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The mechanism of coking pressure generation I: Effect of high volatile matter coking coal, semi-anthracite and coke breeze on coking pressure and plastic coal layer permeability

机译:焦化压力产生机理Ⅰ:高挥发分焦煤,半无烟煤和焦风对焦化压力和可塑煤层渗透性的影响

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摘要

One of the most important aspects of the cokemaking process is to control and restrain the coking pressure since excessive coking pressure tends to lead to operational problems and oven wall damage. Therefore, in order to understand the mechanism of coking pressure generation, the permeability of the plastic coal layer and the coking pressure for the same single coal and the same blended coal were measured and the relationship between them was investigated. Then the 'inert' (pressure modifier) effect of organic additives such as high volatile matter coking coal, semi-anthracite and coke breeze was studied. The coking pressure peak for box charging with more uniform bulk density distribution was higher than that for top charging. It was found that the coking pressure peaks measured at different institutions (NSC and BHPBilliton) by box charging are nearly the same. The addition of high volatile matter coking coal, semi-anthracite and coke breeze to a low volatile matter, high coking pressure coal greatly increased the plastic layer permeability in laboratory experiments and correspondingly decreased the coking pressure. It was found that, high volatile matter coking coal decreases the coking pressure more than semi-anthracite at the same plastic coal layer permeability, which indicates that the coking pressure depends not only on plastic coal layer permeability but also on other factors. Coking pressure is also affected by the contraction behavior of the coke layer near the oven walls and a large contraction decreases the coal bulk density in the oven center and hence the internal gas pressure in the plastic layer. The effect of contraction on coking pressure needs to be investigated further.
机译:制焦过程最重要的方面之一是控制和限制焦化压力,因为过量的焦化压力往往会导致操作问题和炉壁损坏。因此,为了理解焦化压力的产生机理,对相同的单一煤和相同的混合煤测量了可塑煤层的渗透性和焦化压力,并研究了它们之间的关系。然后研究了有机添加剂(如高挥发分焦煤,半无烟煤和微风)的“惰性”(压力调节剂)作用。具有更均匀的堆积密度分布的箱式装料的焦化压力峰值高于顶部装料的。发现在不同机构(NSC和BHPBilliton)通过箱式装料测得的焦化压力峰值几乎相同。在高挥发分煤中加入高挥发分的焦煤,半无烟煤和焦炭,在实验室实验中,高焦化压力的煤极大地提高了塑料层的渗透性,并相应降低了焦化压力。研究发现,在相同的塑煤层渗透率下,高挥发分焦煤比半无烟煤降低的焦化压力更大,这表明炼焦压力不仅取决于可塑煤层的渗透率,还取决于其他因素。焦炭压力还受到炉壁附近焦炭层的收缩行为的影响,并且大的收缩降低了炉中心的煤体积密度,并因此降低了塑料层中的内部气体压力。收缩对焦化压力的影响需要进一步研究。

著录项

  • 来源
    《Fuel》 |2010年第7期|p.1549-1556|共8页
  • 作者单位

    Nippon Steel Corporation, Environment and Process Technology Center, 20-1, Shintomi, Futtsu, Chiba 293-8511, Japan;

    BHP Billiton Technology, Newcastle Technology Centre, off Vale St. Shortland, NSW 2307, Australia;

    rnNippon Steel Corporation, Environment and Process Technology Center, 20-1, Shintomi, Futtsu, Chiba 293-8511, Japan;

    rnNippon Steel Corporation, Environment and Process Technology Center, 20-1, Shintomi, Futtsu, Chiba 293-8511, Japan;

    rnBHP Billiton Technology, Newcastle Technology Centre, off Vale St. Shortland, NSW 2307, Australia;

    BHP Billiton Mitsubishi Alliance, CPO Box 1389 Brisbane, Qld 4001, Australia;

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

    coking pressure; carbonization; permeability; cokemaking; plastic layer;

    机译:焦化压力碳化渗透性炼焦塑料层;

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