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Real-Time, Optical Measurement of Gas Temperature and Particle Emissivity in a Full-Scale Steelmaking Furnace

机译:大型炼钢炉中气体温度和颗粒发射率的实时光学测量

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摘要

This article summarizes the successful implementation of a novel technique for measuring gas temperature and particle emissivity in real time at the mouth of a full-scale basic oxygen furnace (BOF). Both the technique and the data presented here may be useful to both process-control professionals interested in energy balances and computational fluid dynamic (CFD) modelers seeking in-situ data for their specific radiation heat-transfer submodels and temperature-boundary conditions. A description of the sensor, the retrieval algorithms, and the assumptions associated with each is included. The technique is based on midinfrared-emission spectroscopy. Results from a campaign spanning seven heats at a 168-tonne converter with data points every 2 seconds have been reported. During decarburization, the average off-gas temperature and particle emissivity were 1471 K and 0.55, respectively, for low-carbon heats (aim carbon <0.08 pct), and 1517 K and 0.36, respectively, for high-carbon heats (aim carbon >0.30 pct). Practical issues, validation of the assumptions, and measurement uncertainty are discussed. This technique may be applicable to other metallurgical batch processes in which large columns of high-temperature off-gases containing CO, CO2, and particles are present.
机译:本文总结了一种新型技术的成功实施,该技术可在全尺寸碱性氧气炉(BOF)的口中实时测量气体温度和颗粒发射率。此处介绍的技术和数据对于对能量平衡感兴趣的过程控制专业人员和为特定辐射传热子模型和温度边界条件寻求现场数据的计算流体力学(CFD)建模人员都可能有用。包括对传感器的描述,检索算法以及与之相关的假设。该技术基于中红外发射光谱。据报道,一次运动的结果是在168吨的转炉上进行了7次加热,每2秒就有数据点。在脱碳过程中,低碳热(目标碳<0.08 pct)的平均废气温度和颗粒发射率分别为1471 K和0.55,高碳热(目标碳>平均值)分别为1517 K和0.36。 0.30 pct)。讨论了实际问题,假设的验证以及测量的不确定性。该技术可能适用于存在大量含有CO,CO2 和颗粒的高温废气的其他冶金间歇工艺。

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  • 来源
    《Metallurgical and Materials Transactions B》 |2009年第2期|158-168|共11页
  • 作者单位

    Department of Mechanical and Industrial Engineering University of Toronto Toronto ON Canada;

    Department of Mechanical and Industrial Engineering University of Toronto Toronto ON Canada;

    Department of Mechanical and Industrial Engineering University of Toronto Toronto ON Canada;

    Department of Mechanical and Industrial Engineering University of Toronto Toronto ON Canada;

    Department of Mechanical and Industrial Engineering University of Toronto Toronto ON Canada;

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