Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The purpose of this study was a detailed analysis of all aspects related to the impact of objects and structures of the planned economic activity on the environment on the territory of the Semizbay deposit in the Republic of Kazakhstan. In the course of the work, the geoecological characteristics of the Semizbay deposit were presented. The analysis of data on the state of the components of the natural environment, based on the materials of earlier studies at the facility, was carried out. On the basis of the actual material, a list of priority pollutants subject to monitoring was compiled. The methodology and organization of the projected works are given. The types, conditions, scope of work were indicated. During the study, the following were carried out: soil sampling was carried out in the vicinity of the deposit, radiochemical analysis, and X-ray diffraction analysis. As a result of the study, a program of geoecological research was developed on the territory of the deposit: the content of radionuclides and the mineralogical composition of the sample were determined, which can become an alternative for further research on the territory of the enterprise.
Czasopismo
Rocznik
Tom
Strony
260--270
Opis fizyczny
Bibliogr. 8 poz., rys., tab.
Twórcy
autor
- Federal State Budget Educational Institution of Higher Education, Industrial University of Tyumen, Volodarskogo street 38, 652001 Tyumen, Russia
Bibliografia
- 1. Chimenos J.M., Fernández A.I., Miralles L., Segarra M., Espiell F. 2003. Short-term natural weathering of MSWI bottom ash as a function of particle size. Waste Management, 23(10), 887–895.
- 2. Coetzee J.J., Bansal N., Chirwa E.M.N. 2020 Chromium in environment, its toxic effect from chromitemining and ferrochrome industries, and its possible bioremediation. Exposure and Health, 12, 51–62.
- 3. Dou X., Ren F., Nguyen M.Q., Ahamed A., Yijn K., Chan W.P., Chang V.W.C. 2017. Review of MSWI bottom ash utilization from perspectives of collective characterization, treatment and existing application. Renewable and Sustainable Energy Reviews, 79, 24–38.
- 4. Gonzales M.L., Blanc D., de Brauer C. 2019. MultiAnalytical approach and geochemical modeling for mineral trace element speciation in MSWI bottomash. Waste and Biomass Valorization, 10, 547–560.
- 5. Lukowski A., Olejniczak J.I. 2020. Fractionation of cadmium, lead and copper in municipal solid waste incineration bottom ash. Journal of Ecolgical Engineering, 21(3), 112–116, 13.
- 6. Minane J.R., Becquart F., Abriak N.E., Deboffe C. 2017. Upgraded mineral sand fraction from MSWI bottom ash: an alternative solution for the substitution of natural aggregates in concrete applications. Procedia Engineering, 180, 1213–1220.
- 7. Nilanjana D., Lazar M. 2011. Pollution and bioremediation: An overview. In Biomanagement of metalcontaminated soils. Springer, Dordrecht, 297–321.
- 8. Pöykiö R., Mäkelä M., Watkins G., Nurmesmeni H., Dahl O. 2016. Heavy metals leaching in bottom ash and fly ash fractions from industrial-scale BFB-boiler for environmental risks assessment. Transactions of Nonferrous Metals Society of China, 26, 256–264.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ad6bb02c-1931-4bf6-be51-05ac989640a9