New approach to evaluating the thermodynamic consistency of melts in the ‘metal-slag’ system based on interatomic interaction parameters

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
D. Togobitska, A. Belkova
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引用次数: 0

Abstract

The article presents a new approach to evaluating the thermodynamic state of the ‘metal–slag’ system during metal smelting in oxidizing-reducing conditions. The interaction between the metal and slag is analyzed using the model of the structure of metallurgical melts, which considers cooperative ion exchange processes and interatomic interaction parameters. As a result of analyzing experimental data on the compositions of reacting melts during pig iron and steel smelting, criteria were developed for assessing the degree of achieving the equilibrium in the system regarding sulfur. The charge state parameters of the metallic system ZY and the slag system Δe, the slag stoichiometry index ρ, and the charge state parameter of the melt components Zi were used. The regularity of a consistent formation of metallic and slag melts has been established, which is evidenced by a significant correlation between the chemical equivalent of the metal composition ZY and the slag Δe. Analytical dependences were obtained in the form of ZY = f (Δe, ρ). The identified patterns and criteria can be integrated into automated process control systems for regulating the slag regime and producing high-quality pig iron and steel.
基于原子间相互作用参数评估 "金属-熔渣 "体系熔体热力学一致性的新方法
文章提出了一种在氧化-还原条件下进行金属冶炼时评估 "金属-熔渣 "系统热力学状态的新方法。利用冶金熔体结构模型分析了金属和熔渣之间的相互作用,该模型考虑了合作离子交换过程和原子间相互作用参数。通过分析生铁和钢冶炼过程中反应熔体成分的实验数据,制定了评估系统中硫平衡实现程度的标准。使用了金属体系 ZY 和熔渣体系 Δe 的电荷状态参数、熔渣化学计量指数 ρ 以及熔体成分 Zi 的电荷状态参数。金属熔体和熔渣熔体形成一致的规律性已被证实,这体现在金属成分 ZY 的化学当量与熔渣 Δe 之间的显著相关性上。分析依赖关系以 ZY = f (Δe, ρ) 的形式获得。所确定的模式和标准可集成到自动过程控制系统中,用于调节炉渣制度和生产高质量的生铁和钢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Lithuanian Journal of Physics
Lithuanian Journal of Physics 物理-物理:综合
CiteScore
0.90
自引率
16.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: The main aim of the Lithuanian Journal of Physics is to reflect the most recent advances in various fields of theoretical, experimental, and applied physics, including: mathematical and computational physics; subatomic physics; atoms and molecules; chemical physics; electrodynamics and wave processes; nonlinear and coherent optics; spectroscopy.
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