<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">

轉爐提釩終點釩的分配行為

Vanadium distribution behavior at the end point of vanadium extraction by converter process

  • 摘要: 運用共存理論建立了釩渣活度計算模型,分析了釩渣成分和溫度對渣中FeO、V2O3活度及活度系數的影響;通過實驗和理論計算,分析了轉爐提釩終點釩渣成分和溫度對釩在渣和半鋼間分配行為的影響.結果表明,渣中FeO的活度和活度系數隨MnO和FeO含量的增加而增加,隨V2O3、SiO2和TiO2含量的增加而減小,其值分別在10-1和100的數量級上,而渣中V2O3的活度及活度系數在同樣條件下的變化與FeO相反,其值分別在10-2和10-1的數量級上;半鋼V的質量分數一般在0.02%~0.06%之間,隨溫度以及渣中V2O3、TiO2和SiO2含量升高而升高,隨FeO含量降低而升高;V在渣金間的分配比為100~500,隨溫度和渣中TiO2、SiO2含量升高而降低,隨FeO含量升高而升高;存在一個臨界V2O3含量使得V在渣金間的分配比達到最大,該值的理論計算結果為23.77%,實驗結果在15%~20%.

     

    Abstract: An activity model of vanadium slag was established according to the coexistence theory of slag structure. The influences of vanadium slag compositions and temperature on the activities and activity coefficients of FeO and V2O3 were analyzed based on the model. The effects of vanadium slag compositions and temperature on the distribution behavior of V between slag and semi-steel at the end point of vanadium extraction by converter were studied by experiments and calculation. It is shown that the activity and activity coefficient of FeO, which are at magnitudes of 10-1 and 100 respectively, increase with the increase of FeO and MnO contents but decrease with increasing V2O3, SiO2 and TiO2 contents in the slag; the activity and activity coefficient of V2O3, which are at magnitudes of 10-2 and 10-1 respectively, show opposite trends compared with those of FeO under the same conditions. The mass fraction of V usually ranges from 0.02% to 0.06% in semi-steel, increases with the increasing of temperature and V2O3, SiO2 and TiO2 contents but decreases with increasing FeO content in the slag. The distribution ratio of V between slag and metal phase is in the range of 100 to 500, decreases with increasing temperature and SiO2 and TiO2 contents but increases while the content of FeO in the slag increases. There is a critical V2O3 content that makes the distribution ratio of V between slag and metal phase reach maximum, the theoretical value is 23.77% and the experimental one is from 15% to 20%.

     

/

返回文章
返回
<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">
259luxu-164