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RARE METALS, SEMICONDUCTORS
Название Production of Carbon Adsorbents from Wheat Grain Processing Waste for Rhenium Adsorption
DOI 10.17580/tsm.2021.11.05
Автор Tasibekov Kh. S., Bekishev Zh. Zh., Khavaza T. N., Tokpaev R. R.
Информация об авторе

Centre for Physical and Chemical Research and Analysis at Al-Farabi Kazakh National University, Almaty, Republic of Kazakhstan:

Kh. S. Tasibekov, Associate Professor, Candidate of Chemical Sciences Zh. Zh. Bekishev, Research Fellow, e-mail: zhenis_bekishev@mail.ru
T. N. Khavaza, Master of Science, PhD Student
R. R. Tokpaev, Head of the Laboratory, Candidate of Chemical Sciences

Реферат

In the present work, activated carbons from wheat grain production waste (WGPW), modified by 3, 5 and 7 % wt. ammonium nitrate, were obtained by heat treatment in an inert argon atmosphere and subsequent activation with superheated water vapor. The temperature of 750 oС is the optimal temperature of carbonization (pyrolysis) and activation of the WGPW for obtaining a carbon-containing sorbent with the highest iodine adsorption value of 53.74% from the 0.7-mm-sized crude fiber of the WGPW. The impregnation of NH4NO3 in the amount of (3.0, 5.0 and 7.0%) into the composition of the initial charge of the WGPW, which is the optimal condition for the chemical modification of the obtaining carbon sorption material. Their main adsorption characteristics (specific surface area, adsorption activity of iodine and methylene blue), as well as surface morphology were studied using the scanning electron microscopy method. Activated carbon, based on the wheat grain production waste (WGPW) with 7% wt. NH4NO3 (Activated Carbon-7) — 213 m2/g, 53.74% and 138 mg/g respectively, has a high specific surface area, adsorption activity of iodine and methylene blue. The obtained photomicrographs of various sizes prove that the studied sorbing agents preserve the non-degraded body of the porous hackberry of plant tissue with a pore diameter of 1–10 μm. Cultural treatment of the initial charge with ammonium saltpeter (NH4NO3) improves the selectivity of the obtained sorbing agent for the rhenium sorption. The derived sorbing agents were studied in the processes of static sorption of rhenium from simulated solution. Activated carbon-7 showed a high degree of rhenium recovery from simulated solution — 99 %.

Ключевые слова Wheat grain proсeining waste, activated carbon, ammonium nitrate, carbonization, steam-gas activation, sorption, rhenium
Библиографический список

1. Shen L., Tesfaye F., Li X., Lindberg D., Taskinen P. Review of rhenium extraction and recycling technologies from primary and secondary resources. Minerals Engineering. 2021. Vol. 161. 106719. DOI: 10.1016/j.mineng.2020.106719.
2. King R. U., Brobst D. A., Pratt W. P. United States mineral resources. Geological survey: professional paper. U.S. Government Printing Office, Washington. 1973. Iss. 820. p. 571.
3. Palant A. A., Troshkina I. D., Chekmarev A. M. The metallurgy of Rhenium. Moscow : Nauka, 2007. 298 p.
4. Safirova E. The Mineral Industry of Kazakhstan. U. S. Geological survey Minerals Yearbook. 2013. pp. 1–13.
5. Abisheva Z. S., Zagorodnyaya A. N., Bekturganov N. S. Review of technologies for rhenium recovery from mineral raw materials in Kazakhstan. Hydrometallurgy. 2011. Vol. 109, No 1-2. pp. 1–8.
6. Abisheva Z. S., Zagorodnyaya A. N. Hydrometallurgy in rare metal production technology in Kazakhstan. Hydrometallurgy. 2002. Vol. 63, No 1. pp. 55–63.
7. Abisheva Z. S., Zagorodnyaya A. N. The contribution of the Institute of Metallurgy and Ore Beneficiation to setting up the production of rhenium and osmium-187 isotopes in Kazakhstan. Vestnik Moskovskogo instituta tonkoy khimicheskoy tekhnologiy. 2013. Vol. 8, No. 3. pp. 34–48.
8. Abisheva Z. S., Zagorodnyaya A. N., Bukurov T. N., Teleshev K. D., Yudin A. B. et al. Raising the rhenium recovery at the Zhezkazgan Smelter. Tsvetnye Metally. 2003. No. 6. pp. 69–73.
9. Isabaev S. M., Kim V. A., Kuzgibekova Kh. M., Bogoyavlenskaya O. A., Zhinova E. V. Extraction of rhenium from rhenium-lead containing products by adsorption. Sorbtsionnye i khromatograficheskie protsessy. 2006. Vol. 6, Iss. 6. pp. 1187–1191.
10. Ponomareva E. I., Zagorodnyaya A. N., Abisheva Z. S. Development and adoption of a process to recover rare dispersed metals from the mineral resources of Kazakhstan. Kompleksnoe ispolzovanie mineralnogo syrya. 1995. No. 3. pp. 61–68.
11. Troshkina I. D., Naing K. Z., Ushanova O. N., P’o V., Abdusalomov A. A. Recovery of rhenium from sulfuric acid solutions with activated coals. Russian Journal of Applied Chemistry. 2006. Vol. 79, No. 9. pp. 1419–1422.
12. Troshkina I. D., Ushakova O. N., Mukhin V. M., Zubova I. D., Girda T. V. Adsorption of rhenium from sulphuric acid solutions with active coals. Izvestiya vysshikh uchebnykh zavedeniy. Tsvetnaya metallurgiya. 2005. No. 3. pp. 38–41.
13. Grekhov A. P., Piae P. A., Vey M. A., Troshkina I. D. Use of active coals obtained from waste plant materials to recover rhenium from sulphuric acid solutions. Uspekhi v khimii i khimicheskoy tekhnologii. 2016. Vol. 30, No. 6. pp. 41–43.
14. Seo S. Y., Van Seo Choy, Te Gin Yang et al. Recovery of rhenium and molybdenum from a roaster fume scrubbing liquor by adsorption using activated carbon. Hydrometallurgy. 2012. Vol. 129-130. pp. 145–150.
15. Ferron C. G., Seeley L. E. Rhenium recovery. Patent 8956582 US. Published 2010.
16. Shaymerdenova D. A. Kazakhstan: Waste-free processing of crops. Kazakh-Zerno.kz. 08.05.2011.
17. Masih M., Anthony P., Siddiqui S. Removal of Cu (II) ion from aqueous solutions by Rice Husk Carbon-Chitosan Composite gel (CCRH) using Response Surface Methodology. Environmental Nanotechnology. Monitoring and Management. 2018. Vol. 10. pp. 189–198.
18. Zhong Q. Q., Yuea Q. A., Lia Q., Gaoa B. Y., Shandong X. X. Removal of Cu(II) and Cr(VI) from wastewater by an amphoteric sorbent based on cellulose-rich biomass. Carbohydrate Polymers. 2014. Vol. 111. pp. 788–796.
19. Pan J., Jiang J., Xu R. Adsorption of Cr (III) from acidic solutions by crop straw derived biochars. Journal of Environmental Sciences. 2013. Vol. 25, Iss. 10. pp. 1957–1965.
20. Wu Y., Fan Y., Zhang M., Ming Z., Yang S. et al. Functionalized agricultural biomass as a low-cost adsorbent: utilization of rice straw incorporated with amine groups for the adsorption of Cr(VI) and Ni(II) from single and binary systems. Biochemical Engineering Journal. 2016. Vol. 105. Part A. pp. 27–35.
21. Bagreev A. A., Ledovskikh A. V., Tarasenko Yu. A. Modelling of porous carbon adsorbents formed during steam-gas activation. Zhurnal prikladnoy khimii. 1997. Vol. 70, No. 4. pp. 572–577.
22. Kishibayev K. K, Kabulov A. T., Tokpayev R. R., Atchabarova A. A., Yefremov S. A. et al. Activated carbons from the compressed plant materials (coconut shell) and copolymers of furfural. Inzynieria Mineralna. 2016. Vol. 17, Iss. 1. pp. 181–188.
23. Kishibayev K. K., Tokpaev R. R., Atchabarova A. A., Efremov S. A., Voropaeva N. L. et al. Activated carbons of varied nature in recovery of gold. Russian Journal of Applied Chemistry. 2016. Vol. 89, No. 3. pp. 381–387.
24. GOST 6217–74. Wood crushed activated carbon. Specifications. Introduced: 01.01.1976.
25. GOST 4453–74. Active adsorpting powder charcoal. Specifications. Introduced: 01.01.1976.
26. Rybakova A. D., Zlobina E. V. Use of nitrate modified activated carbon for rhenium adsorption. Proceedings of the International Science Conference of Students and Young Researchers Farabi World (Almaty, 11–12 April 2017). Almaty : Kazakhskiy natsionalnyi universitet imeni al-Farabi, 2018. p. 197.

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