Kinetic Analysis of Recovering Zinc from Electric Arc Furnace Dust by Vacuum Carbothermic Reduction at 20 Pa
Abstract
:1. Introduction
2. Materials and Methods
2.1. Raw Materials
2.2. Experimental Vacuum Determination
2.3. Experimental Procedure
3. Results and Discussion
3.1. Reduction Product Analysis
3.2. Effect of Temperature and Time on Reduction Ratio of Zinc
3.3. Kinetic Analysis
- Boundary layer gas diffusion: the diffusion of reducing gas CO molecules on the surface of the boundary layer.
- The reducing gas CO diffuses to the reaction interface through the solid product layer.
- At the reaction interface, the reducing gas CO reacts with zinc oxide and zinc ferrite.
- After the reaction, the gas products Zn(g), CO, and CO2 begin to diffuse to the outer surface.
- The gas products Zn(g), CO, and CO2 leave the surface layer and diffuse into the air.
3.4. Mechanistic Analysis of Vacuum Carbothermic Reduction of EAFD
4. Conclusions
- The vacuum carbothermic reduction experiment for the disposal of EAFD successfully collected metallic zinc. The reduction ratio increased with the increase in temperature and time. The highest reduction ratio of 99.6% was achieved under the condition of 20 Pa and 1373 K with 60 min reaction time.
- The microstructure of the reduced sample was shown as the hollow, light white, dark gray, and bright white regions. The hollow region was the zinc ferrite that had undergone the decomposition and had been produced as the gas phase. The light white regions were ferrous oxide. The dark gray regions were silicates, and the bright white regions were iron. An increase in reduction time was beneficial to the generation and expansion of the hollow and light white regions.
- The reaction mechanism was summarized as follows: zinc ferrite was first converted into zinc oxide and iron oxide, and zinc oxide was reduced to zinc at the same time. The iron oxide was further reduced to metallic iron after the zinc oxide reaction was nearly complete.
- The reduction process was divided into three parts based on the experimental data and the phase morphology analysis of the reduction product. The reduction process of the 0–15 min period was controlled by the reduction of zinc ferrite and the co-control of zinc oxide. The controlling step in the 15–30 min period was the reduction reaction of zinc oxide. The diffusion process determined the reaction rate in the 30–60 min period. The apparent activation energies of the three stages were measured to be 48.54 kJ/mol, 56.27 kJ/mol, and 105.33 kJ/mol, respectively.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Oustadakis, P.; Tsakiridis, P.; Katsiapi, A.; Agatzini-Leonardou, S. Hydrometallurgical process for zinc recovery from electric arc furnace dust (EAFD): Part I: Characterization and leaching by diluted sulphuric acid. J. Hazard. Mater. 2010, 179, 1–7. [Google Scholar] [CrossRef] [PubMed]
- Mantovani, M.; Takano, C.; Büchler, P. EAF and secondary dust characterisation. Process. Prod. Appl. 2004, 31, 325–332. [Google Scholar] [CrossRef]
- Dutra, A.; Paiva, P.; Tavares, L. Alkaline leaching of zinc from electric arc furnace steel dust. Miner. Eng. 2006, 19, 478–485. [Google Scholar] [CrossRef]
- Havlik, T.; Turzakova, M.; Stopic, S.; Friedrich, B. Atmospheric leaching of EAF dust with diluted sulphuric acid. Hydrometallurgy 2005, 77, 41–50. [Google Scholar] [CrossRef]
- Sofilić, T.; Rastovčan-Mioč, A.; Cerjan-Stefanović, Š.; Novosel-Radović, V.; Jenko, M. Characterization of steel mill electric-arc furnace dust. J. Hazard. Mater. 2004, 109, 59–70. [Google Scholar] [CrossRef] [PubMed]
- Xanthopoulos, P.; Agatzini-Leonardou, S.; Oustadakis, P.; Tsakiridis, P. Zinc recovery from purified electric arc furnace dust leach liquors by chemical precipitation. J. Environ. Chem. Eng. 2017, 5, 3550–3559. [Google Scholar] [CrossRef]
- Halli, P.; Hamuyuni, J.; Revitzer, H.; Lundström, M. Selection of leaching media for metal dissolution from electric arc furnace dust. J. Clean. Prod. 2017, 164, 265–276. [Google Scholar] [CrossRef]
- Nazari, A.; Shafyei, A.; Saidi, A. Recycling of electric arc furnace dust into glass-ceramic. Mater. Chem. Phys. 2018, 205, 436–441. [Google Scholar] [CrossRef]
- Wang, W.; Li, X.; He, Y.; Xi, H.; Wang, J.; Qiu, G. Effect of CaCO3 on volatilization of self-reduced zinc from blast furnace dust. J. Iron Steel Res. Int. 2022. [Google Scholar] [CrossRef]
- Zhang, H.; Li, J.; Xu, A.; Yang, Q.; He, D.; Tian, N. Carbothermic Reduction of Zinc and Iron Oxides in Electric Arc Furnace Dust. J. Iron Steel Res. Int. 2014, 21, 427–432. [Google Scholar] [CrossRef]
- Wang, C.; Guo, Y.; Wang, S.; Chen, F.; Tan, Y.; Zheng, F.; Yang, L. Characteristics of the reduction behavior of zinc ferrite and ammonia leaching after roasting. Int. J. Miner. Metall. Mater. 2020, 27, 26–36. [Google Scholar] [CrossRef]
- Zhang, H.; Hong, X. An overview for the utilization of wastes from stainless steel industries. Resour. Conserv. Recycl. 2011, 55, 745–754. [Google Scholar] [CrossRef]
- Morcali, M.; Yucel, O.; Aydin, A.; Derin, B. Carbothermic Reduction of Electric Arc Furnace Dust and Calcination of Waelz Oxide by Semi-Pilot Scale Rotary Furnace. J. Min. Metall. B 2012, 48, 173–184. [Google Scholar] [CrossRef]
- Zhang, R.; Li, X. Kinetics Simulation of Zn Extraction from Dust Dried in Blast Furnace by Carbothermic Reduction in Vacuum. J. Vac. Sci. Technol. 2014, 34, 53–59. [Google Scholar]
- Zhang, W.; Tian, Y.; Liu, D.; Wang, F.; Yang, B.; Xu, B. Experimental study on the thermal volatilization and condensation of zinc at 10 Pa and 200 Pa. J. Mater. Res. Technol. 2020, 9, 3590–3597. [Google Scholar] [CrossRef]
- Huang, R.; Liu, P.; Qian, X.; Zhang, J. Comprehensive utilization of Panzhihua ilmenite concentrate by vacuum carbothermic reduction. Vacuum 2016, 134, 20–24. [Google Scholar] [CrossRef]
- Xiong, L.; Xiang, Y.; Wu, X.; He, Z.; Yin, Z. Preparation of high purity zinc from zinc oxide ore by vacuum carbothermic reduction. Vacuum 2017, 146, 200–205. [Google Scholar] [CrossRef]
- Xiong, L.; Chen, Q.; Yin, Z.; Zhang, P. Thermodynamic analysis and experimental reseach on treatment of low-grade pb/zn oxide ore by vacuum carbothermic reduction. Asian J. Chem. 2009, 29, 64. [Google Scholar]
- Song, Q.; Zhang, L.; Xu, Z. Kinetic analysis on carbothermic reduction of GeO2 for germanium recovery from waste scraps. J. Clean. Prod. 2019, 207, 522–530. [Google Scholar] [CrossRef]
- Xie, W.; Chen, J.; Wang, H.; Zhang, X.; Peng, X.; Yang, Y. Kinetics of magnesium preparation by vacuum-assisted carbothermic reduction method. Rare Metals 2014, 35, 192–197. [Google Scholar] [CrossRef]
- Xiong, L.; Chen, Q.; Yin, Z.; Zhang, P. Vacuum Carbothermal Reduction Kinetics of Zinc Oxide Ore. Chem. Mater. Sci. 2010, 10, 133–137. [Google Scholar]
- Xing, X.; Du, Y.; Zheng, J.; Wang, S.; Ren, S.; Ju, J. Isothermal Carbothermal Reduction of FeTiO3 Doped with MgO. JOM 2021, 73, 1328–1336. [Google Scholar] [CrossRef]
- Huang, D.; Yang, X.; Yang, T.; Kong, L. Kinetics and modeling of the reduction process of carbon-containing pellets. Acta Metall. Sin. 1996, 32, 629. [Google Scholar]
- Liang, Z.; Tsai, H. Reduction of solid–solid thermal boundary resistance by inserting an interlayer. Int. J. Heat Mass Transf. 2012, 55, 2999–3007. [Google Scholar] [CrossRef]
Compound | Fe | Al | Si | Mg | Ca | Zn | Pb | S |
---|---|---|---|---|---|---|---|---|
Weight Percentage | 21.7 | 0.67 | 2.11 | 3.20 | 4.45 | 31.66 | 0.37 | 0.68 |
Point | Fe | O | C | Zn | Ca | Si |
---|---|---|---|---|---|---|
2 | 31.64 | 59.13 | 1.31 | 3.94 | 2.07 | 0.61 |
3 | 5.98 | 55.94 | 0.66 | 1.32 | 17.64 | 18.46 |
4 | 76.56 | 20.34 | 0.13 | 0.31 | 1.34 | 1.32 |
Symbol | F(α) | f(α) | Rate-Controlling Process |
---|---|---|---|
C | −ln(1 − α/3) | 1/(3 − α) | Carbon gasification reaction |
D1 | [1 − (1 − α) 1/3]2 | 3/2(1 − α)2/3[1 − (1 − α)1/3] | Diffusion; Jander equation |
D2 | (1 − 2α/3) − (1 − α)2/3 | 3/2[(1 − α)−1/3 − 1]−1 | Diffusion; Ginstling-Brounstein equation |
R1 | 1 − (1 − α)1/2 | 2(1 − α)1/2 | Phase boundary reaction; cylindrical symmetry |
R2 | 1 − (1 − α)1/3 | 3(1 − α)2/3 | Phase boundary reaction; spherical symmetry |
Time/min | Mechanism Function | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
C | D1 | D2 | R1 | R2 | ||||||
R2 | RSS | R2 | RSS | R2 | RSS | R2 | RSS | R2 | RSS | |
0–60 | 0.855 | 2.05 × 10−2 | 0.905 | 2.64 × 10−2 | 0.903 | 8.06 × 10−2 | 0.909 | 6.11 × 10−2 | 0.924 | 3.6 × 10−2 |
0–30 | 0.952 | 3.22 × 10−3 | 0.660 | 1.58 × 10−2 | 0.738 | 4.97 × 10−2 | 0.926 | 1.75 × 10−2 | 0.900 | 1.43 × 10−2 |
0–15 | 0.987 | 2.44 × 10−4 | 0.982 | 1.82 × 10−5 | 0.958 | 8.50 × 10−5 | 0.991 | 4.51 × 10−4 | 0.993 | 1.66 × 10−6 |
Temperature/K | Mechanism Function | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
C | D1 | D2 | R1 | R2 | ||||||
R2 | RSS | R2 | RSS | R2 | RSS | R2 | RSS | R2 | RSS | |
1223 | 0.970 | 2.13 × 10−4 | 0.952 | 1.34 × 10−4 | 0.968 | 2.06 × 10−4 | 0.987 | 6.11 × 10−4 | 0.996 | 1.38 × 10−5 |
1273 | 0.961 | 1.49 × 10−4 | 0.950 | 1.11 × 10−4 | 0.979 | 4.97 × 10−4 | 0.971 | 1.75 × 10−3 | 0.998 | 1.43 × 10−6 |
1323 | 0.961 | 1.27 × 10−4 | 0.968 | 4.23 × 10−5 | 0.969 | 6.49 × 10−5 | 0.964 | 8.95 × 10−4 | 0.999 | 5.96 × 10−7 |
1373 | 0.958 | 5.44 × 10−4 | 0.974 | 1.34 × 10−5 | 0.979 | 8.50 × 10−5 | 0.978 | 4.51 × 10−4 | 0.996 | 1.66 × 10−6 |
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Ma, S.; Zhang, Z.; Xing, X.; Xu, S.; Li, X. Kinetic Analysis of Recovering Zinc from Electric Arc Furnace Dust by Vacuum Carbothermic Reduction at 20 Pa. Minerals 2022, 12, 261. https://doi.org/10.3390/min12020261
Ma S, Zhang Z, Xing X, Xu S, Li X. Kinetic Analysis of Recovering Zinc from Electric Arc Furnace Dust by Vacuum Carbothermic Reduction at 20 Pa. Minerals. 2022; 12(2):261. https://doi.org/10.3390/min12020261
Chicago/Turabian StyleMa, Shaobo, Zhaohui Zhang, Xiangdong Xing, Shuxiang Xu, and Xintao Li. 2022. "Kinetic Analysis of Recovering Zinc from Electric Arc Furnace Dust by Vacuum Carbothermic Reduction at 20 Pa" Minerals 12, no. 2: 261. https://doi.org/10.3390/min12020261
APA StyleMa, S., Zhang, Z., Xing, X., Xu, S., & Li, X. (2022). Kinetic Analysis of Recovering Zinc from Electric Arc Furnace Dust by Vacuum Carbothermic Reduction at 20 Pa. Minerals, 12(2), 261. https://doi.org/10.3390/min12020261