Next Article in Journal
Compressive Mechanics and Hyperelasticity of Ni-Ti Lattice Structures Fabricated by Selective Laser Melting
Previous Article in Journal
β-Ga2O3-Based Power Devices: A Concise Review
Previous Article in Special Issue
Microwave Roasting Characteristics of Cuprous Chloride Residue from Zinc Hydrometallurgy
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Editorial

Metallurgical Slag

1
College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China
2
Department of Materials Science and Engineering, The Ohio State University, Columbus, OH 43210, USA
3
School of Metallurgy, Northeastern University, NO. 3-11, Wenhua Road, Heping District, Shenyang 110819, China
4
Instytut Metali Niezelaznych, Sowińskiego 5, 44-100 Gliwice, Poland
*
Author to whom correspondence should be addressed.
Crystals 2022, 12(3), 407; https://doi.org/10.3390/cryst12030407
Submission received: 14 March 2022 / Accepted: 15 March 2022 / Published: 17 March 2022
(This article belongs to the Special Issue Metallurgical Slag)
The Special Issue on “Metallurgical Slag” is a collection of 23 original articles dedicated to theoretical and experimental research works providing new insights and practical findings in the field of metallurgical slag-related topics.
The metallurgical industry is the material basis and a key industry for the development of human society. The rapid development of human society comes with the leaping development of the metallurgical industry in recent years. Metallurgical slag is a byproduct generated during high-temperature metallurgical processes, and its large quantity and complex chemistry have been a burden and barrier for industrial development. There are very strict environmental rules placed by the government in many countries to deal with these wastes. Therefore, slag treatment and recycling are critical for sustainable development and have huge economic benefits, and they have attracted extensive attention and efforts from many researchers to explore ways to recycle waste slag in the metallurgical industry, as well as potential application in other fields. The complex chemistry and variant physical properties make it difficult to find a unified method to treat all slags at once, but it also provides opportunities to specify their application in different fields.
Thus, this Special Issue mainly focuses on the advances in the utilization of metallurgical slags. The purpose of the Special Issue is to explore the new treatment and recycling methods of slags waste from ferrous metallurgy and also nonferrous metallurgy.
All the papers can be virtually divided into three groups, namely (i) “pyrometallurgy”; (ii) “hydrometallurgy”; and (iii) “electrometallurgy”.
The first group of papers is mainly devoted to the development of pyrometallurgy which is a metallurgical process carried out under high temperature conditions. Gabasiane et al. [1] created a short review of environmental and socio-economic impacts of copper slag, and recycling methods were considered. The characterization and composition of copper slag were also reviewed with the aim of reusing and recycling the slag. Furthermore, the crystallization behavior of TiO2-CaO-SiO2-Al2O3-MgO pentabasic slag, the main compositions of titanium-containing blast furnace slag, within the basicity range of 1.1–1.4 was investigated theoretically and experimentally by Lei et al. [2], and thermodynamic calculation showed that perovskite was the main titanium-containing phase and titanium could be enriched in perovskite. Xu et al. [3] investigated the phase change, morphology evolution, and the mechanical properties of modified steel slag. Tian et al. [4] studied the effects of decarburization annealing time on the primary recrystallization microstructure, and the texture and the magnetic properties of the final product of 0.047% Nb low temperature grain-oriented silicon steel were investigated by means of OM, EBSD, and XRD. The feasibility of calcination of calcium sulphoaluminate cement clinker using pyrite-rich cyanide tailings as Fe2O3 and SO3 sources was investigated by Dong et al. [5] and the optimal conditions for the calcination of calcium sulphoaluminate cement using pyrite-rich cyanide tailings were confirmed. In another work [6], the dissolution behavior of Al2O3 into molten self-propagating high-temperature synthesis (SHS) metallurgical slags was investigated by employing a rotating cylinder and static dissolution methods; it was found that both temperature and rotating speed could increase the dissolution rate, and the rate limiting step was the diffusion of alumina in the boundary layer. The work in ref [7] determined the optimal roasting conditions for oxidized pellets used in vanadium-titanium magnetite (VTM) ores smelting were as follows: calcination temperature of 1523 K and a calcination time of 20 min. Lai et al. [8] proposed a series of Ti-bearing blast furnace slag-based glass ceramics with various amounts of TiO2, and the crystallization process and mechanical properties were analyzed as well. Pei et al. [9] investigated the use of the gas quenching process for preparing porous bead slag abrasives. Zhang et al. studied the effects of Fe [10] and sintering temperature [11] on the microstructure and mechanical properties of Fe/FeAl2O4 cermet prepared by hot press sintering. Ren et al. [12] showed Mulliken populations, energy bands and density of states of Ti-bearing blast furnace (TBBF) slag using density functional theory (DFT).
The second group of papers focuses on hydrometallurgy, which is a metallurgical process carried out in a solution and includes leaching, purification, and metal preparation. In this field, Li et al. [13] described the feasibility and rationality of a cleaner zinc recovery process using secondary zinc oxide (SZO) coming from the zinc industry in a NH3-NH4HCO3-H2O system. The ultrasonically-enhanced leaching technology for multicomponent and complex nickel containing residue was studied via systematic ultrasonic-conventional comparative experiments by Guo et al. [14] and an ultrasonic leaching kinetics model was established, which provided reliable technological guidance and basic theory of the comprehensive utilization of nickel-containing residue. Further examples of hydrometallurgy are given by Li et al. [15] who designed an electrochemical method that could be used to remove impurities in zinc leaching night and enrich zinc ferrite in the ammonia leaching residue of the solution, and that of ammonia leaching slag after ammonia leaching of zinc hypoxide. Wang et al. [16] investigated the potential of argon oxygen decarburization slag (AODS) for use as a supplementary cementitious material, and explored the mechanisms of stabilization/solidification (S/S) of chromium in cement-based composite pastes.
Last but not the least, in the final group of papers, we mainly studied the application of electrometallurgy. Li et al. [17] prepared EAF stainless steel slag (EAF slag) samples with different carbonation degrees using the slurry-phase accelerated carbonation route, and Guo et al. [18] proposed a new method for oxygen-enriched microwave roasting to improve the dechlorination process. Molten salt electrolysis is a metallurgical process that uses electrical energy to extract and purify metals. Liu et al. [19] studied the electrochemical reduction process of ZnFe2O4 in NaCl-CaCl2 melts and Fe2O3-Al2O3 was electro-deoxidized in an NaCl-KCl system by molten salt electrolysis to prepare FeO/Al2O3 [20]. Li et al. [21] proposed a new way of preparing W-Cu functional gradient materials (FGM) with molten salt electro-deposition. Fang et al. [22] attempted to add oxalic acid and phosphate to molten salt containing lithium ions to realize a two-part precipitation method to extract lithium, and a study of square wave voltammetry and open-circuit-chronopotentiometry showed that the reaction process of LiMn2O4 reduction to manganese in NaCl-CaCl2 molten salt was: Mn (IV)→Mn (III)→Mn (II)→Mn [23].

Funding

Thanks are given to the financial supports from the National Natural Science Foundation of China (52074057), Fok Ying Tung Education Foundation (171111), Joint fund between Shenyang National Laboratory for Materials Science and State Key Laboratory of Advanced Processing and Recycling of Nonferrous Metals (18LHPY015), that to some extent have brought authors to being Guest Editors of this Special Issue.

Acknowledgments

The contribution of all authors is gratefully acknowledged.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Gabasiane, T.S.; Danha, G.; Mamvura, T.A.; Mashifana, T.; Dzinomwa, G. Environmental and Socioeconomic Impact of Copper Slag-A Review. Crystals 2021, 11, 1504. [Google Scholar] [CrossRef]
  2. Lei, H.; Tan, C.; Fan, G.; Huang, D.; Ding, X.; Dang, J. The Crystallization Behavior of TiO2-CaO-SiO2-Al2O3-MgO Pentabasic Slag with a Basicity of 1.1–1.4. Crystals 2021, 11, 583. [Google Scholar] [CrossRef]
  3. Xu, Y.; Song, P.; Cao, W.; Li, H.; Liang, J. Effect of Al2O3-SiO2 Addition on Gehlenite Growth and the Mechanical Performance of Steel Slag. Crystals 2021, 11, 936. [Google Scholar] [CrossRef]
  4. Tian, X.; Kuang, S.; Li, J.; Liu, S.; Feng, Y. Effect of Holding Time of Decarbonization Annealing on Recrystallization in Fe-3.2%Si-0.047Nb% Low-Temperature Oriented Silicon Steel. Crystals 2021, 11, 1209. [Google Scholar] [CrossRef]
  5. Dong, K.; Xie, F.; Wang, W.; Chang, Y.; Chen, C.; Gu, X. Calcination of Calcium Sulphoaluminate Cement Using Pyrite-Rich Cyanide Tailings. Crystals 2020, 10, 971. [Google Scholar] [CrossRef]
  6. Shi, G.Y.; Zhang, T.A.; Dou, Z.H.; Niu, L.P. Dissolution Behavior of Al2O3 Inclusions in CaO-Al2O3 Based Slag Representing Aluminothermic Reduction Slag. Crystals 2020, 10, 1061. [Google Scholar] [CrossRef]
  7. Chen, W.; Dong, Z.; Jiao, Y.; Liu, L.; Wang, X. Preparation, Sintering Behavior and Consolidation Mechanism of Vanadium-Titanium Magnetite Pellets. Crystals 2021, 11, 188. [Google Scholar] [CrossRef]
  8. Lai, F.; Leng, M.; Li, J.; Liu, Q. The Crystallization Behaviors of SiO2-Al2O3-CaO-MgO-TiO2 Glass-Ceramic Systems. Crystals 2020, 10, 794. [Google Scholar] [CrossRef]
  9. Pei, J.; Zhang, Y.; Xing, H.; Ren, Q.; Huo, W.; Wu, J. Beading Mechanism and Performance of Porous Steel Slag Microbead Abrasive. Crystals 2021, 11, 1377. [Google Scholar] [CrossRef]
  10. Zhang, K.; Li, Y.; Wang, C.; Yan, H.; Li, H.; Liang, J.; Dang, J. Effect of Fe on the Microstructure and Mechanical Properties of Fe/FeAl2O4 Cermet Prepared by Hot Press Sintering. Crystals 2021, 11, 204. [Google Scholar] [CrossRef]
  11. Zhang, K.; Li, Y.; Yan, H.; Wang, C.; Li, H.; Liang, J.; Dang, J. Effect of Sintering Temperature on Microstructure and Mechanical Properties of Hot-Pressed Fe/FeAl2O4 Composite. Crystals 2021, 11, 422. [Google Scholar] [CrossRef]
  12. Ren, S.; Su, Z.; Liu, W.; Sun, Y.; Li, X.; Yang, J. Ti3O5 and Al2TiO5 Crystals Flotation Characteristics from Ti-bearing Blast Furnace Slag: A Density Functional Theory and Experimental Study. Crystals 2020, 10, 838. [Google Scholar] [CrossRef]
  13. Li, H.; Zhao, L.; Wang, L.; Liang, J.; Yan, H.; Liu, J. Leaching Kinetics of Secondary Zinc Oxide in a NH3–NH4HCO3–H2O System. Crystals 2021, 11, 496. [Google Scholar] [CrossRef]
  14. Guo, Z.; Guo, P.; Su, G.; Li, F. Study on Ultrasonically-Enhanced Sulfuric Acid Leaching of Nickel from Nickel-Containing Residue. Crystals 2021, 11, 810. [Google Scholar] [CrossRef]
  15. Li, H.; Fu, Y.; Liang, J.; Wang, L.; Yan, H.; Zhao, L. Preparation of Zinc Oxide and Zinc Ferrite from Zinc Hypoxide by Wet Process and Electrochemistry. Crystals 2021, 11, 1133. [Google Scholar] [CrossRef]
  16. Wang, Y.J.; Zeng, Y.N.; Li, J.G.; Zhang, Y.Z. Cementitious Behavior of Argon Oxygen Decarburization Stainless Steel Slag and Its Stabilization on Chromium. Crystals 2020, 10, 876. [Google Scholar] [CrossRef]
  17. Wang, Y.J.; Tao, M.J.; Li, J.G.; Zeng, Y.N.; Qin, S.; Liu, S.H. Carbonation of EAF Stainless Steel Slag and Its Effect on Chromium Leaching Characteristics. Crystals 2021, 11, 1498. [Google Scholar] [CrossRef]
  18. Guo, Z.; Li, F.; Zhang, Q.; Su, G.; Chang, J.; Zhou, H. Microwave Roasting Characteristics of Cuprous Chloride Residue from Zinc Hydrometallurgy. Crystals 2022, 12, 116. [Google Scholar] [CrossRef]
  19. Liu, C.; Liang, J.; Li, H.; Yan, H.; Zheng, S.; Cao, W.; Wang, L. The Electrochemical Reduction Mechanism of ZnFe2O4 in NaCl-CaCl2 Melts. Crystals 2021, 11, 925. [Google Scholar] [CrossRef]
  20. Xu, Y.; Yan, H.; Jing, Z.; Qi, X.; Li, H.; Liang, J. Effect of Fe2O3 on Electro-Deoxidation in Fe2O3-Al2O3-NaCl-KCl System. Crystals 2021, 11, 1026. [Google Scholar] [CrossRef]
  21. Li, H.; Liang, J.; Yan, H.; Li, Y.; Wang, L. Preparation of Gradient Materials with Molten Salts Electrodeposition. Crystals 2021, 11, 590. [Google Scholar] [CrossRef]
  22. Li, H.; Li, H.; Liang, J.; Yan, H.; Cai, Z. Study on the Synergistic Extraction of Lithium from Spent Lithium Cobalt Oxide Batteries by Molten Salt Electrolysis and Two-Step Precipitation Method. Crystals 2021, 11, 1163. [Google Scholar] [CrossRef]
  23. Liang, J.; Zhang, R.; Li, H.; Wang, L.; Cai, Z.; Yan, H.; Cao, W. The Electrochemical Mechanism of Preparing Mn from LiMn2O4 in Waste Batteries in Molten Salt. Crystals 2021, 11, 1066. [Google Scholar] [CrossRef]
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Dang, J.; Li, J.; Lv, X.; Yuan, S.; Leszczyńska-Sejda, K. Metallurgical Slag. Crystals 2022, 12, 407. https://doi.org/10.3390/cryst12030407

AMA Style

Dang J, Li J, Lv X, Yuan S, Leszczyńska-Sejda K. Metallurgical Slag. Crystals. 2022; 12(3):407. https://doi.org/10.3390/cryst12030407

Chicago/Turabian Style

Dang, Jie, Jichao Li, Xuewei Lv, Shuang Yuan, and Katarzyna Leszczyńska-Sejda. 2022. "Metallurgical Slag" Crystals 12, no. 3: 407. https://doi.org/10.3390/cryst12030407

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop