Pig Iron Production (Post Blast Furnace Era)

Gawie Lötter, A. van Niekerk, G. Farmer
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引用次数: 2

Abstract

It has become an environmental drive world-wide to reduce the production of Carbon Dioxide (CO2) in the steelmaking process. Alternative reductants other than coal-based materials has been found to be a true replacement with resultant major reduction in CO2, by using “cleaner” reductants like natural gas. Coke consumption in the Blast Furnace requires coke to produce pig iron for which alternative reductant routes are now sought. It has been proven that natural gas is a suitable reductant in the production of Direct Reduced Iron (DRI) in a shaft furnace or a Rotary Hearth Furnace (RHF) process. This DRI can then be used as raw material for pig-iron production in a closed Submerged-Arc Furnace (SAF), (being a circular AC Furnace, DC Furnace, or a large 6-in-line Rectangular Furnace), where a reduced amount of reductant is required for final reduction and introducing additional carbon required for the subsequent steelmaking processes. The SAF also acts as a slag modifier which adds value to this traditional waste product. Instead of producing aggregate, high quality granulated slag is produced which can be used as a clinker replacement material in the classical cement production. This contributes to the reduction of CO2 gasses by reducing traditional cement fabrication. Fossil-based reductant are still required through this process route, but the sum equates to a reduction of fossil-based reductants. The use of renewable energy as a source of electricity further adds to the reduction of emissions adding even more value to the whole production chain. A natural progression from this process step would be the introduction of environmentally friendly Hydrogen (H2) in the future.
生铁生产(后高炉时代)
减少炼钢过程中二氧化碳的产生已成为世界范围内的环保运动。除煤基材料以外的其他还原剂已经被发现是一种真正的替代品,通过使用“更清洁”的还原剂,如天然气,可以大大减少二氧化碳的排放。高炉中的焦炭消耗需要焦炭来生产生铁,现在正在寻找替代还原剂路线。在竖炉或转底炉生产直接还原铁(DRI)过程中,天然气是一种合适的还原剂。然后,这种DRI可以用作封闭式埋弧炉(SAF)(圆形交流炉、直流炉或大型6列矩形炉)中生铁生产的原料,其中需要减少还原剂的量以进行最终还原,并引入后续炼钢过程所需的额外碳。SAF还可以作为矿渣改性剂,为这种传统废物增加价值。生产出高质量的矿渣代替骨料,可作为传统水泥生产中的熟料替代材料。这有助于减少二氧化碳气体通过减少传统的水泥制造。通过该工艺路线仍然需要化石基还原剂,但总和相当于化石基还原剂的减少。使用可再生能源作为电力来源进一步减少了排放,为整个生产链增加了更多的价值。这一过程的自然进展将是在未来引入环保的氢(H2)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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