Influence of Fe2O3 addition on the phase equilibrium for CaO-SiO2-TiO2 system at 1300 °C in air

Optimizing the Selective Crystallization and Phase Separation (SCPS) process is essential for improving the resource utilization of titanium-bearing blast furnace slag. However, the influence of Fe 2 O 3 addition on the phase equilibria of the CaO-SiO 2 -TiO 2 system remains insufficiently understood, particularly in Fe 2 O 3 -containing titanium-bearing slag systems. In this work, phase equilibria in the CaO-SiO 2 -TiO 2 system with 5 and 10 wt% Fe 2 O 3 additions were systematically investigated at 1300 °C in air using high-temperature equilibrium-quenching experiments, followed by characterization with XRD, SEM-EDS, and EPMA, along with thermodynamic calculations. Special attention was given to the influence of Fe 2 O 3 on the liquid-phase region and the liquid-CaTiO 3 two-phase coexistence region. The results show that the liquid region expands with increasing Fe 2 O 3 content, confirming its strong fluxing effect through stabilization of the liquid slag phase. Moreover, Fe 2 O 3 addition alters the liquid-CaTiO 3 phase equilibrium relationship and affects the distribution of Ti-bearing primary phase fields. Significant discrepancies were observed between the experimentally determined liquid-phase boundaries and FactSage predictions, with FactSage predicting a smaller liquid-phase region than that determined experimentally. The phase equilibrium data obtained in this study provide essential experimental information for thermodynamic model refinement of Fe 2 O 3 -containing CaO-SiO 2 -TiO 2 systems and offer theoretical guidance for optimizing the SCPS process and titanium-rich slag utilization.

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Publication Details

Journal
Calphad
Published
2026-09-25
DOI
https://doi.org/10.1016/j.calphad.2026.103005
Primary Topic
Metallurgical Processes and Thermodynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Influence of Fe2O3 addition on the phase equilibrium for CaO-SiO2-TiO2 system at 1300 °C in air

Yumo Zhai, Junjie Shi, Min Chen, Tongzhi Liu et al.
Calphad
Metallurgical Processes and Thermodynamics
article

Influence of Fe2O3 addition on the phase equilibrium for CaO-SiO2-TiO2 system at 1300 °C in air

Yumo Zhai, Junjie Shi, Min Chen, Tongzhi Liu, Jingxiong Gao, Yun Huang, Yandong Li, Bin Yu, Jing Xu, Shuyi Wu, Ning Wang, Jianbo Zhang, Jianzhong Li
article en

Abstract

Optimizing the Selective Crystallization and Phase Separation (SCPS) process is essential for improving the resource utilization of titanium-bearing blast furnace slag. However, the influence of Fe 2 O 3 addition on the phase equilibria of the CaO-SiO 2 -TiO 2 system remains insufficiently understood, particularly in Fe 2 O 3 -containing titanium-bearing slag systems. In this work, phase equilibria in the CaO-SiO 2 -TiO 2 system with 5 and 10 wt% Fe 2 O 3 additions were systematically investigated at 1300 °C in air using high-temperature equilibrium-quenching experiments, followed by characterization with XRD, SEM-EDS, and EPMA, along with thermodynamic calculations. Special attention was given to the influence of Fe 2 O 3 on the liquid-phase region and the liquid-CaTiO 3 two-phase coexistence region. The results show that the liquid region expands with increasing Fe 2 O 3 content, confirming its strong fluxing effect through stabilization of the liquid slag phase. Moreover, Fe 2 O 3 addition alters the liquid-CaTiO 3 phase equilibrium relationship and affects the distribution of Ti-bearing primary phase fields. Significant discrepancies were observed between the experimentally determined liquid-phase boundaries and FactSage predictions, with FactSage predicting a smaller liquid-phase region than that determined experimentally. The phase equilibrium data obtained in this study provide essential experimental information for thermodynamic model refinement of Fe 2 O 3 -containing CaO-SiO 2 -TiO 2 systems and offer theoretical guidance for optimizing the SCPS process and titanium-rich slag utilization.

CalphadVol. 95
Luleå University of Technology (SE), Anshan Normal University (CN), Northeastern University (CN)
National Natural Science Foundation of China, National University's Basic Research Foundation of China
Openalex Percentile: Top 21%
Metallurgical Processes and Thermodynamics
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