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超低碳鋁鎮靜鋼冶煉過程氮含量的控制

Nitrogen control of ultra-low-carbon Al-killed steel in a smelting process

  • 摘要: 針對企業冶煉超低碳鋁鎮靜鋼過程中增氮量高、波動大及控制不穩定的問題,采用工藝數據統計和現場取樣的手段,系統梳理了冶煉過程鋼液脫氮和增氮的主要環節和影響因素.轉爐脫碳期和真空處理是脫氮的主要環節,碳氧期的總脫碳量高則終點氮含量低;轉爐底吹N2/Ar切換點在吹煉70%以前對終點氮含量影響不大;VD在無氧條件下脫氮有利,RH則在有氧條件下脫氮有利.控制鋼中溶解氧>200×10-6則出鋼過程增氮可控制在5×10-6以下;爐料的氮帶入是真空精煉環節增氮的重要因素,最高達11×10-6;采用密封墊+吹Ar的保護方式,增氮量最低為1×10-6.

     

    Abstract: Based on the fact of high nitrogen pick-up, large nitrogen fluctuation and poor control in some steel works, the main aspects of nitrogen removal and nitrogen pick-up in an ultra-low-carbon Al-killed steel smelting process were summarized by analyzing the process data and sampling. The main sections for nitrogen removal are BOF decarburization period and vacuum treatment. High decarburization amount can lower the nitrogen content at the BOF endpoint. There is just a limited effect of switching between nitrogen and argon on the final nitrogen content at the BOF endpoint before the point of 70% oxygen blowing. Free oxygen is favorable for deni-trification by promoting the reaction of carbon and oxygen under the RH mode, in contrast under the VD mode. When free oxygen in liquid steel is controlled above 200×10-6, the nitrogen absorption during tapping can be controlled within 5×10-6. The nitrogen introduction of furnace charge is the important factor of nitrogen pick-up during the vacuum refining process, and it is up to 11×10-6. The minimum of nitrogen pick-up can reduce to 1×10-6 by adopting gasket sealing and argon blowing protection simultaneously.

     

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