Журналы →  Gornyi Zhurnal →  2023 →  №7 →  Назад

PROCESSING AND COMPLEX USAGE OF MINERAL RAW MATERIALS
Название Stability of anion exchangers in the CIP process with leaching and adsorption of uranium at PIMCU
DOI 10.17580/gzh.2023.07.11
Автор Tatarnikov A. V., Andreeva S. I., Meshkov E. Yu., Soloviev A. A.
Информация об авторе

VNIPIpromtekhnologii JSC, Moscow, Russia:

A. V. Tatarnikov, Group Head
S. I. Andreeva, Specialist of Ione Exchange Group
E. Yu. Meshkov, Head of laboratory, Meshkov.E.J@vnipipt.ru
A. A. Soloviev, Department Head

Реферат

The implemented testing of ion exchange resins applicable at PIMCU enabled development of a new lab-scale express-test procedure for anion exchange resins, including adsorption of ion exchange resins with ball milling of saturated ion exchange resins in each adsorption cycle. Using the procedure with the expanded selection criteria of adsorbents with regard to their stability in the near industrial conditions made it possible to reduce the number of samples meant for the long-term semi-commercial trial. The authors analyzed the influence of silicic acid on adsorption properties of ion exchange resins. The characteristics of ion exchange resins, which influence stability of the latter in process solutions containing much silicium, are determined, namely, the porous structure and the swelling ratio. The mechanism of disintegration of anion exchange resin grains in the CIP process under conditions of high silicium content is proposed. This mechanism consists in formation of a silicon envelope around an ion exchange resin grain to prevent natural change of the volume of the grain in the adsorption and desorption media, which can lead to fracturing of the inner part of the grain in saturation with uranium. The concurrent semi-commercial trials proved efficiency of the proposed lab-scale testing procedure. Thanks to the expanded testing criteria, the new procedure allows early-stage identification of the samples best suitable for the further analysis. The economic benefit of the procedure is the reduced expenditures connected with purchasing of ion exchange resin samples and the resources saving in the further testing.

Ключевые слова Pulp, adsorptive recovery, anion exchange resin, uranium, silicium, exchange capacity
Библиографический список

1. Balikhin A. V. Uranium mineral-resources: The current state and perspectives for development. Review. Kompleksnoe ispolzovanie mineralnogo syrya. 2019. No. 1(308). pp. 36–50.
2. Golovko V. V., Litvinenko V. G., Meshkov E. Yu. Processing technology for carbonate ore from the Argun deposit. Gornyi Zhurnal. 2021. No. 3. pp. 86–91.
3. Svyatetsky V. S., Polonyankina S. V., Ermakov A. G. State and prospects of development of the uranium mining industry of the Russian Federation. Razvedka i okhrana nedr. 2022. No. 8. pp. 16–22.
4. Leading Research Institute for Chemical Technology Celebrates its 60th Anniversary : Festive Collection. Moscow : OOO “Leonardo-Dizayn”, 2011. 528 p.
5. Tarkhanov A. V., Kuzin R. E. Seventy years together. Gornyi Zhurnal. 2021. No. 3. pp. 35–39.
6. Krupyanko I. M., Ermakov A. G., Shchukin S. I., Tolstobrov V. A. Russian uranium is in reliable hands. The 50th anniversary of the Priargunsky Industrial Mining and Chemical Union is dedicated. Ratsionalnoe osvoenie nedr. 2018. No. 3. pp. 35–42.
7. Sole K. C., Mooiman M. B., Hardwick E. Ion Exchange in Hydrometallurgical Processing: An Overview and Selected Applications. Separation & Purification Reviews. 2018. Vol. 47, Iss. 2. pp. 159–178.
8. Vodolazov L. I., Shatalov V. V. Sorption-Extraction Processes in Uranium Hydrometallurgy: Processing of Monometallic Uranium Ores. Atomic Energy. 2001. Vol. 90, No. 3. pp. 188–192.
9. Nesterov Yu. V. Ionites and ion-exchange. Sorption technology during the mining of uranium and other metals by in-situ leaching. Moscow, 2007. 480 p.
10. Vinnitskiy V. A., Chugunov A. S., Rumyantsev A. V., Doilnitsin V. A. Uranium adsorption from sulfuric acid media and removal of impurities using high-basis anion exchangers : Tutorial. Saint-Petersburg : SPbGTI (TU), 2020. 36 p.
11. Hermassi M., Granados M., Valderrama C., Skoglund N., Ayora C. et al. Impact of functional group ty pes in ion exchange resins on rare earth element recovery from treated acid mine waters. Journal of Cleaner Production. 2022. Vol. 379. 134742. DOI: 10.1016/j.jclepro.2022.134742
12. Guangyu Duan, Zhanfang Cao, Hong Zhong, Xin Ma, Shuai Wang. Highly efficient poly(6-acryl oylamino-N-hydroxyhexanamide) resin for adsorption of heavy metal ions. Journal of Environmental Management. 2022. Vol. 308. 114631. DOI: 10.1016/j.jenvman.2022.114631
13. Zhuravlev V. A., Ushakov G. V. Swelling kinetics of styrene and divinylbenzene copolymers in organic dissolvers. Vestnik Kuzbasskogo gosudarstvennogo tekhnicheskogo universiteta. 2006. No. 2(53). pp. 59–62.
14. Volkov V. A. Colloid chemistry. Surface phenomena and disperse systems : Textbook. 2nd revised edition. Saint-Petersburg : Lan, 2022. 672 p.
15. Wenlin Nie, Shuming Wen, Yongjun Xian, Yirong Li, Guang Han et al. Leaching rubidium from a low- grade rubidium-bearing aluminosilicate ore. Journal of Materials Research and Technology. 2021. Vol. 13. pp. 1546–1554.
16. Spirin E. K., Vodolazov L. I., Laskorin B. N., Arkharova I. I., Komanetskiy N. B. Nature and relationships of sorption of silicic acids by ion-exchangers. Journal of Applied Chemistry of the USSR. 1984. Vol. 57, No. 5. pp. 997–1000.
17. Litvinenko V. G., Myazin V. P., Dorzhieva A. G. Studies of the composition of silica process for the extraction of uranium ore pulps of the anion exchange resin. GIAB. 2013. No. 5. pp. 97–100.
18. Niibori Y., Kasuga Y., Yoshikawa H., Tanaka K., Tochiyama O. et al. An Experimental Approach on the Effect of Rock Alteration on Sorption Behavior. MRS Online Proceedings Library. 2006. Vol. 932. 15.1. DOI: 10.1557/PROC-932-15.1

Language of full-text русский
Полный текст статьи Получить
Назад