THERMODYNAMICS OF THE PROCESSES OF INTERACTION OF LIQUID METAL COMPONENTS IN Fe – Mg – Al – La – O SYSTEM

Q3 Materials Science
G. G. Mikhailov, L. Makrovets, L. Smirnov
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引用次数: 1

Abstract

At the present time, rare-earth elements in metallurgy are used in  the form of mischmetal – a rare-earth elements natural mixture (with  atomic numbers from 57 to 71). It contains about 50  wt.  % of cerium.  The remaining elements are mainly lanthanum and niobium. The specific composition is determined by the ore deposit. Inconstant composition of the modifier containing rare-earth metals (REM) can significantly reduce its efficiency. Experimentally, for every branded steels  composition the ratio of various REMs can’t be selected because of the  high costs of obtaining technically pure rare-earth metals. The task of  determining the each rare earth element optimum concentrations and  complex ligature composition can be solved by thermodynamic modeling. In the framework of thermodynamic modeling, the interaction  between magnesium, aluminum and lanthanum with oxygen in liquid  iron is presented. And the thermodynamic model of steel deoxidation  by these active metals composition is considered. On the basis of available literature data on the phase diagrams of the systems MgO – Al2O3 ,  MgO – La2O3 and La2O3 – Al2O3 , the coordinates of the invariant equilibria points in the system MgO – La2O3 – Al2O3 were determined. The  phase diagram of the system MgO – La2O3 – Al2O3 was constructed. It  made possible to establish all phase equilibria realized in the process  of deoxidation of steel with magnesium, lanthanum and aluminum and  to describe these phase equilibria by chemical reactions equations. The  activity of the components in liquid oxide melts was determined using  the theory of subregular ionic solutions, which takes into account the  dependence of the coordination number of cations on the composition  of the oxide melt. The activity of components in metal melts conjugated with oxide systems were determined by Wagner’s theory using the  parameters of the first order interaction. Equilibrium constants values  for the steel deoxidation reactions are installed indirectly by thermodynamic calculations. On the basis of the obtained data the components  solubility surface in the metal melts of Fe – Mg – Al – La – O system  was constructed, which allowed to determine the liquid metal composition regions associated with the corresponding oxide phase.
Fe - Mg - Al - La - O体系中液态金属组分相互作用过程的热力学
目前,稀土元素在冶金中以混合稀土的形式使用,混合稀土是一种稀土元素的天然混合物(原子序数从57到71),它含有约50%的铈。剩余元素以镧和铌为主,具体组成由矿床决定,含稀土金属(REM)的改性剂组成不稳定会显著降低其效率。在实验上,由于获得纯稀土金属的技术成本高,因此无法选择每种牌号钢成分的各种稀土元素的比例。确定各种稀土元素的最佳浓度和复杂的结合力组成的任务可以通过热力学建模来解决。在热力学模型的框架下,给出了铁液中镁、铝和镧与氧的相互作用。并考虑了这些活性金属成分对钢进行脱氧的热力学模型。根据MgO - Al2O3、MgO - La2O3和La2O3 - Al2O3体系相图的文献资料,确定了MgO - La2O3 - Al2O3体系中不变量平衡点的坐标。构造了MgO - La2O3 - Al2O3体系的相图。建立了用镁、镧、铝对钢进行脱氧过程中所有的相平衡,并用化学反应方程来描述这些相平衡。采用亚规则离子溶液理论确定了液态氧化物熔体中各组分的活性,该理论考虑了阳离子配位数对氧化物熔体组成的依赖性。采用瓦格纳理论,利用一阶相互作用参数确定了金属熔体中与氧化物体系共轭的组分的活度。钢脱氧反应的平衡常数值是通过热力学计算间接确定的。在此基础上,构建了Fe - Mg - Al - La - O体系中各组分在金属熔体中的溶解度面,从而确定了相应氧化相对应的液态金属组成区域。
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来源期刊
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya Materials Science-Materials Science (miscellaneous)
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0.90
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