The Development of a Purification Method of Sewage from Chromium (VI) by Iron-Containing Waste

Article Preview

Abstract:

The article presents the results of reagent purification of sewage from machine building industries from chromium (VI) ions. The relevance of research is connected with the expansion of the spectrum of effective reagents at the expense of the use of industrial wastes [1-3]. The component composition of abrasive waste formed from grinding of ferrous metals with a metal content of less than 50% is studied here. Conditions have been developed for the oxidation-reduction reactions necessary in the reagent purification of sewage from chromium (VI). It is shown that purification with an efficiency of more than 80% takes place within 60 minutes.

You might also be interested in these eBooks

Info:

Periodical:

Solid State Phenomena (Volume 284)

Pages:

761-766

Citation:

Online since:

October 2018

Export:

Price:

* - Corresponding Author

[1] E.S. Klimov, Natural sorbents and complexons in wastewater purification, USTU, Ulyanovsk, (2011).

Google Scholar

[2] S.V. Sverguzova, L.A. Porozhnyuk, T.A. Vasilenko, Comprehensive disinfection of wastewater, disposal of water treatment precipitate and recycling of gypsum and metal containing industrial waste: monograph (BSTU Press), (2009).

Google Scholar

[3] L.M. Smolenskaya, M.M. Latypova, M.I. Vasilenko, I.V. Starostina, E.A. Pendyurin, Sorbents for wastewater purification from ions of heavy metals, in: All-Russian scientific conference with international participation, (BSTU Press) Belgorod, (2004).

Google Scholar

[4] L.V. Milovanov, Purification of wastewater of non-ferrous metallurgy enterprises, Metallurgy, Moscow, (1971).

Google Scholar

[5] K.B. Lebedev, V.N. Antonov, A.I. Ozerov, Purification and control of wastewaters of non-ferrous metallurgy enterprises, Metallurgy, Moscow, (1983).

Google Scholar

[6] A.M. Koganovsky, Purification and use of wastewater in industrial water-supply, Himiya, Leningrad, (1987).

Google Scholar

[7] J.V. Moore, S. Ramamurti, Heavy metals in natural waters, Mir, Moscow, (1987).

Google Scholar

[8] D.N. Smirnov, V.E. Genkin, Purification of wastewater for metal processing, Metallurgy, Moscow, (1980).

Google Scholar

[9] G.S. Fomin, Water. Monitoring of chemical, bacterial and radiation safety according to the international standards, Proektor, Мoscow, (2000).

Google Scholar

[10] SanPiN 2.1.5.980-00 Sanitary rules and norms: Hygienic requirements to surface water protection.

Google Scholar

[11] N.S. Lupandina, N.Yu. Kiryushina, Zh.A. Sverguzova, D.A. Elnikov, Using industrial waste for wastewater treatment, Ecology and Industry of Russia, 5 (2010) 38-41.

Google Scholar

[12] Zh.A. Sverguzova, D.A. Elnikov, S.V. Sverguzova, On the possibility to use the sugar industry waste for wastewater treatment. Bulletin of BSTU, 3 (2011)128-133.

Google Scholar

[13] L.M. Smolenskaya, I.Ya. Kilyushik, O.A. Leiko, T.V. Druzhinina, Study of the sorption processes of nickel and cadmium ions from water solutions of complexities on the basis of modified polyamide fiber, Chemical fibers, 3 (2011) 48−52.

DOI: 10.1007/s10692-011-9340-1

Google Scholar

[14] S.I. Pechenyuk, Sorbtion of anions on oxyhydroxygroups of metals, J. Sorbtsionniye i chromatograficheskiye protsessy, 8 (2008) 380-429.

Google Scholar

[15] L.A. Porozhnyuk, E.N. Chemerichenko, Removal of Ni2+, Cu2+ and CrO42- by aluminum-containing technogenic waste, Bulletin of BSTU 4 (2013) 161-163.

Google Scholar

[16] L.A. Porozhnyuk, S.V. Sverguzova, A.N. Lopanov, The use of aluminum-containing waste for aqueous media purification from the compounds of hexavalent chromium, Research journal of Applied Science, 9(12) (2014)1206-1210.

Google Scholar

[17] V.G. Kutsiy, Removal of Cu2+, Co2+, Ni2+, Mn2+, Fe3+ and Cr6+ from water solutions by metal oxides, Ecotechnology and resource saving, 2 (2004) 46-49.

Google Scholar