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稀土處理C-Mn鋼顯微組織和夾雜物演化

Microstructure and inclusion evolution in rare earth treated C-Mn steel

  • 摘要: 對稀土處理C-Mn鋼的夾雜物和顯微組織進行分析,統計稀土處理C-Mn鋼中針狀鐵素體形核核心尺寸,并將稀土處理鋼在不同溫度下淬火,研究稀土夾雜物生成和長大過程.實驗結果表明:C-Mn鋼加入少量稀土后鋼中夾雜物從MnS+硅鋁酸鹽夾雜轉變為La2O2S+LaAlO3+MnS+硅鋁酸鹽夾雜,尺寸得到細化,顯微組織也從馬氏體+貝氏體組織變成側板條鐵素體、針狀鐵素體和塊狀鐵素體組織;稀土處理C-Mn鋼中針狀鐵素體有效形核核心的尺寸集中在1~4μm,主要是在鋼液中形成,冷卻和凝固過程形成的數量較少;稀土夾雜物在鋼液溫度和冷卻及凝固過程容易碰撞黏合長大,上浮從鋼液中去除,MnS能在稀土夾雜物顆粒間析出.

     

    Abstract: The microstructure and inclusions in rare earth treated C-Mn steel were studied,the size distribution of the nuclei inducing acicular ferrite nucleation was subjected to statistical analysis,and the formation and growth processes of rare earth inclusions were discussed through quenching the treated samples at different temperatures. It is found that after a small amount of rare earth is added into the C-Mn steel,the inclusion composition changes from Mn S + aluminosilicate to La2O2S + LaAlO3+ MnS + aluminosilicates,the inclusion size decreases,and the microstructure converts from martensite + bainite to ferrite side plate + acicular ferrite+ massive ferrite. The size of effective inclusions inducing acicular ferrite nucleation is mainly concentrated in 1-4 μm in the rare earth treated C-Mn steel,they primarily form in liquid steel,but little in the cooling and solidification processes. The rare earth inclusions are easy to coalesce and grow up at molten temperature and in the cooling and solidification processes,and Mn S can precipitate around the residual rare earth inclusion particles.

     

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