炼钢 ›› 2020, Vol. 36 ›› Issue (6): 30-38.

• 炉外精炼 • 上一篇    下一篇

喷吹气泡运动行为及液面流动特性的试验与模拟

柳子豪1,王兴东1,欧阳德刚2,刘源泂1   

  1. (1. 武汉科技大学 冶金装备及其控制教育部重点实验室,湖北 武汉 430081;
    2. 宝山钢铁股份有限公司 中央研究院,湖北 武汉 430080)

  • 出版日期:2020-12-05 发布日期:2020-12-04

Experimental and simulation of blowing bubble motion and liquid surface flow characteristics
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  • Online:2020-12-05 Published:2020-12-04

摘要: 设计了一套浸没式顶吹试验装置对水、液压油和甘油中气泡运动形态进行追踪。分别研究了浸没式顶吹的不同喷吹流量(0.5、1.0、1.5、2.0 m3/h)、喷管不同浸入深度(130、200、270、340 mm)工况下,利用VOF模型对液体中气泡的形变、运动及液面隆起高度特性进行了分析,数值模拟与试验结果吻合良好。结果表明:不同液体黏度造成液面波动程度差异显著,随喷吹流量和浸入深度增大,液面隆起高度增大,且三种液体中水的隆起高度最大,浸入深度较喷吹流量的影响更大;相同喷吹条件下,水、液压油和甘油的液面流动速率依次减小,甘油中参考速度增幅最明显,但喷吹稳定时间增幅最小。


关键词: 浸没式顶吹, 气泡, 液体黏度, 液面流动

Abstract: An immersion top blowing experimental device was designed to trace the movement of bubbles in water, hydraulic oil and glycerin. The bubble deformation, motion characteristics of the bubbles and the rising height of the liquid surface were studied under different gas flow rates (0.5,1.0,1.5,2.0 m3/h) and nozzle immersion depths (130,200,270,340 mm). The VOF model was used to analyze the deformation, movement and bulge height characteristics of bubbles in liquid. The numerical simulation results were in agreement with experiment. The results show that the fluctuation degree of liquid surface caused by different liquid viscosity is significantly different. With the increase of gas flow rate and immersion depth, the liquid surface bulge height increases, and the bulge height of water in the three kinds of liquid is the largest, and the immersion depth has greater influence than the gas flow rate. Under the same injection conditions, the liquid surface flow velocity of water ,hydraulic oil and glycerin decrease in turn, and the reference velocity of glycerin increases the most obviously, but the injection stability time increases the last.


Key words: immersion top blowing, bubble, viscosity of the liquid, flow-field of liquid surface