[]
- Authors: Klimenko N.N.1,2, Kulumbegov R.V.1, Delitzin L.M.1, Voronina A.V.2
-
Affiliations:
- United Institute of High Temperatures of the Russian Academy of Sciences
- Mendeleev University of Chemical Technology of Russia
- Issue: Vol 61, No 5–6 (2025)
- Pages: 334-345
- Section: Articles
- URL: https://journal-vniispk.ru/0002-337X/article/view/308716
- DOI: https://doi.org/10.31857/S0002337X25030096
- EDN: https://elibrary.ru/lbtftx
- ID: 308716
Cite item
Abstract
Keywords
About the authors
N. N. Klimenko
United Institute of High Temperatures of the Russian Academy of Sciences; Mendeleev University of Chemical Technology of RussiaIzhorskaya str., 13, bld. 2, Moscow, 127412 Russia; Heroes of Panfilov street, 20, Moscow, 125480 Russia
R. V. Kulumbegov
United Institute of High Temperatures of the Russian Academy of SciencesIzhorskaya str., 13, bld. 2, Moscow, 127412 Russia
L. M. Delitzin
United Institute of High Temperatures of the Russian Academy of Sciences
Email: delitzin@ihed.ras.ru
Izhorskaya str., 13, bld. 2, Moscow, 127412 Russia
A. V. Voronina
Mendeleev University of Chemical Technology of RussiaHeroes of Panfilov street, 20, Moscow, 125480 Russia
References
- Song Y., Zha Z. Recovery of Lithium From Spent Lithium-Ion Batteries Using Precipitation and Electrodialysis Techniques // Sep. Purif. Technol. 2018. V. 206. P. 335–342. https://doi.org/10.1016/j.seppur.2018.06.022
- Martin G., Rentsch L., Höck M., Bertau M. Lithium Market Research — Global Supply, Future Demand and Price Development // Energy Storage Mater. 2017. V. 6. P. 171–179. https://doi.org/10.1016/j.ensm.2016.11.004
- Владимиров А.Г., Ляхов Н.З., Загорский В.Е., Макагон В.М. и др. Литиевые месторождения сподуменовых пегматитов Сибири // Химия в интересах устойчивого развития. 2012. № 20. С. 3–20.
- Морозова Л.Н. Колмозeрское литиевое месторождение редкометальных пегматитов: новые данные по редкоэлементному составу (Кольский полуостров) // Литосфера. 2018. Т. 18. № 1. С. 82–98.
- Морозова Л.Н., Серов П.А., Кунакузин Е.Л., Борисенко Е.С. и др. Кольский редкометальный пегматитовый пояс: основные черты геологического строения // Тр. Ферсмановской научной сессии ГИ КНЦ РАН. 2020. Т. 17. С. 374–378. https://doi.org/10.31241/FNS.2020.17.071
- Song Yu., Zhao T., He L., Zhao Zh., Liu X. A Promising Approach for Directly Extracting Lithium from α-Spodumene by Alkaline Digestion and Precipitation as Phosphate // Hydrometallurgy. 2019. V. 189. 105141. https://doi.org/10.1016/j.hydromet.2019.105141
- Zhou H., Cao Zh. et.al. Selective and Efficient Extraction of Lithium from Spodumene Via Nitric Acid Pressure Leaching // Chem. Eng. Sci. 2024. V. 287. 119736. https://doi.org/10.1016/j.ces.2024.119736
- Alhadad M.F., Oskierski H.C., Johannes Ch. et al. Pressure Leach of β-Spodumene with Carbonic Acid: Weak Acid Process for Extraction of Lithium // Miner. Eng. 2023. V. 204. 108398. https://doi.org/10.1016/j.mineng.2023.108398
- Gustavo D.R., Resentera A.C. et al. Efficient Extraction of Lithium from β-Spodumene by Direct Roasting with NaF and Leaching // Chem. Eng. Res. Des. 2019. V. 150. Р. 320–326. https://doi.org/10.1016/j.cherd.2019.08.009
- Resentera A.C., Marcelo R.E., Rodriguez M.H. Low-temperature Lithium Extraction from α-Spodumene with NH4HF2: Modeling and Optimization by Least Squares and Artificial Neural Networks // Chem. Eng. Res. Des. 2021. V. 167. Р. 73–83. https://doi.org/10.1016/j.cherd.2020.12.023
- Nasim Kh., Salakjani P.S., Nikoloski A.N. Acid Roasting of Spodumene: Microwave Vs. Conventional Heating // Miner. Eng. 2019. V. 138. P. 161–167. https://doi.org/10.1016/j.mineng.2019.05.003
- Делицын Л.М., Кулумбегов Р.В., Синельщиков В.А., Попель О.С., Сульман М.Г. Ликвационная плавка системы LiAlSi2O6–Na2SO4–NaF как метод получения фторида лития // Неорган. материалы. 2022. Т. 58. № 10. С. 1101–1110. https://doi.org/10.31857/S0002337X22100062
- Кулумбегов Р.В., Делицын Л.М., Беляев И.А., Клименко Н.Н., Тарасенко А.Б., Попель О.С. Извлечение лития из β-сподумена методом ионного обмена в расплавах солей натрия // Неорган. материалы. 2023. Т. 59. № 8. С. 951–956. https://doi.org/10.31857/S0002337X23080092
- Буравчук Н.И., Гурьянова О.В. Использование техногенного сырья в производстве нерудных строительных материалов // Изв. вузов. Северо-Кавказский регион. Технические науки. 2015. № 1 (182). С. 111–117.
- Lemougna P.N., Yliniemi J., Ismailov A. et al. Spodumene Tailings for Porcelain and Structural Materials: Effect of Temperature (1050–1200°C) on the Sintering and Properties // Miner. Eng. 2019. V. 141. 105843. https://doi.org/10.1016/j.mineng.2019.105843
- Lemougna P.N., Yliniemi J., Ismailov A. et al. Recycling Lithium Mine Tailings in the Production of Low Temperature (700–900°C) Ceramics: Effect of Ladle Slag and Sodium Compounds on the Processing and Final Properties // Constr. Build. Mater. 2019. V. 221. P. 332–344. https://doi.org/10.1016/j.conbuildmat.2019.06.078
- Павлушкин Н.М. Основы технологии ситаллов. М.: Стройиздат, 1979. 164 с.
- Эйтель В. Физическая химия силикатов. М.: Изд-во иностр. лит., 1962. 1056 с.
- Hrubý A. Evaluation of Glass-Forming Tendency by Means of DTA // Czech. J. Phys. B. 1972. V. 22 (11). P. 1187–1193.
- Zhao Y., Chen D.F., Bi Y.Y. et al. Preparation of Low Cost Glass-Ceramics from Molten Blast Furnace Slag // Ceram. Int. 2012. V. 38. № 3. P. 2495–2500. https://doi.org/10.1016/j.ceramint.2011.11.018
- Luo Zh., He F., Zhang W. et al. Effects of Fluoride Content on Structure and Properties of Steel Slag Glass-Ceramics // Mater. Chem. Phys. 2020. V. 242. 122531. https://doi.org/10.1016/j.matchemphys.2019.122531
- Felippi de Lima L., Zorzi J.E., Cruz R.C.D. Basaltic Glass-Ceramic: a Short Review // Bol. Soc. Esp. Cerám. 2022. V. 61. P. 2–12. https://doi.org/10.1016/j.bsecv.2020.07.005
Supplementary files
