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Numerical Modeling of Open-Eye Formation and Mixing Time in Argon Stirred Industrial Ladle

机译:氩气搅拌工业钢包中睁眼形成和混合时间的数值模拟

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摘要

In secondary metallurgy, argon gas stirring and alloying of elements are very important in determining the quality of steel. Argon gas is injected through the nozzle located at the bottom of the ladle into the molten steel bath; this gas breaks up into gas bubbles, rising upwards and breaking the slag layer at high gas flow rates, creating an open-eye. Alloy elements are added to the molten steel through the open-eye to attain the desired steel composition. In this work, experiments were conducted to investigate the effect of argon gas flow rate on the open-eye size and mixing time. An Eulerian volume of fluid (VOF) approach was employed to simulate the argon/steel/slag interface in the ladle, while a species transport model was used to calculate the mixing time of the nickel alloy. The simulation results showed that the time-averaged value of the open-eye area changed from 0.66 to 2.36 m2 when the flow rate of argon was varied from 100 to 500 NL/min. The mixing time (95% criterion) of tracer addition into the metal bath decreased from 139 s to 96 s, when the argon flow rate was increased from 100 to 500 NL/min. The model validation was verified by comparing with measured experimental results.
机译:在二级冶金中,氩气搅拌和元素的合金化在确定钢的质量方面非常重要。通过位于钢包底部的喷嘴注入氩气进入钢水浴池;这种气体突破到气泡,在高气流速率下向上升起并破坏渣层,露出张开眼睛。通过张开眼睛将合金元件添加到钢水中以获得所需的钢组合物。在这项工作中,进行了实验以研究氩气流速对睁眼尺寸和混合时间的影响。采用欧拉流体(VOF)方法来模拟钢包中的氩/钢/渣界面,而物种运输模型用于计算镍合金的混合时间。仿真结果表明,当氩气的流速从100至500nl / min变化时,睁眼区域的时平值从0.66到2.36m 2变化。当氩流量从100-500nl / min增加时,将示踪剂添加到金属浴中的示踪剂的混合时间(95%标准)从139秒降低。通过与测量的实验结果进行比较,验证了模型验证。

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