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Simulation for Mass Transfer Kinetics at Slag-Steel Interface during High Al Steel Continuous Casting

机译:高铝钢连续铸造渣-钢界面传质动力学的模拟

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摘要

A series of laboratory-scale experiments were carried out in order to elucidate the relationship between the flow field and slag-steel reaction in mold, which could provide a theoretical fundamental of for controlling the slag-steel reaction by kinetics during high alumina steel continuous casting process. The similarity of slag-steel interface mass transfer behavior between simulated experiment and actual continuous casting process was determined through theoretical derivation, and the mold water model was established. Simultaneously, a mathematical model for predicting the composition of mold slag was established according to the principle of slag-steel reaction, and the predicted results were consistent with the results of slag-steel reaction in an actual continuous casting and laboratory experiments. The effects of mold casting speed, SEN (Submerged Entry Nozzle) outlet angle and submerged depth on slag-steel reaction rate were also investigated by water model. The simulated continuous casting results reflected that the slag-steel reaction rate can be controlled by controlling the mold surface velocity and fluctuation. On the one hand, reducing the mold surface velocity could slow down the replenishment rate of "fresh" molten steel, then the concentration gradient of [Al] between the liquid-steel and slag-steel interface was decreased, leading to a slower reaction rate. On the other hand, weak surface fluctuation could reduce the slag-steel interface area, thus reducing the capacity mass transfer coefficient of interfacial mass transfer, as well as the reaction rate.
机译:进行了一系列实验室规模的实验,以阐明流场与铸型中钢渣反应之间的关系,这可以为高铝钢连铸过程中通过动力学控制钢渣反应提供理论基础。处理。通过理论推导,确定了模拟实验与实际连铸过程钢渣-钢界面传质行为的相似性,建立了结晶器水模型。同时,根据炉渣-钢反应的原理,建立了预测结晶器渣成分的数学模型,其预测结果与实际连铸和实验室实验中炉渣-钢反应的结果相吻合。还通过水模型研究了铸型速度,SEN(浸入式注嘴)出口角度和浸入深度对渣钢反应速率的影响。模拟的连铸结果表明,通过控制结晶器表面速度和波动,可以控制渣钢反应速率。一方面,降低模具表面速度可能会减慢“新鲜”钢水的补给速度,然后降低钢液和渣钢界面之间的[Al]浓度梯度,从而导致反应速率降低。另一方面,弱的表面波动会减小钢渣-钢的界面面积,从而降低界面传质的能力传质系数以及反应速率。

著录项

  • 来源
    《ISIJ international》 |2019年第12期|2256-2263|共8页
  • 作者单位

    Collaborative Innovation Center of Steel Technology University of Science and Technology Beijing Beijing 100083 China Institute of Engineering Technology University of Science and Technology Beijing Beijing 100083 China;

    Institute of Engineering Technology University of Science and Technology Beijing Beijing 100083 China;

    Collaborative Innovation Center of Steel Technology University of Science and Technology Beijing Beijing 100083 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    high Al steel; slag-steel reaction kinetics; mass transfer simulation; AI2O3 content prediction; flow field;

    机译:高铝钢渣钢反应动力学传质模拟AI2O3含量预测;流场;

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