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单颗粒熔渣水淬过程相变特性数值模拟

李成博 楼国锋 冯鹏博 肖永力

李成博, 楼国锋, 冯鹏博, 肖永力. 单颗粒熔渣水淬过程相变特性数值模拟[J]. 钢铁钒钛, 2026, 47(4): 173-181. doi: 10.7513/j.issn.1004-7638.2026.04.020
引用本文: 李成博, 楼国锋, 冯鹏博, 肖永力. 单颗粒熔渣水淬过程相变特性数值模拟[J]. 钢铁钒钛, 2026, 47(4): 173-181. doi: 10.7513/j.issn.1004-7638.2026.04.020
LI Chengbo, LOU Guofeng, FENG Pengbo, XIAO Yongli. Numerical simulation on phase transformation characteristics during water quenching process of single slag particle[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(4): 173-181. doi: 10.7513/j.issn.1004-7638.2026.04.020
Citation: LI Chengbo, LOU Guofeng, FENG Pengbo, XIAO Yongli. Numerical simulation on phase transformation characteristics during water quenching process of single slag particle[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(4): 173-181. doi: 10.7513/j.issn.1004-7638.2026.04.020

单颗粒熔渣水淬过程相变特性数值模拟

doi: 10.7513/j.issn.1004-7638.2026.04.020
基金项目: 河北省重点研发计划项目(22373805D)。
详细信息
    作者简介:

    李成博,2002年出生,男,河北邢台人,硕士研究生,主要从事高炉渣粒化过程研究,E-mail:15532990935@163.com

    通讯作者:

    楼国锋,1969年出生,男,博士,副教授,主要从事高炉渣处理工艺和余热回收研究, E-mail:lgf@ustb.edu.cn

  • 中图分类号: TF046

Numerical simulation on phase transformation characteristics during water quenching process of single slag particle

  • 摘要: 为明确水淬过程中熔渣的相变机理,优化工艺参数,研究了熔渣水淬中的相变过程。首先,根据熔渣触水瞬间形成的蒸汽薄膜结合流场特性,构建了含蒸汽薄膜的熔渣模型;随后,以粒径3 mm、水速5 m/s、温度1300 ℃为基础工况,分析了熔渣的温度场变化、相变进程,以及不同位置的温度差异;在此基础上,分别探究了流速对熔渣换热过程的影响,以及相同水流速度下不同粒径熔渣的传热特性,并对4、5 mm熔渣冷却下的最佳流速进行了补充验证。结果表明:流速对熔渣换热存在阈值效应,超过5 m/s后影响趋于平缓;4、5 mm熔渣在5 m/s水流速度下无法满足冷却要求,而10 m/s水流速度可实现冷却。最终确定最优方案,研究为水淬熔渣工艺的参数优化提供了理论依据与数据支撑。
  • 图  1  1300 ℃熔渣触水瞬间蒸汽薄膜厚度

    Figure  1.  Steam film thickness of 1300 ℃ molten slag at the moment of water contact

    图  2  水流冲击熔渣时局部流态特征

    Figure  2.  Local flow pattern characteristics of water impingement on molten slag

    图  3  含汽化层的熔渣颗粒几何模型

    Figure  3.  Geometric model of molten slag particles with vaporization layer

    图  4  水淬区域模型

    Figure  4.  Water quenching zone model

    图  5  网格无关性验证

    Figure  5.  Mesh independence validation

    图  6  模型与文献仿真结果的对比验证

    Figure  6.  Comparison and validation of the model with literature simulation results

    图  7  基础工况下熔渣水淬温度场演变过程云图

    Figure  7.  Evolution process of temperature field of molten slag during water quenching under basic working conditions

    图  8  基础工况下熔渣水淬相变过程云图

    Figure  8.  Phase transition process of molten slag during water quenching under basic working conditions

    图  9  基础工况下熔渣不同位置温度变化曲线

    Figure  9.  Temperature variation curves of molten slag at different positions under basic working conditions

    图  10  不同水流速度下熔渣温度变化曲线对比

    Figure  10.  Comparison of temperature variation curves of molten slag under different water flow velocities

    图  11  不同水流速度下熔渣水淬温度场对比云图

    Figure  11.  Comparison cloud map of temperature field of molten slag during water quenching under different water flow velocities

    图  12  不同粒径熔渣温度变化曲线对比

    Figure  12.  Comparison of temperature variation curves of molten slag with different particle sizes

    图  13  不同粒径熔渣水淬温度场对比云图

    Figure  13.  Comparison cloud map of temperature field of molten slag during water quenching with different particle sizes

    图  14  4~5 mm熔渣在不同水流速度下的温度变化曲线对比

    Figure  14.  Comparison of temperature variation curves of 4~5 mm molten slag under different water flow velocities

    图  15  粒径-水速匹配关系及冷却效果验证曲线

    Figure  15.  Comparison curve of particle size-water velocity matching relationship and cooling effect verification

    表  1  模拟计算中物性参数

    Table  1.   Physical property parameters in simulation calculation

    Species Temperature/℃ Velocity/(m·s−1) Density/(kg·m−3)
    Molten slag
    particles
    1300 0 2840
    Water 25 1/3/5/7/10 1000
    Air 25 0 1.2
    Water vapor 1300 0 0.6
    下载: 导出CSV
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  • 收稿日期:  2026-01-04
  • 录用日期:  2026-02-09
  • 修回日期:  2026-02-04
  • 刊出日期:  2026-08-31

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