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Numerical Estimation of the Effect of the Magnetic Field Application on the Motion of Inclusion in Continuous Casting of Steel

机译:磁场对钢连铸夹杂物运动影响的数值估计

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Numerical estimation has been conducted to analyze the motion of inclusion considering the effects of argon gas injection and magnetic field application in the continuous casting of slab. The fluid velocity field was obtained by solving the Navier―Stokes equations with electromagnetic force, and the trajectories of inclusion particles are calculated based on the computed velocity field. A reasonable agreement between numerical and experimental trajectory for single sphere was obtained using the water model. The movements of particles are traced in cases with and without the magnetic field and argon gas injection. The results show that some particles after spiral movements re-enter the jet zone of molten steel, and then enter the opposite circulation zone. Inclusions in the upper circulation zone are easily removed. Argon gas injection increases the removal rate of inclusions. The spiral trajectories of inclusion particles disappear when the magnetic field is applied, and the particle velocities decrease significantly. The argon gas injection and magnetic field application are effective for the control of the inclusions.
机译:考虑板坯连铸中氩气注入和磁场施加的影响,进行了数值估算以分析夹杂物的运动。通过用电磁力求解Navier-Stokes方程获得流体速度场,并基于计算出的速度场来计算夹杂颗粒的轨迹。使用水模型获得了单个球体的数值和实验轨迹之间的合理一致性。在有磁场和无磁场以及注入氩气的情况下,都可以追踪粒子的运动。结果表明,一些螺旋运动后的颗粒重新进入钢水的喷射区,然后进入相反的循环区。上部循环区中的夹杂物很容易去除。氩气注入提高了夹杂物的去除率。当施加磁场时,夹杂物颗粒的螺旋轨迹消失,并且颗粒速度显着降低。氩气注入和磁场施加对于控制夹杂物是有效的。

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