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Injection of Pulverized Coal and Natural Gas into Blast Furnaces for Iron-making: Lance Positioning and Design

机译:向高炉炼铁中注入煤粉和天然气的喷枪定位和设计

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摘要

Injecting pulverized coal and natural gas into blast furnaces for ironmaking decreases metallurgical coke requirements, providing a net decrease in the CO_2 emissions and in many cases, operating costs associated with iron production. Ideally, the fuel would enter the raceway partially reacted and the injection would not have negative impacts on the equipment or process. Success in achieving this outcome is sensitive to the details of how the injection is implemented. Given this sensitivity and that it is difficult to make accurate, detailed observations in blast furnaces or devise representative pilot-scale experiments, computational fluid dynamics (CFD) has become a useful and complementary tool for the analysis and design of fuel injection methodologies. This study uses CFD to examine the interaction of the blast air and fuel flows in the blowpipe and tuyere nozzle for different fuel injection strategies. Important operating issues such as initiation of partial combustion and heat loads on the tuyere nozzle are examined. It was found that two key fuel injection strategies developed separately for coal and natural gas can be combined effectively in a single combined fuel lance that leverages a bluff body effect to help coal dispersion and has radial nozzles to improve natural gas combustion. The bluff body effect is a simple process whereby the interaction between the blast air flow and a thick-walled lance creates a wake that can impart coal dispersion without the complexity or costs of adding an auxiliary dispersive fluid, such as an annular swirling flow of air. The performance of this combined fuel lance is compared against two configurations for separate fuel lances.
机译:将粉煤和天然气注入高炉进行炼铁可以降低冶金焦的需求,从而净减少CO_2排放,在许多情况下,还可以降低与铁生产相关的运营成本。理想情况下,燃料将以部分反应进入燃烧室,并且喷射不会对设备或过程产生负面影响。成功实现此结果对如何实施注射的细节很敏感。鉴于这种敏感性,并且难以在高炉中进行准确,详细的观察或进行有代表性的中试规模实验,计算流体力学(CFD)已成为分析和设计燃料喷射方法的有用和补充工具。这项研究使用CFD检验了不同燃料喷射策略下鼓风管和风口喷嘴中的鼓风和燃料流之间的相互作用。检查了重要的操作问题,例如开始部分燃烧和风口喷嘴上的热负荷。人们发现,针对煤炭和天然气分别开发的两种关键燃料喷射策略可以有效地组合到一个组合的燃料喷枪中,该燃料喷枪利用钝体效应来帮助煤扩散,并具有径向喷嘴以改善天然气燃烧。虚张声势的身体效应是一个简单的过程,通过该过程,鼓风气流与厚壁喷枪之间的相互作用产生了可以使煤分散的尾流,而无需添加辅助分散流体的复杂性或成本,例如空气的环形旋流。将这种组合式燃油喷枪的性能与单独燃油喷枪的两种配置进行了比较。

著录项

  • 来源
    《ISIJ international》 |2015年第7期|1377-1383|共7页
  • 作者单位

    Natural Resources Canada, CanmetENERGY, 1 Haanel Drive, Ottawa, Ontario, K1A 1M1 Canada;

    Natural Resources Canada, CanmetENERGY, 1 Haanel Drive, Ottawa, Ontario, K1A 1M1 Canada;

    U. S. Steel Canada Inc., 386 Wilcox Street, Hamilton, Ontario, L8N 3T1 Canada;

    Union Gas Ltd., 50 Keil Drive North, Chatham, Ontario, N7M 5M1 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    blast furnace; coal injection; gas injection; combustion; modelling; CFD;

    机译:高炉;喷煤气体注入燃烧;造型;差价合约;
  • 入库时间 2022-08-17 23:59:07

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