Source and Transformation of MgO-Based Inclusions in Si-Mn-Killed Steel with Lime-Silicate Slag
Abstract
:1. Introduction
2. Experiments
2.1. Experiment and Samplings
2.2. Analysis of Samples
3. Results and Discussion
3.1. Evolution of Non-Metallic Inclusions in Steelmaking Process
3.2. Analysis of the MgO-C Refractory after Continuous Casting
3.3. Source of MgO-Based Non-Metallic Inclusions
3.4. Thermodynamic Considerations of MgO Saturation in Slag
3.5. Evolution Mechanism of MgO-Based Non-Metallic Inclusions
3.6. Improvements in Industrial Trial
4. Conclusions
- By using an SEM equipped with an EDS, it was found that there were a large number of MgO-based non-metallic inclusions, which started to form in the LF final process. The content of MgO in the lime-silicate slag increased from the LF process to VD process, which may have been caused by the erosion of MgO-C refractory.
- The solubility of MgO in low basicity lime-silicate slag decreased with an increase in the slag basicity (CaO/SiO2). In the lime-silicate slag, the solubility of MgO increases with an increase in the temperature. The solubility of MgO was 1~29% in typical lime-silicate slag with 0~10% Al2O3 and 0.8~2.0 slag basicity (CaO/SiO2) at 1873 K.
- With the oxidation of C in the refractory and the scouring of the refractory by the bottom blowing of the ladle and the flow of moten steel, the massive MgO flakes into the steel, or the CaO-SiO2-Al2O3 wraps the massive MgO inclusions and washes into the steel.
- By increasing the slag basicity and increasing the content of MgO, erosion of MgO-C refractory was reduced and number of MgO-based non-metallic inclusions was decreased from 0.2 to 0.04 per square millimeter. The objective of controlling MgO-based oxide inclusions was achieved by optimizing the refining process.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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C | Si | Mn | Cr | P | S | Als |
---|---|---|---|---|---|---|
0.50–0.55 | 0.30–0.35 | 0.40–0.50 | 0.20–0.30 | <0.014 | <0.012 | <0.0035 |
Sampling Location | CaO | SiO2 | Al2O3 | MgO | T.Fe+MnO |
---|---|---|---|---|---|
SLF | 39–44 | 37–43 | 5–10 | 3–7 | ≤4 |
SVD | 38–42 | 37–45 | 4–8 | 8–13 | ≤5 |
NO. | Number of All Types of Inclusions | MgO-Based Non-Metallic Inclusions | |
---|---|---|---|
Number | Density, /mm2 | ||
1 | 177 | 28 | 0.32 |
2 | 204 | 26 | 0.29 |
3 | 272 | 5 | 0.06 |
4 | 148 | 14 | 0.16 |
5 | 134 | 9 | 0.10 |
6 | 333 | 15 | 0.17 |
7 | 298 | 22 | 0.25 |
8 | 332 | 23 | 0.26 |
9 | 207 | 15 | 0.17 |
Average | 0.20 |
Different Process | CaO | SiO2 | Al2O3 | MgO | T.Fe+MnO |
---|---|---|---|---|---|
before improvement | 39–44 | 37–43 | 5–10 | 3–7 | ≤5.0 |
after improvement | 45–52 | 27–33 | 3–8 | 8–14 | ≤1.5 |
NO. | Number of all Types of Inclusions | MgO-Based Non-Metallic Inclusions | |
---|---|---|---|
Number | Density, /mm2 | ||
1 | 168 | 2 | 0.03 |
2 | 243 | 5 | 0.06 |
3 | 261 | 5 | 0.06 |
4 | 177 | 2 | 0.02 |
5 | 244 | 4 | 0.05 |
Average | 0.04 |
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Zhao, J.; Chu, J.; Liu, X.; Wang, M.; Cai, X.; Ma, H.; Bao, Y. Source and Transformation of MgO-Based Inclusions in Si-Mn-Killed Steel with Lime-Silicate Slag. Metals 2022, 12, 1323. https://doi.org/10.3390/met12081323
Zhao J, Chu J, Liu X, Wang M, Cai X, Ma H, Bao Y. Source and Transformation of MgO-Based Inclusions in Si-Mn-Killed Steel with Lime-Silicate Slag. Metals. 2022; 12(8):1323. https://doi.org/10.3390/met12081323
Chicago/Turabian StyleZhao, Jiaqi, Jianhua Chu, Xin Liu, Min Wang, Xiaofeng Cai, Han Ma, and Yanping Bao. 2022. "Source and Transformation of MgO-Based Inclusions in Si-Mn-Killed Steel with Lime-Silicate Slag" Metals 12, no. 8: 1323. https://doi.org/10.3390/met12081323
APA StyleZhao, J., Chu, J., Liu, X., Wang, M., Cai, X., Ma, H., & Bao, Y. (2022). Source and Transformation of MgO-Based Inclusions in Si-Mn-Killed Steel with Lime-Silicate Slag. Metals, 12(8), 1323. https://doi.org/10.3390/met12081323