The Research on Carbon Deoxygenation of Molten Steel and Its Application in the Converter Steelmaking Process
Abstract
1. Introduction
2. Experimental Materials and Methods
2.1. Experimental Materials
2.2. Experimental Methods
2.2.1. Deoxygenation Process and Sampling Plan
2.2.2. Sample Testing Method
3. Results and Discussion
3.1. Theoretical Calculation of the Carbon Deoxygenation Process
3.1.1. Analysis of the Deoxygenation Ability of Different Elements
3.1.2. Limit Analysis of Carbon Deoxygenation Reaction
3.1.3. The Allocation Pathway of Carbon in the Carbon Deoxygenation Process
3.2. Application Effect of the Carbon Deoxidation Process in 45 Steel
3.2.1. Changes in Oxygen and Nitrogen Content in Steel
3.2.2. Study on the Morphology and Evolution of Inclusions in the Carbon Deoxidation Process
3.2.3. Comparison of the Cleanliness of Cast Billets Produced by Different Deoxidation Processes
3.2.4. Comparison of Deoxygenation Costs for Different Deoxygenation Processes
4. Conclusions
- At the steelmaking temperature, the priority of deoxidation element reaction in the molten steel is [Al] > [Si] > [C] > [Mn]. Therefore, when carbon deoxidation is carried out during steel tapping, carbon must be added to the molten steel before alloy elements such as Al and Si. Under normal pressure, the carbon deoxidation effect is greatly affected by the carbon content of the molten steel. Without vacuum treatment conditions, carbon deoxidation cannot be used as the final deoxidation method, and other such methods still need to be combined to complete the final deoxidation of molten steel.
- After reaching carbon oxygen balance in oxygen-rich molten steel, the added carbon participates in both carbonization and deoxidation. When the carbon content of the molten steel ranges from 0.038% to 0.12%, the proportion of carbon added for deoxidation is relatively high. As the dissolved oxygen content in the molten steel decreases, the carbon deoxidation rate slows down. Therefore, in actual production, measures need to be taken in the later stage of carbon deoxidation to promote the deoxidation effect.
- In the carbon deoxidation process, the final deoxidation of molten steel in LF is still completed by the Al element. Compared with the aluminum deoxidation process, the carbon deoxidation process has shown certain advantages in oxygen and nitrogen control. In addition, the evolution law of inclusions in the carbon deoxidation process can be summarized as Al-Si-Mn-O→Al-(Ca)-(Mg)-O→Ca-Al-(Mg)-(Si)-O.
- Compared with the aluminum deoxidation process, the number of inclusions in the cast billet produced by the carbon deoxidation process is reduced by 68.8%, and there are fewer large-sized inclusions in the billet. In addition, the carbon deoxidation process eliminates the addition of aluminum blocks after the converter, reducing the cost of deoxidants by CNY 15.47/ton of steel. In summary, the carbon deoxidation process has a better inclusion control effect and lower deoxidation costs.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Process Node | C | Si | Mn | P | S | Alt | |
---|---|---|---|---|---|---|---|
BOF smelting endpoint | lower limit | 0.08 | - | - | - | - | - |
upper limit | 0.15 | - | - | 0.020 | - | - | |
Before LF refining begins | lower limit | 0.35 | 0.10 | 0.45 | - | - | - |
upper limit | 0.40 | 0.20 | 0.55 | - | - | - | |
Finished product | target value | 0.46 | 0.22 | 0.62 | ≤0.025 | ≤0.012 | 0.010 |
Testing Items | Fixed Carbon | Ash | Volatile | Moisture | S |
---|---|---|---|---|---|
Mass fraction/wt% | 92.14 | 5.68 | 1.62 | 0.34 | 0.22 |
Deoxidation Element | Reaction Equation | Variation Value of Standard Gibbs Free Energy (J/mol) |
---|---|---|
Al | ||
Si | ||
Mn | ||
C |
Composition of Molten Steel | C/wt% | Si/wt% | Mn/wt% | Al/wt% | O/×10−6 |
---|---|---|---|---|---|
Smelting endpoint of the converter | 0.06 | 0.025 | 0.09 | 0.0038 | 432 |
After LF diffusion deoxygenation | 0.34 | 0.025 | 0.09 | 0.0128 | 49 |
Before adding calcium wire | 0.44 | 0.250 | 0.60 | 0.0140 | 19.3 |
Different Deoxidation Processes | Deoxidant | Cost Per Ton of Steel/CNY | |||||
---|---|---|---|---|---|---|---|
Types | Aluminum Blocks | Calcium Carbide | Silicon Carbide | Aluminum Particles | Carbon Powder | ||
Unit Price/(CNY/kg) | 20.02 | 3.92 | 4.54 | 20.52 | 2.64 | ||
Aluminum deoxidation | Consumption/(kg/t) | 0.75 | 1.38 | 0.50 | 0.25 | 4.89 | 40.74 |
Carbon deoxidation | 0 | 0.59 | 1.18 | 0.29 | 4.12 | 24.74 |
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Gao, F.; Bao, Y. The Research on Carbon Deoxygenation of Molten Steel and Its Application in the Converter Steelmaking Process. Metals 2025, 15, 648. https://doi.org/10.3390/met15060648
Gao F, Bao Y. The Research on Carbon Deoxygenation of Molten Steel and Its Application in the Converter Steelmaking Process. Metals. 2025; 15(6):648. https://doi.org/10.3390/met15060648
Chicago/Turabian StyleGao, Fang, and Yanping Bao. 2025. "The Research on Carbon Deoxygenation of Molten Steel and Its Application in the Converter Steelmaking Process" Metals 15, no. 6: 648. https://doi.org/10.3390/met15060648
APA StyleGao, F., & Bao, Y. (2025). The Research on Carbon Deoxygenation of Molten Steel and Its Application in the Converter Steelmaking Process. Metals, 15(6), 648. https://doi.org/10.3390/met15060648