期刊文献+

转炉少渣深脱磷技术工业实践 被引量:1

Industrial practice of deep dephosphorization technology with less slag in converter
原文传递
导出
摘要 在梅钢250 t转炉上进行了脱磷期少渣深脱磷工业实践,研究了冶炼温度、炉渣成分、吹炼制度等参数对脱磷的影响规律。实践表明,转炉冶炼脱磷期结束时适宜的熔池温度为1 370~1 420℃、炉渣碱度为1.3~1.8、渣中FeO含量为18%~28%;合适的吹氧量为总氧气流量的24%~28%、废钢比为12%~16%、底吹孔数在8个以上;改进后,梅钢转炉冶炼脱磷期的平均脱磷率由不足50%提高至63.2%,实现了少渣工艺的稳定运行,2012年至2019年,少渣冶炼比例由0提高至83.7%,吨钢石灰消耗由53.3 kg降低至23.2 kg,降低了56.5%。 In this paper,the industrial practice of deep dephosphorization with less slag in dephosphorization period was carried out on 250 ton converter of Meigang.The effects of smelting temperature,slag composition and blowing system on phosphorus content in molten steel were studied.The practice shows that at the end of the dephosphorization period of converter smelting,the appropriate bath temperature is 1370~1420℃,the basicity of slag is 1.3~1.8,and the FeO content in slag is 18%~28%;The suitable oxygen blowing amount in the dephosphorization period of converter smelting is24%~28%of the total oxygen flow,the scrap ratio is controlled at 12%~16%,and the number of bottom blowing holes is more than 8.Through above parameters optimization,average dephosphorization rate in converter smelting dephosphorization period of Meigang was increased from less than 50%to63.2%,and finally achieved stable operation of the less slag process.During period from year 2012 to2019,the less slag smelting proportion was increased from 0 to 83.7%,and the lime consumption per ton of steel was reduced from 53.3 kg to 23.2 kg,decrease by 56.5%.
作者 王多刚 郭培民 程乃良 夏云进 Wang Duogang;Guo Peimin;Cheng Nailiang;Xia Yunjin(The State Key Laboratory for Advanced Iron and Steel Process and Materials,Central Iron and Steel Research Institute,Beijing 100081,China;Shanghai Meishan Iron and Steel Co.,Ltd.,Nanjing 210039,Jiangsu,China;School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243000,Anhui,China)
出处 《钢铁钒钛》 CAS 北大核心 2021年第5期186-191,共6页 Iron Steel Vanadium Titanium
基金 国家自然科学基金资助项目(52074001) 钢铁联合研究基金资助项目(U15601109)。
关键词 转炉 少渣冶炼 脱磷 converter less slag smelting dephosphorization
  • 相关文献

参考文献2

二级参考文献15

  • 1Ogawa Y, Yano M, Kitamura S, et al. Development of the Continuous Dephosphorization and Decarburization Process U- sing BOF[J]. Tetsu-to-Hagane, 2001,87(1) :21.
  • 2Matsumiya T, Ichida M. Recent Progress and Topics in Iron and Steelmaking Technology in Japan[C]//The 10th Japan- China Symposium on Science and Technology of Iron and Steel. Chiba.. 2004.
  • 3Morita K, Kumakura M, Washizu T. Efficiency Promotion of Refining Process in Nippon Steel Corporation[C]//The 4th In- ternational Congress on the Science and Technology of Steel- making. Gifu:2008.
  • 4Ueshima Y, Saito K. Recent Advances and Topics of Iron and Steelmaking Technology in Japan[C]//The 12th Japan-China Symposium on Science and Technology of Iron and Steel. Na- goya;2010.
  • 5Iwasaki M, MatsuoM. Change and Development of Steel-Making Technology[J]. Nippon Steel Technical Report, 2011(391) ..88.
  • 6Kumakura M. Advances in the Refining Technology and the Future Prospects[J]. Nippon Steel Technical Report, 2012 (394) :4.
  • 7Sasaki N, Ogawa Y, Mukawa S, et al. Improvement of Hot Metal Dephosphorization Technique[J]. Nippon Steel Techni- cal Report,2012 (a94) :26.
  • 8Hashimoto T, Iihoshi H, Kume K, et al. Improvement in Production Capacity at Oita Works[J]. Nippon Steel Techni- cal Report, 2012(394) :84.
  • 9Kobayashi M, Isobe K, Arai M. Technical Progress in Steel- making and Casting for Special Bar and Wire Steel at Muroran Work[J]. Nippon Steel Technical Report, 2012 (394):119.
  • 10Turkdogan E T. Assessment of PzOs Activity Coefficients in Molten Slags[J]. IS[J International, 2000, 40(10) :964.

共引文献70

同被引文献9

引证文献1

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部