炼钢 ›› 2026, Vol. 42 ›› Issue (4): 22-28.

• 转炉及电炉冶炼 • 上一篇    下一篇

三孔底吹电弧炉熔池流动与混匀特性的水模试验与数模研究

牛凯军1,夏云进2,沈  昶1,汪国才1,郭俊波1,徐  飞1,陆  强1   

  1. 1.马鞍山钢铁股份有限公司 技术中心,安徽 马鞍山 243003;
    2.安徽工业大学 冶金工程学院,安徽 马鞍山 243002
  • 出版日期:2026-08-05 发布日期:2026-07-20

Water model experimental and numerical study on the flow and mixing characteristics of molten bath in a three-nozzle bottom blowing electric arc furnace

  • Online:2026-08-05 Published:2026-07-20

摘要: 短流程炼钢是推动我国钢铁工业绿色低碳发展的重要方向,其中电弧炉作为核心装备,其熔池的搅拌效果与冶金效率已成为制约短流程普及的关键瓶颈。结合物理模拟与数值模拟方法,系统研究了三孔底吹电弧炉在不同底吹气体流量及侧底复合吹炼条件下的流动行为与混匀特性。试验采用1∶8的水模模型,设置不同底吹、侧底复合吹炼与流量条件,通过物理模拟探究熔池的混匀特性;同时构建CFD三维模拟模型,分析不同底吹参数下的钢渣界面速度分布。研究结果表明:底吹气孔位置对熔池搅拌和钢渣界面传质具有显著影响,混匀时间随气孔远离中心而增加,而钢渣界面死区面积呈先降后升趋势,最优气孔位置为0.4R~0.5R。在单一底吹条件下,存在最佳底吹流量区间(0.1~0.32 L/min,对应工业尺度20~60 L/min),超过该范围搅拌效率饱和。侧底复吹可形成贯通循环流场,显著提升混匀效率;但随着底吹流量超过0.63 L/min(工业尺度120 L/min),混匀效率反而下降。研究结果可为电弧炉吹炼工艺优化提供理论依据,对提升短流程炼钢效率、降低能耗和碳排放具有重要意义。

关键词: 电弧炉, 底吹搅拌, 气体流量, 喷嘴位置, 混匀时间

Abstract: Short-process steelmaking is a key approach to promoting the green and low-carbon transformation of China’s steel industry. As the core equipment of this route, the electric arc furnace (EAF) is often constrained by limited bath stirring and metallurgical efficiency, which hinders its wider application. In this study, the flow behavior and mixing characteristics of a three-hole bottom-blown EAF under different gas flow rates and combined side-bottom blowing conditions were systematically investigated using both physical and numerical simulations. A 1∶8 scale water model experiment was conducted to examine bath mixing under varying bottom-blowing and side-bottom combined blowing operations, while a three-dimensional CFD model was established to analyze the velocity distribution at the steel-slag interface under different blowing parameters. The results show that the position of the bottom nozzles significantly affects bath stirring and interfacial mass transfer. With increasing the distance from the nozzles to the furnace center, the mixing time increases, while the dead-zone area at the steel-slag interface first decreases and then increases. The optimal nozzle location is 0.4R-0.5R. Under single bottom-blowing conditions, there exists an optimal flow rate range (0.1-0.32 L/min, corresponding to 20-60 L/min at industrial scale), beyond which stirring efficiency saturates. Side-bottom combined blowing can generate a through-circulation flow field and significantly improve mixing efficiency. However, when the bottom-blowing rate exceeds 0.63 L/min (120 L/min at industrial scale), the mixing efficiency declines. These findings provide theoretical guidance for optimizing EAF blowing operations, with important implications for improving the efficiency of short-process steelmaking and reducing energy consumption and carbon emissions.

Key words: electric arc furnace, bottom-blowing stirring, gas flow rate, nozzle position, mixing time