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氧气转炉煤气全干法显热回收系统中CO爆燃与防爆研究

魏小林,李腾,陈晴晴,刘迪,王曜,吴东垠,李博,张良

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魏小林, 李腾, 陈晴晴, 刘迪, 王曜, 吴东垠, 李博, 张良. 氧气转炉煤气全干法显热回收系统中CO爆燃与防爆研究. 力学学报, 2023, 55(12): 2796-2806 doi: 10.6052/0459-1879-23-418
引用本文: 魏小林, 李腾, 陈晴晴, 刘迪, 王曜, 吴东垠, 李博, 张良. 氧气转炉煤气全干法显热回收系统中CO爆燃与防爆研究. 力学学报, 2023, 55(12): 2796-2806doi:10.6052/0459-1879-23-418
Wei Xiaolin, Li Teng, Chen Qingqing, Liu Di, Wang Yao, Wu Dongyin, Li Bo, Zhang Liang. Research on CO deflagration and explosion prevention in the all-dry process of gas sensible heat recovery for basic oxygen furnace. Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(12): 2796-2806 doi: 10.6052/0459-1879-23-418
Citation: Wei Xiaolin, Li Teng, Chen Qingqing, Liu Di, Wang Yao, Wu Dongyin, Li Bo, Zhang Liang. Research on CO deflagration and explosion prevention in the all-dry process of gas sensible heat recovery for basic oxygen furnace.Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(12): 2796-2806doi:10.6052/0459-1879-23-418

氧气转炉煤气全干法显热回收系统中CO爆燃与防爆研究

doi:10.6052/0459-1879-23-418
基金项目:中国科学院战略性先导A类专项资助项目(XDA29020503)
详细信息
    通讯作者:

    魏小林, 研究员, 主要研究方向为燃烧学. E-mail:xlwei@imech.ac.cn

  • 中图分类号:TK16

RESEARCH ON CO DEFLAGRATION AND EXPLOSION PREVENTION IN THE ALL-DRY PROCESS OF GAS SENSIBLE HEAT RECOVERY FOR BASIC OXYGEN FURNACE

  • 摘要:氧气转炉煤气一般在850 °C左右时采用喷水/水雾法降温除尘, 导致煤气50%的显热被浪费. 为了充分利用转炉炼钢过程中富含CO煤气的余热资源, 新方法取消了喷水工艺, 采用转炉煤气全干法显热回收系统, 但是该技术在转炉煤气前烧与后烧阶段存在煤气爆炸的风险. 针对转炉全干法系统的安全稳定运行需求, 通过实验和理论计算研究了CO当量比、混合气初始温度和含水量等因素对CO爆燃特性的影响. 结果表明: CO爆燃的最大压力和火焰速度随着混合气体中CO当量比的减小呈现减少的趋势, 但当CO当量比小于0.368时, 则对火焰速度的影响不大. 在实验CO当量比范围内, 爆燃压力最大值为0.65 MPa, 最大爆燃速度约为750 m/s; 混合气体初始温度升高导致爆燃过程中产生的最大爆燃压力降低, 与此同时火焰速度会相对增加, 进而影响火焰传播时间. 含水量增加会导致CO爆燃的最大爆燃压力的增加, 但含水量到达0.463%后继续增大则对最大爆燃压力影响不大; 最后, 通过分析CO爆燃特性和实际生产过程, 提出了燃烧控制与强化以及煤气爆炸遏制等防爆方法和技术, 从而有效降低爆燃带来的损失.

  • 图 1实验系统流程图

    1. variable frequency roots blower, 2. barometer, 3. ball valve, 4. mass flow meter, 5. ball valve, 6. ball valve, 7. water tank, 8. temperature and humidity measurement port, 9. electric heater, 10. thermocouple, 11. igniter, 12. pressure sensor, 13. silencer, 14. flame sensor, 15. mass flow meter, 16. electromagnetic valve, 17. gas cylinder, 18. control and signal acquisition station

    Figure 1.Flow chart of experimental system

    图 2计算域示意图

    Figure 2.Schematic of the computational domain

    图 3CO当量比对爆燃压力的影响(实验结果)

    Figure 3.Effect of different CO mixture proportion on deflagration pressure (experimental results)

    图 5CO当量比对火焰速度的影响(数值结果)

    Figure 5.Effect of different CO mixture proportion on flame speed (simulation results)

    图 4CO当量比对爆燃压力的影响(数值结果)

    Figure 4.Effect of different CO mixture proportion on deflagration pressure (simulation results)

    图 6混合气体初始温度对爆燃压力的影响(实验结果)

    Figure 6.The effect of mixed gas initial temperature on deflagration pressure (experimental results)

    图 7混合气体初始温度对爆燃压力的影响(数值结果)

    Figure 7.The effect of mixed gas initial temperature on deflagration pressure (simulation results)

    图 8混合气体初始温度对火焰传播速度的影响(数值结果)

    Figure 8.The effect of mixed gas initial temperature on flame speed (simulation results)

    图 9火焰前沿位置随时间变化图(数值结果)

    Figure 9.The flame front position with time (simulation results)

    图 10水含量对爆燃的压力的影响(实验结果)

    Figure 10.The influence of different mixture gas temperature on deflagration pressure (experimental results)

    图 11混合气体当量比对爆燃压力的影响

    Figure 11.CO explosion pressure at different equivalent ratios

    图 12不同初温CO混合气体与爆炸压力

    Figure 12.Different initial temperature mixing gas and explosion pressure

    图 13转炉烟气成分变化的实测数据

    Figure 13.Measured data of changes in converter flue gas composition

    图 14爆炸过程参数变化图

    Figure 14.Parameter variation diagram of explosion process

    表 1工况表

    Table 1.Operating conditions

    NO T/K Gas flow/( Nm3·h−1) CO equivalence ratioΦ
    CO volume concentration/% Water concentration/%
    air CO
    1 368 28 8.2 0.697 22.7 0.329
    2 368 33 8.2 0.591 19.9 0.329
    3 368 38 8.2 0.514 17.7 0.329
    4 368 43 8.2 0.454 16.0 0.329
    5 368 48 8.2 0.407 14.6 0.329
    6 368 53 8.2 0.368 13.4 0.329
    7 368 56 8.2 0.350 12.8 0.329
    8 368 59 8.2 0.331 12.2 0.329
    9 342 28 8.2 0.697 22.7 0.329
    10 440 28 8.2 0.697 22.7 0.329
    11 503 28 8.2 0.697 22.7 0.329
    12 538 28 8.2 0.697 22.7 0.329
    13 573 28 8.2 0.697 22.7 0.329
    下载: 导出CSV

    表 2不同温度下各管段火焰传播时间

    Table 2.Flame propagation time of each pipe section at different initial temperatures

    Temperature/K Smooth
    section/ms
    Obstacle
    section/ms
    Total time/ms
    342 145.15 152.10 6.95
    368 140.46 146.77 6.32
    440 116.40 122.30 5.90
    480 97.50 102.85 5.35
    503 85.50 90.00 4.50
    下载: 导出CSV

    表 3实际转炉放散煤气典型成分[29]

    Table 3.Main gas composition of actual converter flue gas[29]

    Component CO CO2 H2 N2
    Volume concentration/% 30 30 1 39
    下载: 导出CSV
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  • 收稿日期:2023-09-03
  • 录用日期:2023-11-10
  • 网络出版日期:2023-11-11
  • 刊出日期:2023-12-22

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