| ArticleName |
Исследование очистки дренажных вод хвостового хозяйства
медной обогатительной фабрики |
| References |
1. Majid Shahhosseini, Faramarz Doulati Ardejaniab, Mehdi Amini, Luna Ebrahimi, Abbas Mohebi Poorkani. Environmental geochemistry of As and Pb in a copper lowgrade dump, Miduk copper mine, Kerman province, SE Iran // Journal of Geochemical Exploration. 2019. Vol. 198. P. 54–70. 2. Stepanov A. S., Zhukova I., Large R. R., Danyushevsky L. V., Meffre S., Belousov I. A., Kiseeva E. S., Goemann K. Phase relations of arsenian pyrite and arsenopyrite // Ore Geology Reviews. 2021. Vol. 136. DOI: 10.1016/j.oregeorev.2021.104285. 3. Fischer A., van Wezel A. P., Hollender J., Cornelissen E., Hofman R., van der Hoek J. P. Development and application of relevance and reliability criteria for water treatment removal efficiencies of chemicals of emerging concern // Water Research. 2019. Vol. 161. P. 274–287. 4. Myagkaya I. N., Lazareva E. V., Zhmodik S. M., Zaikovskii V. I. Interaction of natural organic matter with acid mine drainage: Authigenic mineralization (case study of Ursk sulfide tailings, Kemerovo region, Russia) // Journal of Geochemical Exploration. 2020. Vol. 211. DOI: 10.1016/j.gexplo.2019.106456. 5. Nureev R. R., Pashkevich M. A., Isakov A. E. Assessment of the technogenic impact of the Korkinsky coal mine // Topical issues of rational use of natural resources. Proc. of the International forum-contest of young researchers, April 18–20, 2018, St. Petersburg, Russia. CRC Press, 2019. P. 371–377. 6. Fan R., Qian G., Short M. D., Schumann R. C., Brienne S., Smart R. St. C., Gerson A. R. Passivation of pyrite for reduced rates of acid and metalliferrous drainage using readily available mineralogic and organic carbon resources: A laboratory mine waste study // Chemosphere. 2021. Vol. 285. DOI: 10.1016/j.chemosphere.2021.131330. 7. Эпов М. И., Юркевич Н. В., Бортникова С. Б., Карин Ю. Г., Саева О. П. Определение состава горнорудных отходов геохимическими и геофизическими методами (на примере хвостохранилища Салаирского горно-обогатительного комбината // Геология и геофизика. 2017. Т. 58, № 12. С. 1944–1954. 8. Lazorenko G., Kasprzhitskii A., Shaikh F., Krishna R. S., Mishra J. Utilization potential of mine tailings in geopolymers: Physicochemical and environmental aspects // Process Safety and Environmental Protection. 2021. Vol. 147. P. 559–577. 9. Rybnikova L. S., Rybnikov P. A. Hydrogeochemistry of the abandoned sulfide mines of the Middle Urals (Russia) // Procedia Earth and Planetary Science. 2017. Vol. 17. P. 849–852. 10. Muncanab J., Matovica V., Nikolic S., Askovic J., Tsenkova R. Aquaphotomics approach for monitoring different steps of purification process in water treatment systems // Talanta. 2020. Vol. 206. DOI: 10.1016/j.talanta.2019.120253. 11. Muravyov M. I., Fomchenko N. V. Biohydrometallurgical treatment of old flotation tailings of sulfide ores containing non-nonferrous metals and gold // Minerals Engineering. 2018. Vol. 122. P. 267–276.
12. Cánovas C. R., Macías F., Basallote M. D., Olías M., Nieto J. M., Préez-López R. Metal(loid) release from sulfide-rich wastes to the environment: The case of the Iberian Pyrite Belt (SW Spain) // Current Opinion in Environmental Science & Health. 2021. Vol. 20. DOI: 10.1016/j.coesh.2021.100240. |