In-situ Observation of Precipitation and Growth of MnS Inclusions during Solidification of a High Sulfur Steel

被引:0
|
作者
Yang, Haixin [1 ]
Ren, Ying [2 ]
Wang, Jinshu [3 ]
Zhang, Lifeng [4 ]
机构
[1] Faculty of Materials and Manufacturing, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing,100124, China
[2] School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, 30 Xueyuan Rd., Haidian Dist., Beijing,100083, China
[3] The Key Laboratory of Advanced Functional Materials, Faculty of Materials and Manufacturing, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing,100124, China
[4] School of Mechanical and Materials Engineering, North China University of Technology, 5 Jinyuanzhuang Rd., Shijingshan Dist., Beijing,100144, China
基金
中国国家自然科学基金;
关键词
Manganese steel;
D O I
10.2355/isijinternational.ISIJINT-2024-195
中图分类号
学科分类号
摘要
The effect of the cooling rate on the morphology, number density, and size distribution of MnS inclusions in a high sulfur steel was investigated. With the increase of the cooling rate from 15 K/min to 300 K/min, the number density of MnS inclusions ranged from 91 #/mm2 to 192 #/mm2, and the average size of MnS inclusions decreased from 7.4 μm to 5.3 μm. A coupled model was developed to predict the precipitation and growth of MnS inclusions. The precipitation temperature of MnS at different cooling rates was approximately 1 823 K, which agreed well with experimental results. Through the high-temperature confocal scanning laser microscope, the precipitation process of MnS in a high sulfur steel during the solidification was observed. Inclusions of MnS primarily precipitated at grain boundaries, while the morphology of MnS before and after solidification was influenced by the cooling rate. A higher cooling rate promoted elongated MnS inclusions precipitated, and smaller MnS inclusions were precipitated after solidification. Conversely, a slower cooling rate led to the massive MnS inclusions precipitated during solidification, leading to the formation of elongated MnS particles. © 2024 The Iron and Steel Institute of Japan.
引用
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页码:2020 / 2030
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