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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Modeling of Molten Metal Flow in a Continuous Casting Process Considering the Effects of Argon Gas Injection and Static Magnetic-Field Application
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Modeling of Molten Metal Flow in a Continuous Casting Process Considering the Effects of Argon Gas Injection and Static Magnetic-Field Application

机译:考虑氩气注入和静磁场应用影响的连续铸造过程中熔融金属流动的建模

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A mathematical model has been developed to analyze molten metal flow, considering the effects of argon gas injection and static magnetic-field application in the continuous casting process. The #kappa#-#epsilon# turbulence model is used to calculate the turbulent variables. A homogeneous fluid model with variable density is employed to tackle the molten metal-argon gas flow. The electromagnetic force is incorporated into the Navier-Stokes equation, and the effects of boundary conditions of the magnetic field on the velocity distribution near the mold wall are included. A good agreement between the numerically obtained flow-field results and measurements is obtained. The argon gas injection changes the molten metal flow pattern, mainly in the upper portion of the mold. By applying the magnetic field, values of the averaged velocity field in the bulk decrease significantly, and, especially at the top free surface, they become very small, which can cause meniscus freezing. When magnetic-field application and argon gas injection are used together, the external flow field out of the gas plume is significantly suppressed; nevertheless, flotation of gas bubbles is still active and is not affected directly by the magnetic field. Although the penetrating length of the gas plume is shortened, the argon gas bubbles in molten steel still cause fluctuation at the top free surface, which prevents the occurrence of freezing.
机译:考虑到在连续铸造过程中注入氩气和施加静磁场的影响,已经开发了用于分析熔融金属流动的数学模型。 #kappa#-#epsilon#湍流模型用于计算湍流变量。采用具有可变密度的均质流体模型来解决熔融金属-氩气的流动。将电磁力合并到Navier-Stokes方程中,并且包括磁场的边界条件对模具壁附近速度分布的影响。在数值上获得的流场结果与测量值之间获得了良好的一致性。氩气的注入主要在模具的上部改变了熔融金属的流动方式。通过施加磁场,整体中的平均速度场的值显着减小,并且尤其是在顶部自由表面上,它们变得非常小,这可能导致弯液面冻结。当同时使用磁场和注入氩气时,可显着抑制气体羽流的外部流场。但是,气泡的漂浮仍然很活跃,不受磁场的直接影响。尽管缩短了气体羽流的穿透长度,但是钢水中的氩气气泡仍然在顶部自由表面引起波动,从而防止了结冰的发生。

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