Журналы →  Obogashchenie Rud →  2021 →  №5 →  Назад

BENEFICIATION TECHNOLOGY
Название Material composition analysis and process flow development for the porphyry copper ores of the Yoshlik-1 deposit
DOI 10.17580/or.2021.05.02
Автор Umarova I. K., Makhmarezhabov D. B., Yuldashev Sh. Kh.
Информация об авторе

Tashkent State Technical University (Tashkent, Uzbekistan):

Umarova I. K., Associate Professor, Candidate of Chemical Sciences
Makhmarezhabov D. B., Researcher, makhmarejabov@gmail.com
Yuldashev Sh. Kh., Undergraduate

Реферат

The purpose of this research was to analyze the material composition of porphyry copper ores of the Yoshlik-1 deposit (Uzbekistan) and select a cost-effective processing technology for them. It has been found that the deposit has gold- and molybdenum-bearing ores, composed by 83.84–87.68 % of lithophilic components with a distinct silica prevalence (51.6 %). The mass fractions of quartz and feldspars in the sample are 17 and 40 %, respectively. The total mass fraction of alkali and alkaline earth metals is 16.03 %. The mass fraction of carbon is 0.25 %. All carbon is found in carbonates. The mass fraction of iron is 5.12 %, with oxidized iron being the predominant form. According to the sieve analysis data, the mass fraction of copper in the ore samples is 0.34 %. The grain-size analysis showed a sample gold grade of 0.38 g/t. The valuable components are copper, molybdenum, gold, and silver with the grades of 0.34 wt%, 0.0054 wt%, 0.38 g/t and 0.73 g/t, respectively. A centrifugal concentrator was used for a preliminary assessment of free gold recovery into the gravity concentrate. A series of flotation experiments were carried out to select the collector types and rates for the flotation of ore ground to the 70 % passing –0.074 mm class. Potassium butyl xanthate, 442F, and MX5125 were used as collectors at various rates. Based on the results of the studies, a combined gravity/flotation concentration process was recommended for the ore of the Yoshlik-1 deposit.

Ключевые слова Porphyry copper ore, material composition, valuable components, grade, combined technology, recovery
Библиографический список

1. Khursanov A. Kh. Almalyk mining and metallurgical combine — 70! Gorny Vestnik Uzbekistana. 2019. No. 4. pp. 4–5.
2. Chanturiya V. А., Vaisberg L. A., Kozlov А. P. Promising trends in investigations aimed at all-round utilization of mineral raw materials. Obogashchenie Rud. 2014. No. 2. pp. 3–9.
3. Orudzhov U. S., Avladov I. B., Boboev A. A., Yuldashev A. B. Implementation of international reporting standards for the porphyry copper deposits Kalmakyr and Yoshlik-1. Gorny Vestnik Uzbekistana. 2019. No. 4. pp. 23–24.
4. Chekushin V. S., Oleinikova N. V., Shubakova M. A. Modern processes of copper concentration from mineral raw materials. Russian Metallurgy (Metally). 2015. No. 13. pp. 1069–1075.
5. Jacquesa S., Greet C. J., Bastin D. Oxidative weathering of a copper sulfide ore and its influence on pulp chemistry and flotation. Minerals Engineering. 2016. Vol. 99. pp. 52–59.
6. Baatarkhuu Zh. Influence of the material composition of the processed ores on the beneficiation technology. Tsvetnye Metally. 2007. No. 9. pp. 34–37.
7. Umarova I. K., Ibragimov J. M., Kholmatova S. U., Makhmarejabov D. B. Development of an effective scheme for the enrichment of copper-molybdenum ores using new reagents-collectors. Inzhenernye Resheniya. 2020. No. 10. pp. 4–9.
8. Umarova I. K., Ibragimov J. M. The study of the features of the substantial composition of copper-molybdenum ore Kalmakyr deposits. Proc. of the 3rd International scientific and technical conference «Innovanive development of resourcesaving technologies and sustainable use of natural resources». Petrosani, Romania, Oktober 26, 2020. pp. 144–147.
9. Senchenko A. E., Kulikov Yu. V., Aksenov A. V. Process characteristics of Udokan copper deposit ores, defining the efficient processing flowsheet and prospective ways of the process improvement. Tsvetnye Metally. 2017. No. 10. pp. 14–17. DOI: 10.17580/tsm.2017.10.04.
10. Prakash R., Majumder S. K., Singh A. Flotation technique: its mechanisms and design parameters. Chemical Engineering and Processing – Process Intensification. 2017. Vol. 127. pp. 249–270.
11. Bhambhani T., Nagaraj D. R., Yavuzkan O. Improving flotation recovery of oxide copper minerals. IMPC XXVIII, Quebec, September 11–15, 2016. Paper 469. 13 p.
12. Semushkina L., Abdykirova G., Turysbekov D., Narbekova S., Kaldybaeva Z., Mukhamedilova A. About the possibility of copper-bearing ore flotation processing of with the use of a combined flotation reagent. Metalurgija. 2021. Vol. 60, No. 3–4. pp. 391–394.
13. Zimbovsky I. G., Ivanova T. A., Chanturia V. A., Chanturia E. L. Complex-forming collector for selective chalcopyrite flotation. Fiziko-tekhnicheskie Problemy Razrabotki Poleznykh Iskopaemykh. 2015. No. 3. pp. 124–129.
14. Sherembaeva R. T., Omarova N. K., Akimbekova B. B., Katkeeva G. L. Usage of new flotation agent «P» during sulfide copper ores flotation. Tsvetnye Metally. 2014. No. 6. pp. 12–16.

Language of full-text русский
Полный текст статьи Получить
Назад