Study on the Evolution Law of Inclusions in the Whole Process and Evaluation of Cleanliness in Start and End of Casting Billets of 42CrMo-S Steel
Abstract
:1. Introduction
2. Experimental Materials and Methods
2.1. Experimental Material
2.2. Experimental Methods
3. Study of the Cleanliness Level in the Whole Process
3.1. Variation of Oxygen and Nitrogen in the Whole Process
3.2. The Evolution of Inclusions in the Whole Process
4. Study on the Reasonable Cutting Scrap Length
4.1. Head Billet
4.1.1. Analysis of Oxygen and Nitrogen Content
4.1.2. The Evolution of Inclusions of the Head Billet
4.2. Tail Billet
4.2.1. Analysis of the Oxygen and Nitrogen Content
4.2.2. The Evolution of Inclusions in the Tail Billet
4.3. Morphology and Size Distribution of Inclusions in the Head and Tail Billets
5. Conclusions
- (1)
- The oxygen content in the refining process is well controlled, with 10.2 ppm at the end of LF slagging. The oxygen content is reduced to less than 10 ppm in the RH refining process, with 6.3 ppm at end-RH. The oxygen content in the rolled material is 7.2 ppm, which is lower than 15 ppm of the internal control requirement. There is a steady increase in the nitrogen content of the steel during smelting, where the N content is 65 ppm at end-RH.
- (2)
- The inclusions in the molten steel are mainly pure Al2O3 upon arrival at LF. As the refining proceeds, the number of Al2O3 inclusions gradually decreases and is modified into inclusions with Mg-Al spinel-type inclusions, Al2O3-MgO-CaO inclusions, and some Al2O3-CaO inclusions. The feeding of the S wire promotes CaS generation and the number of CaS-type inclusions in the steel reaches the maximum. The percentage of inclusions that are less than 5 μm in the refining process (except end-RH) is kept above 90%, and the control of large inclusions is satisfactory.
- (3)
- The total oxygen content is stabilized at 15 ppm from T3 to T5, and the number of inclusions in the normal billet is closest to the number of inclusions in T3, so it is recommended that the reasonable cut scrap length of the head billet is 0.3 m.
- (4)
- The total oxygen content of the tail billet does not fluctuate much with the growth of casting length and is stable at about 15 ppm. Moreover, the number of inclusions in different sizes of W1 is closest to the normal billet, so it is recommended that the reasonable cut scrap length of the tail billet is 1 m.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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C | Si | Mn | P | S | Cr | Mo | |
---|---|---|---|---|---|---|---|
Internal control | 0.40–0.42 | 0.26–0.33 | 0.75–0.80 | ≤0.015 | 0.017–0.030 | 1.11–1.16 | 0.17–0.20 |
Target | 0.41 | 0.27 | 0.77 | ≤0.010 | 0.020 | 1.13 | 0.18 |
Sampling Time | Sample Number |
---|---|
Arrival to LF | L1 |
LF high basicity slag formation | L2 |
3 min after feeding the Ca wire | L3 |
3 min after feeding the S wire | L4 |
Arrival to RH | R1 |
Break vacuum of RH | R2 |
End-RH | R3 |
20 min of tundish | C1 |
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Xing, L.; Wang, B.; Bao, Y.; Wang, M. Study on the Evolution Law of Inclusions in the Whole Process and Evaluation of Cleanliness in Start and End of Casting Billets of 42CrMo-S Steel. Processes 2023, 11, 2184. https://doi.org/10.3390/pr11072184
Xing L, Wang B, Bao Y, Wang M. Study on the Evolution Law of Inclusions in the Whole Process and Evaluation of Cleanliness in Start and End of Casting Billets of 42CrMo-S Steel. Processes. 2023; 11(7):2184. https://doi.org/10.3390/pr11072184
Chicago/Turabian StyleXing, Lidong, Bo Wang, Yanping Bao, and Min Wang. 2023. "Study on the Evolution Law of Inclusions in the Whole Process and Evaluation of Cleanliness in Start and End of Casting Billets of 42CrMo-S Steel" Processes 11, no. 7: 2184. https://doi.org/10.3390/pr11072184
APA StyleXing, L., Wang, B., Bao, Y., & Wang, M. (2023). Study on the Evolution Law of Inclusions in the Whole Process and Evaluation of Cleanliness in Start and End of Casting Billets of 42CrMo-S Steel. Processes, 11(7), 2184. https://doi.org/10.3390/pr11072184