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Effect of Preheated Top Gas and Air on Blast Furnace Top Gas Combustion

机译:预热炉顶煤气和空气对高炉炉顶煤气燃烧的影响

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The coke consumption in blast furnaces (BF), directly related to the energy consumption and CO_(2) emission from BF, is reduced with the increase of hot blast temperature. To establish the flame temperature of more than the blast furnace gas (BFG) adiabatic flame temperature of 1587 K by using only BFG without any additional high calorific value gases such as coke oven gas, the effect of preheating of BFG and/or air on the BFG combustion temperature was investigated based on thermodynamic heat balance and the computational fluid dynamic (CFD) simulations. Thermodynamic evaluation and CFD simulated results showed that air preheating was not effective to raise the BFG combustion temperature compared with BFG preheating or simultaneous preheating of air and BFG at the same preheating temperature. The less efficiency of air preheating was explained based on the small heat content of preheated air. The blast temperature of 1700 K was obtained without adding high calorific value gases by preheating only BFG to 873 K or simultaneous preheating both BFG and air to 700 K. Compared with air or simultaneous preheating of air and BFG, BFG preheating will be a suitable approach to increase BFG combustion temperature. This is not only because the supply of heat content to the combustion zone, but also the enhanced mixing introduced by the large inlet gas velocity difference between air and BFG promotes rapid CO burn-up.
机译:随着热风温度的升高,高炉中的焦炭消耗与高炉的能耗和CO_(2)排放直接相关。通过仅使用高炉煤气而不使用任何其他高热值气体(如焦炉煤气)来建立高于高炉煤气(BFG)绝热火焰温度1587 K的火焰温度,高炉煤气和/或空气的预热对炉膛的影响基于热力学热平衡和计算流体动力学(CFD)模拟,研究了高炉煤气的燃烧温度。热力学评估和CFD模拟结果表明,与BFG预热或在相同预热温度下同时预热空气和BFG相比,空气预热无法有效提高BFG燃烧温度。空气预热效率较低的原因是预热空气的热量少。通过仅将BFG预热至873 K或同时将BFG和空气预热至700 K,无需添加高热值气体即可获得1700 K的鼓风温度。与空气或同时将空气和BFG预热相比,BFG预热将是一种合适的方法以提高高炉煤气的燃烧温度。这不仅是因为向燃烧区提供热量,而且由于空气和BFG之间较大的进气速度差引入的增强混合作用会促进CO快速燃烧。

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