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鐵酸鋅氣體還原的熱力學分析

Thermodynamic analysis of the reduction of zinc ferrite with CO-CO2

  • 摘要: 根據熱力學原理,計算并分析了含鋅冶金粉塵中的重要成分ZnFe2O4在CO-CO2氣體還原過程中的熱力學行為.ZnFe2O4的氣體還原遵循逐級還原規律,且ZnFe2O4很容易被CO還原到ZnO和Fe3O4.較高溫度條件下,Zn O的氣體還原易于Fe O的還原.隨著反應溫度升高,鋅完全反應和揮發所需要的CO含量不斷降低,當反應溫度從1100 K升高到1400 K時所需的CO體積分數由0.4降低到0.01以下.要達到還原分離金屬鋅的目的,不必將鐵氧化物還原到金屬鐵,而只需將鐵氧化物還原到Fe3O4或FeO,同時滿足鋅的還原條件即可.在高爐爐身中上部,由于發生鋅的還原反應和內部循環,給高爐生產帶來危害,因此應減少和控制高爐的鋅負荷.

     

    Abstract: The reduction behavior of zinc ferrite, an important constituent of zinc-bearing metallurgical dust, with CO-CO2 gas was calculated and analyzed according to the thermodynamic principles. The reduction of ZnFe2O4 obeys a stepwise mechanism. ZnFe2O4 is easy to be reduced to ZnO and Fe3O4. ZnO is easier to be reduced than FeO, and a lower volume fraction of CO gas is needed to reduce ZnO at a higher temperature. If the reaction temperature increases from 1100 K to 1400 K, the reducing potential expressed by the volume fraction of CO decreases from 0.4 to 0.01. Aiming to the reduction and separation of metallic zinc from zincbearing dust, it is not necessary to reduce iron oxides to metallic iron, but Fe3O4 or FeO, while zinc oxide should be reduced to metallic zinc. In the upper of the blast furnace, zinc reduction and internal circulation occur and bring harms to blast furnace production, and therefore the zinc load of the blast furnace should be reduced and controlled strictly.

     

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