LAPSE:2023.2672
Published Article

LAPSE:2023.2672
Analysis of the Formation Mechanism of Surface Cracks of Continuous Casting Slabs Caused by Mold Wear
February 21, 2023
Abstract
Surface cracks are easily produced after friction between continuous casting billets and copper layers in mold cavity, but the formation mechanism is not clear. Based on a steel-based hot-dip copper plating experiment, this study simulated the action behavior of copper adhering to the surface of a continuous casting billet after mold wear and systematically analyzed the formation mechanism of cracks caused by copper infiltration on the surface of the continuous casting billet. It is shown that when the copper liquid adheres to the surface of the slab, in addition to the diffusion of Cu in the steel, Fe is also dissolved in the copper liquid, accelerating the solidification of the copper liquid on the surface of the slab and forming a stable fusion combination between copper and steel. At the same time, due to the enrichment of the Fe-C phase and a large number of vacancies at the grain boundary, the grain boundary becomes the dominant area of copper−steel fusion bonding. For a continuous casting process in which the temperature is kept higher than 900 ℃, Cu’s solubility is high and the diffusion coefficient is very low in Fe, which makes it very difficult for Cu accumulated in the grain boundary to diffuse into the steel matrix during the continuous casting process, resulting in a grain boundary with a greatly weakened strength becoming the origin of cracks in the bending and straightening deformation of the billet.
Surface cracks are easily produced after friction between continuous casting billets and copper layers in mold cavity, but the formation mechanism is not clear. Based on a steel-based hot-dip copper plating experiment, this study simulated the action behavior of copper adhering to the surface of a continuous casting billet after mold wear and systematically analyzed the formation mechanism of cracks caused by copper infiltration on the surface of the continuous casting billet. It is shown that when the copper liquid adheres to the surface of the slab, in addition to the diffusion of Cu in the steel, Fe is also dissolved in the copper liquid, accelerating the solidification of the copper liquid on the surface of the slab and forming a stable fusion combination between copper and steel. At the same time, due to the enrichment of the Fe-C phase and a large number of vacancies at the grain boundary, the grain boundary becomes the dominant area of copper−steel fusion bonding. For a continuous casting process in which the temperature is kept higher than 900 ℃, Cu’s solubility is high and the diffusion coefficient is very low in Fe, which makes it very difficult for Cu accumulated in the grain boundary to diffuse into the steel matrix during the continuous casting process, resulting in a grain boundary with a greatly weakened strength becoming the origin of cracks in the bending and straightening deformation of the billet.
Record ID
Keywords
continuous casting billet, formation mechanism, hot-dip, mold wear, surface cracks
Suggested Citation
Zhou J, Zhu L, Sun L, Wang B, Xiao P. Analysis of the Formation Mechanism of Surface Cracks of Continuous Casting Slabs Caused by Mold Wear. (2023). LAPSE:2023.2672
Author Affiliations
Zhou J: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China [ORCID]
Zhu L: Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China; School of Materials Science and Engineering, Hebei University of Science and Technology, Shijiazhuang 050018, China
Sun L: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Wang B: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Xiao P: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Zhu L: Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China; School of Materials Science and Engineering, Hebei University of Science and Technology, Shijiazhuang 050018, China
Sun L: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Wang B: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Xiao P: College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063210, China; Hebei Engineering Research Center of High Quality Steel Continuous Casting, Tangshan 063000, China
Journal Name
Processes
Volume
10
Issue
4
First Page
797
Year
2022
Publication Date
2022-04-18
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr10040797, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2023.2672
This Record
External Link

https://doi.org/10.3390/pr10040797
Publisher Version
Download
Meta
Record Statistics
Record Views
456
Version History
[v1] (Original Submission)
Feb 21, 2023
Verified by curator on
Feb 21, 2023
This Version Number
v1
Citations
Most Recent
This Version
URL Here
https://psecommunity.org/LAPSE:2023.2672
Record Owner
Auto Uploader for LAPSE
Links to Related Works
(0.07 seconds)
[0.07 s]
