Numerical Prediction on the Flow Field of Molten Steel and the Trajectory of Inclusion in Continuous

来源 :Journal of Iron and Steel Research(International) | 被引量 : 0次 | 上传用户:jqh_0727
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Through coupling electromagnetic field equations with turbulent flow equations,the numerical prediction has been conducted on the flow field of molten steel and the trajectory of inclusion particle in the continuous casting mold effected by electromagnetic field.The difference between the maximum and the minimum of the shear stress on mold wall is used to scale the impingement strength of molten steel discharged from immersed nozzle to the solidifying shell on the narrow wall of mold.The flow field of molten steel in the mold is changed greatly and the impingement strength of the jet is reduced while electromagnetic field is applied.It is found that the successful control of flow field depends on the current and location of coil.At the same time,the new floating paths of inclusion particles are formed and the upward particles that are far away from the solidifying zone on the narrow wall of mold change their moving directions with the change of flow field,so that the particles can avoid being entrapped by the solidifying shell. Through coupling electromagnetic field equations with turbulent flow equations, the numerical prediction has been conducted on the flow field of molten steel and the trajectory of inclusion particle in the continuous casting mold effected by electromagnetic field. The difference between the maximum and the minimum of the shear stress on mold wall is used to scale the impingement strength of molten steel discharged from immersed nozzle to the solidifying shell on the narrow wall of mold. flow field of molten steel in the mold is changed greatly and the impingement strength of the jet is reduced while electromagnetic field is applied. It is found that the successful control of flow field depends on the current and location of the coil. At the same time, the new floating paths of inclusion particles are formed and the upward particles that are far away from the solidifying zone on the narrow wall of mold change their moving directions with the change of flow field, so that the particles can avoi d being entrapped by the solidifying shell.
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