Eulerian volume of fluid approach is applied to track the electrolyte (bath)-molten aluminum (metal) interface. Meanwhile, the Lagrangian discrete particle model is employed to handle the dynamics of gas bubbles with considerations of the buoyancy force, drag force, virtual mass force, and pressure gradient force. The gas bubble coalescence process is also taken into account based on the O'Rourke's algorithm. The two-way coupling between discrete bubbles and fluids is achieved by the inter-phase momentum exchange. Numerical predictions are validated against the anode current variation in an industrial test. Comparing the results using slotted anode with the traditional one, the time-averaged gas bubble removal rate increases from 36 to 63 pct; confirming that the slotted anode provides more escaping ways and shortens the trajectories for gas bubbles. Furthermore, the slotted anode also reduces gas bubble's residence time and the probability of coalescence. Moreover, the bubble layer thickness in aluminum cell with slotted anode is reduced about 3.5 mm (17.4 pct), so the resistance can be cut down for the sake of energy saving and the metal surface fluctuation amplitude is significantly reduced for the stable operation due to the slighter perturbation with smaller bubbles.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1007/s11663-017-1065-y
  2. 2.
    ISSN - Is published in 10735615

Journal

Metallurgical and Materials Transactions B: Process Metallurgy and Materials Processing Science

Volume

48

Issue

6

Start page

3161

End page

3173

Total pages

13

Publisher

Springer New York LLC

Place published

United States

Language

English

Copyright

© The Minerals, Metals and Materials Society and ASM International 2017

Former Identifier

2006082312

Esploro creation date

2020-06-22

Fedora creation date

2018-09-20

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