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作 者:凌海涛 吴锦圆[1] 王海军 常立忠 仇圣桃 LING Haitao;WU Jinyuan;WANG Haijun;CHANG Lizhong;QIU Shengtao(Jiangsu Yonggang Group Co.,Ltd.,Zhangjiagang 215628,China;School of Metallurgical Engineering,Anhui University of Technology,Maanshan 243002,China;State Key Laboratory of Advanced Metallurgy,University of Science and Technology Beijing,Beijing 100083,China;National Engineering and Research Center for Continuous Casting Technology,Central Iron and Steel Research Institute,Beijing 100081,China)
机构地区:[1]江苏永钢集团有限公司,江苏张家港215628 [2]安徽工业大学冶金工程学院,安徽马鞍山243002 [3]北京科技大学钢铁冶金新技术国家重点实验室,北京100083 [4]钢铁研究总院连铸技术国家工程研究中心,北京100081
出 处:《炼钢》2023年第2期36-41,共6页Steelmaking
基 金:国家自然科学基金资助项目(52274312);安徽省高校自然科学研究项目(KJ2021A0396)。
摘 要:通过工业试验和热力学计算研究了超低碳钢连铸过程中间包覆盖剂成分变化、物相组成以及发生结壳机理。结果表明,RH精炼出站时,钢包顶渣氧化性较高且渣中w(CaO)/w(Al_(2)O_(3))偏低,顶渣成分需要进行改质处理;浇铸过程中由于大包下渣、引流砂的混入以及覆盖剂间相互混合,使得连铸过程中覆盖剂成分发生明显变化;高温下液相中镁铝尖晶石优先生成,促进了钙铝黄长石相和CaO・TiO_(2)相的形核和长大,进而引起中间包覆盖剂发生结壳。为此,需要严格控制浇铸末期大包下渣,将原始覆盖剂中SiO_(2)、MgO质量分数分别调整为(10±2.5)%、5.0%〜7.5%,以抑制钙铝黄长石和镁铝尖晶石相的析出。The industrial trials and thermodynamic calculation were carried out to investigate the composition evolution,crystallization phase,and crust mechanism of tundish cover powder(TCP)during continuous casting of ultra-low carbon steel.The results showed that the ladle slag had a relatively strong oxidation capacity at RH departure and the w(CaO)/w(Al_(2)O_(3))in the slag was low.The top slag of RH refining needs to be modified.Due to the slag carryover,mix of ladle filler sands and TCP,the composition of TCP during continuous casting has been significantly changed.Furthermore,the MgO·Al_(2)O_(3)spinel in liquid phase was first formed and it promoted the nucleation and growth of 2CaO·Al_(2)O_(3)·SiO_(2)and CaO·TiO_(2)phases,resulting in the crust of TCP.To avoid the crust of TCP during continuous casting,the ladle carryover at cast end should be strictly controlled,and the mass fraction of SiO_(2)and MgO in the original TCP are reduced to(10±2.5)%and 5.0%~7.5%respectively,which will inhibit the precipitation of 2CaO·Al_(2)O_(3)·SiO_(2)and MgO·Al_(2)O_(3)spinel phases.
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