Вестник МГТУ, 2021, Т. 24, № 1.
Вестник МГТУ. 2021. Т. 24, № 1. С. 107-117. DOI: https://doi.org/10.21443/1560-9278-2021-24-1-107-117 Никонов В. В., Лукина Н. В., Безель В. С. [и др.]. Рассеянные элементы в бореальных лесах. М. : Наука, 2004. 410 с. Орлов Д. С., Чуков С. Н. II всероссийская конференция "Гуминовые вещества в биосфере" // Почвоведение. 2003. № 8. С. 1019-1022. Панов Е. Н. Поведение элементов-примесей при обработке микроклина раствором органических кислот // Геохимия. 1980. № 10. С. 1568-1572. Природа и коренное население Арктики под влиянием изменения климата и индустриального освоения: Мурманская область / под ред. Е. А. Боровичева, Н. В. Вронского. М. : Графит, 2020. 180 с. Савенко А. В., Савенко В. С., Дубинин А. В. Выщелачивание микроэлементов из горных пород под действием органических кислот // Вестник Московского университета. Сер. 4. Геология. 2017. № 6. С. 70-76. Твердов А. А. Редкие металлы Ловозерского массива // Редкие земли. 2016. № 3(8). С. 164-169. Яковлев Б. А. Климат Мурманской области. Мурманск : Кн. изд-во, 1961. 180 с. Amos R. T., Blowes D. W., Bailey B. L., Sego D. C. [et al.]. Waste-rock hydrogeology and geochemistry // Applied Geochemistry. 2015. Vol. 57. P. 140-156. DOI: https://doi.org/10.1016/j.apgeochem.2014.06.020. Askaer L., Schmidt L. B., Elberling B., Asmund G. [et al.]. Environmental impact on an arctic soil - plant system resulting from metals released from coal mine waste in Svalbard (78° N) // Water, Air, and Soil Pollution. 2008. Vol. 195, Iss. 1-4. P. 99-114. DOI: https://doi.org/10.1007/s11270-008-9730-z. Beckwith R., Butler J. Aspect of the chemistry of soil organic matter. Soil, an Australian viewpoint. Vic CSIRO/Academic Press, 1983. P. 561-581. Hausrath E. M., Neaman A., Brantley S. L. Elemental release rates from dissolving basalt and granite with and without organic ligands // American Journal of Science. 2009. Vol. 309, Iss. 8. P. 633-660. DOI: https://doi.org/10.2475/08.2009.01. Lindsay M. B. J., Moncur M. C., Bain J. G., Jambor J. L. [et al.]. Geochemical and mineralogical aspects of sulfide mine tailings // Applied Geochemistry. 2015. Vol. 57. P. 157-177. DOI: https://doi.org/10.1016/ j .apgeochem.2015.01.009. Moncur M. C., Ptacek C. J., Hayashi M., Blowes D. W. [et al.]. Seasonal cycling and mass-loading of dissolved metals and sulfate discharging from an abandoned mine site in northern Canada // Applied Geochemistry. 2013. Vol. 41. P. 176-188. DOI: https://doi.org/10.1016/j.apgeochem.2013.12.007. Mostofa K. M. G., Liu C.-q., Feng X., Yoshioka T. [et al.]. Complexation of dissolved organic matter with trace metal ions in natural waters // Photobiogeochemistry of Organic Matter. Principles and Practices in Water Environments / eds.: K. M. G. Mostofa [et al.]. Springer-Verlag Berlin Heidelberg, 2013. P. 769-849. DOI: https://doi.org/10.1007/978-3-642-32223-5_9. Pourret O., Davranche M., Gruau G., Dia A. Organic complexation of rare earth elements in natural waters: Evaluating model calculations from ultrafiltration data // Geochimica et Cosmochimica Acta. 2007. Vol. 71, Iss. 11. P. 2718-2735. DOI: https://doi.org/10.1016/j.gca.2007.04.001. Ramos S. J., Dinali G. S., Oliveira C., Martins G. C. [et al.]. Rare earth elements in the soil environment // Current Pollution Reports. 2016. Vol. 2, Iss. 1. P. 28-50. DOI: https://doi.org/10.1007/s40726-016-0026-4. Tang J., Johannesson K. H. Rare earth elements adsorption onto Carrizo sand: Influence of strong solution complexation // Chemical Geology. 2010. Vol. 279, Iss. 3-4. P. 120-133. DOI: https://doi.org/10.1016/ j.chemgeo.2010.10.011. Wang Xiangke, Dong Wenming, Dai Xiongxin, Wang Aixia [et al.]. Sorption and desorption of Eu and Yb on alumina: Mechanisms and effect of fulvic acid // Applied Radiation and Isotopes. 2000. Vol. 52, Iss. 2. P. 165-173. DOI: https://doi.org/10.1016/s0969-8043(99)00133-5. References Amosov, P. V., Baklanov, A. A., Masloboev, V. A. 2017. The results of assessing atmospheric pollution during dusting of the tailing dump (based on three-dimensional modeling). News o f the Higher Institutions. Mining Journal, 6, pp. 87-94. (In Russ.) Arzhanova, V. S., Vertel, E. F., Elpatievsky, P. V. 1981. Trace elements and soluble organic matter of lysimetric waters. Soviet Soil Science, 11, pp. 50-60. (In Russ.) Volkov, I. 2016. Reactions of microelements with humic acids as a basis for sorption decontamination and purification of technogenic waste. Abstract of Ph.D. dissertation. Yekaterinburg. (In Russ.) Goryachev, A., Laschuk, V., Krasavtseva, E., Alfertyev, N. et al. 2020. Geoecological assessment of the current state of tailing dumps of different ages at the Karnasurt mine. Trudy Fersmanovskoy nauchnoy sessii GI KNTS RAN, 17, pp. 128-132. DOI: https://doi.org/10.31241/FNS.2020.17.023. (In Russ.) Elpatevsky, P. V., Lutsenko, T. N. 1990. The role of water-soluble organic substances in the transport of technogenic metals along the profile of mountain burozem. Soviet Soil Science, 6, pp. 30-42. (In Russ.) 115
Made with FlippingBook
RkJQdWJsaXNoZXIy MTUzNzYz