钢水注氩过程中鼓泡向喷射的转变

D. Medina, Joan Reyes, M. Barrón
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引用次数: 1

摘要

在冶金过程中,鼓泡到喷射的转变是最重要的,因为流动形式会影响精炼速度、耐火材料的侵蚀和喷射喷嘴的堵塞。研究了亚音速底喷氩气在钢液中鼓泡向喷射的转变。采用计算流体力学方法,数值分析了钢液高度、喷射速度、喷嘴直径和钢液粘度对射流高度和鼓泡向射流过渡的影响。考虑了5、25、50、100和150 m/s 5种亚音速氩气注入速度。考虑了金属高度的三个值,即1.5 m、2 m和2.5 m。此外,还考虑了三个喷嘴直径值:0.001 m、0.005 m和0.01 m。最后,假定钢水粘度为0.0067、0.1和1 kg/(m·s)。结果表明,氩气-钢液体系在喷射速度小于25 m/s时由鼓泡向喷射转变;在考虑的黏度范围内,钢液黏度对喷射高度和鼓泡向喷射转变的影响不显著。由于射流在亚音速下的不稳定性,出现了第二次过渡,即喷射到鼓泡。
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Bubbling to Jetting Transition during Argon Injection in Molten Steel
Bubbling to Jetting Transition is of the outmost importance in metallurgical processes given that the flow regime influences the refining rates, the refractory erosion, and the blockage of injection nozzles. Bubbling to jetting transition during subsonic bottom injection of argon in molten steel is studied here. The effect of the molten steel height, the injection velocity, the nozzle diameter, and the molten steel viscosity on the jet height and the bubbling to jetting transition is numerically analyzed using Computational Fluid Dynamics. Five subsonic argon injection velocities are considered: 5, 25, 50, 100 and 150 m/s. Three values of the metal height are taken into account, namely 1.5 m, 2 m and 2.5 m. Besides, three values of the nozzle diameters are considered: 0.001 m, 0.005 m and 0.01 m. Finally, three values of the molten steel viscosity are supposed: 0.0067, 0.1 and 1 kg/(m·s). It is observed that for the argon-molten steel system, the bubbling to jetting transition occurs for an injection velocity less than 25 m/s and that for the range of viscosities considered, the molten steel viscosity does not exert significant influence on the jet height and the bubbling to jetting transition. Due to the jet instability at subsonic velocities, a second transition, namely jetting to bubbling, is appreciated.
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