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Influence of Temperature on Carbon Dissolution of Cokes in Molten Iron

机译:温度对铁水中焦炭碳溶解的影响

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Coke within the blast furnace not only supports the furnace bed and allows gas flow, it also carburises liquid iron. Although carburisation rates of iron by coke vary considerably between cokes, the factors controlling it have not been clearly identified. In this study the rate of carbon dissolution from two cokes prepared from Australian coals, and synthetic graphite, into liquid iron has been measured in the temperature range 1 723-1 823 K. The apparent activation energy, E_a, obtained for synthetic graphite (E_a=54 kJ mol~(-1)) is in agreement with literature values. The observed E_a values for Cokes 1 and 3 (479 kJ mol~(-1) and 313 kJ mol~(-1) respectively) are an order of magnitude larger than those of synthetic graphite. This difference in activation energies is attributed to mineral matter in the coke limiting the interfacial contact area between the carbon source and liquid iron. The interfacial contact area is a function of mineral matter yield and composition, which in turn is a function of temperature. Therefore, as temperature decreases the slag/ash layer produced at the carbon/iron interface can increase in area and viscosity and thus hinder carbon dissolution and increase the apparent activation energy of dissolution.
机译:高炉内的焦炭不仅支撑炉床并允许气体流动,还使液态铁渗碳。尽管焦炭之间的焦炭铁的渗碳率差异很大,但控制它的因素尚未明确。在这项研究中,已测量了在1 723-1 823 K的温度范围内从澳大利亚的煤和合成石墨制得的两种焦炭中碳溶解到铁水中的速率。表观活化能E_a为合成石墨(E_a = 54 kJ mol〜(-1))与文献值一致。观察到的焦炭1和3的E_a值(分别为479 kJ mol〜(-1)和313 kJ mol〜(-1))比合成石墨大一个数量级。活化能的这种差异归因于焦炭中的矿物质限制了碳源与铁水之间的界面接触面积。界面接触面积是矿物质产量和组成的函数,而矿物质产量和组成又是温度的函数。因此,随着温度降低,在碳/铁界面处产生的炉渣/灰烬层会增加面积和粘度,从而阻碍碳的溶解并增加表观的溶解活化能。

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