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An Evaluation of Thermochemical Property Models for CaO-MnO-SiO2-Al2O3-MgO Slag

机译:CaO-MnO-SiO2-Al2O3-MgO渣热化学性质模型的评价

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The modeling of thermochemical properties is important in studying the physical behavior of slag in the operation of pyrometallurgical smelters. To study the flow of slag through a submerged-arc furnace (SAF) taphole, knowledge of thermochemical properties such as viscosity, thermal conductivity, density and heat capacity are required. In literature various models exist for silicate slags that enable thermochemical properties to be predicted as functions of chemical composition and temperature. This paper reports on the application of models in the CaO-MnO-SiO2-Al2O3-MgO slag system to be used in future CFD modeling of slag tapped from SAFs producing high-carbon ferromanganese (HCFeMn) or silicomanganese (SiMn). FactSage 6.2 is used to estimate the phase composition of slags with varying chemical composition and temperature. The dependence of thermochemical property models on chemical composition and temperature is illustrated in the form of ternary diagrams showing the predicted property values as a function of basicity (chemical composition) and temperature. Slag compositions typical of HCFeMn and SiMn processes are used. Each thermochemical property is calculated at 1400, 1500 and 1600°C at a fixed weight percentage ratio Al2O3/SiO2 of 0.57 and 6% MgO. Ternary phase diagrams (1400, 1500 and 1600°C) and a ternary liquidus temperature diagram are also presented for the system. Since viscosity has the most significant influence on flow behavior, results from various viscosity models have been compared with measured data. Predictions for thermal conductivity, density, and heat capacity are also discussed.
机译:热化学性质的建模对于研究火法冶炼厂中炉渣的物理行为很重要。为了研究炉渣流经埋弧炉(SAF)出铁孔的过程,需要了解热化学性质,例如粘度,导热系数,密度和热容量。在文献中,存在关于硅酸盐炉渣的各种模型,其能够预测热化学性质作为化学组成和温度的函数。本文报告了模型在CaO-MnO-SiO2-Al2O3-MgO炉渣系统中的应用,这些模型将用于将来从生产高碳铁锰(HCFeMn)或硅锰(SiMn)的SAF中抽出的炉渣进行CFD模拟。 FactSage 6.2用于估算化学成分和温度变化的炉渣的相组成。热化学性质模型对化学成分和温度的依赖性以三元图的形式说明,三元图显示了预测的性质值随碱度(化学成分)和温度的变化。使用了HCFeMn和SiMn工艺典型的炉渣成分。在1400、1500和1600℃下,以0.57和6%MgO的固定重量百分比Al2O3 / SiO2计算出每种热化学性质。还给出了系统的三元相图(1400、1500和1600°C)和三元液相线温度图。由于粘度对流动行为的影响最大,因此已将各种粘度模型的结果与测量数据进行了比较。还讨论了热导率,密度和热容量的预测。

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