炼钢 ›› 2026, Vol. 42 ›› Issue (4): 43-48.

• 炉外精炼 • 上一篇    下一篇

CO2参与超低碳Fe-C合金反应规律研究

孟  鑫1,2,胡长庆1,李晨晓1,2,冯子康1,2   

  1. 1.华北理工大学 冶金与能源学院,河北 唐山 063210;
    2.唐山市特种冶金及材料制备重点实验室,河北 唐山 063210
  • 出版日期:2026-08-05 发布日期:2026-07-21

Study on the reaction mechanism of ultra-low carbon Fe-C alloys involving CO2

  • Online:2026-08-05 Published:2026-07-21

摘要: 钢铁工业作为高碳排放行业,其CO2排放量约占全球总量7%,在“双碳”的大背景下,亟须发展碳减排与CO2资源化利用技术以促进行业绿色转型。精炼作为炼钢工序中的重要一环,目前CO2在该环节的应用仍较为有限,尤其是在常压条件下对超低碳Fe-C合金体系的研究尚不充分。通过FactSage热力学计算与高温热态试验方法,系统研究了CO2参与超低碳Fe-C合金熔体的反应机理,重点分析了CO2喷吹流量、温度及喷吹时间对熔体碳含量演变的影响。结果表明,CO2喷吹会引起熔体增碳,增碳速率随流量和温度的升高而显著提高,CO2流量从40 mL/min增至80 mL/min时,增碳速率由0.001 81%/min提高至0.003 19%/min,增幅达76%;长时间喷吹后熔体碳质量分数最终稳定在0.11%左右,达到动态平衡。该研究为CO2在超低碳钢精炼中的工业应用提供了理论依据与工艺参数支持。

关键词: 炼钢:精炼, CO2资源化利用, 脱碳, 热力学

Abstract: As a high-carbon emitting sector, the steel industry accounts for approximately 7% of global CO2 emissions. Against the backdrop of the “dual carbon” goals, there is an urgent need to develop carbon reduction and CO2 resource utilization technologies to promote the industry's green transformation. Refining, as a critical stage in the steelmaking process, currently has limited application of CO2, particularly in studies of ultra-low-carbon Fe-C alloy systems under atmospheric pressure conditions. The reaction mechanism of CO2 in ultra-low-carbon Fe-C alloy melt was systematically studied using FactSage thermodynamic calculations and high-temperature thermal experiments, with a focus on analyzing the effects of CO2 injection flow rate, temperature, and injection duration on the evolution of carbon content in the melt. The results indicated that CO2 injection caused carbon enrichment in the melt, with the enrichment rate significantly increasing with higher flow rates and temperatures. When the CO2 flow rate increased from 40 mL/min to 80 mL/min, the enrichment rate rose from 0.001 81 %/min to 0.003 19 %/min, representing a 76% increase. After prolonged injection, the carbon mass fraction eventually stabilized at around 0.11% in the melt, reaching a dynamic equilibrium. This study provides theoretical basis and process parameter support for the industrial application of CO2 in the refining of ultra-low-carbon steel.

Key words: steelmaking, refining, CO2 resource utilization, decarbonization, thermodynamics