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Simultaneously Overdeveloped Central and Peripheral Gas Flows of a Blast Furnace

机译:高炉的同时过度发展的中央和外围气流

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The gas flow distribution in the radial direction of the blast furnace is of vital importance for its stable and economical operation.In this study, an experimental apparatus, simulating bell-less top charging, was built on a 1/15 scale of 5800 m~(3) blast furnace in Shasteel. Experimental results shows that the charging mode designed for the simultaneously overdeveloped central and peripheral gas flow leads to a thin coke slit in the intermediate part and a large center coke column in the model furnace. The intermediate coke slit is more thinner under higher U/U_(mf), larger O/C and deeper stock line with the existence of coke collapse; and in the radial direction, the largest fluctuation of gas velocity exists at the center-adjacent point, the interface of center coke column and ore layer, where the small particle size coke gets fluidized, which coincides with the analysis of above-burden temperature fluctuation and observation from top camera during blast furnace operation. In combination with the actual online operation data, it is further revealed that the burden layer with locally-narrowed coke slit at the cohesive zone hinders the smooth gas flowing, resulting in a big fluctuation of gas flow at the bosh part and an unsmooth burden descending.Optimization of charging pattern was done in the cold model and applied to the 5800 m~(3) blast furnace. As a conclusion, optimization of coke charging mode to increase the intermediate thin part of coke layer is the most effective way to pursue the stable operation with high productivity.
机译:高炉径向的气流分布对其稳定和经济的运行至关重要。在本研究中,以1/15的比例(5800 m〜)建立了模拟无钟炉顶装料的实验装置。 (3)沙钢高炉。实验结果表明,为同时过大的中心气流和外围气流设计的装料方式会导致模型炉中间部分的焦炭细缝和中心焦炭塔的粗大。在较高的U / U_(mf),较大的O / C和较深的坯料线下,随着焦炭的塌陷,中间焦炭缝隙更薄。在径向方向上,气体速度的最大波动存在于中心焦点与中心焦炭塔与矿层的界面处,其中小粒径焦炭被流化,这与上负荷温度波动的分析相吻合。并在高炉运行期间从顶部摄像机进行观察。结合实际的在线运行数据,进一步揭示出在粘性区内焦窄的局部狭缝的负荷层阻碍了气流的顺畅流动,导致波什部分的气流波动较大,负荷下降不平稳在冷模型中对装料方式进行了优化,并将其应用于5800 m〜(3)高炉。综上所述,优化焦炭装料方式以增加焦炭层的中间薄层是实现高产量稳定运行的最有效途径。

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