Experimental Modeling and Electrochemical Analysis of Salted Oily Wastewaters

Article Preview

Abstract:

The results of potentiometric titration and determination of the specific conductivity of mineralized oily wastewater from landfill areaand the results of the analysis of individual and combined model systems (bicarbonate, phosphate and hydrogen sulphide) at different volume ratios and a wide range of mineral saltsconcentrations were compared. Qualitative and quantitative characteristics of studied wastewater buffer system were defined.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

1357-1362

Citation:

Online since:

January 2015

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2015 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Levchenko, V.F., Levchenko, Yu.V., Bezkrovnyy, Yu.A. Elektroimpulsnaya ochistka promyshlennykh stochnykh vod i elektrokataliticheskiy metod [Electropulse treatment of industrial wastewater and electrocatalytic method] (2004).

Google Scholar

[2] Matveenko, A.P., Patsovskiy, A.P., Chirva, V.A., Anisimova, O.V. Elektroreagentnaya ochistka stochnykh vod [Elektroreagent wastewater treatment] (2009) Innovatsii, 5, pp.112-114. (rus).

Google Scholar

[3] Lyuyk, R., Kryuger, G. Upravlenie ochistkoy stochnykh vod. Vodopodgotovka i ochistka stochnykh vod galvanicheskogo proizvodstva [Management of wastewater treatment. Water and galvanic production effluent treatment] (2005).

Google Scholar

[4] http: /www. rochem. ru/2_7. php.

Google Scholar

[5] Fazullin, D.D., Mavrin, G.V., Melkonyan, R.G. Utilizatsiya vodoemulsionnykh smazochno-okhlazhdayushchikh zhidkostey na osnove membrannykh metodov [Disposal of water-emulsion cutting fluids on the basis of membrane methods] (2012).

Google Scholar

[6] Taukin, P.B., Potapov, A.I. Toksichnye otkhody [Toxic waste] (2006) St. Petersburg: Gumanistika, 535 p. (rus).

Google Scholar

[7] Dvoryak, S.V., Mavrin, G.V., Nasyrov, I.A., Fazullin, D.D. Filtratsionnye svoystva ftoroplastovogo sorbenta dlya ochistki ot nefteproduktov stochnykh vod razlichnogo urovnya zagryaznennosti [Filtration properties of fluoroplastic sorbent for removal of oil products under various water contamination levels] (2012).

Google Scholar

[8] Ptashkina-Girina, O.S., Starshikh, V.V., Maksimov, E.A. Sovremennye tekhnologii i ustroystva dlya ochistki zhirosoderzhashchikh i neftesoderzhashchikh stochnykh vod [Modern technology and equipment for treatment wastewater with fat-containing and petroleum product] (2003).

Google Scholar

[9] Berlinteyger, E.S., Ulrikh, E.V., Davydenko, V.A. Izuchenie tekhnologicheskikh svoystv nanopolimerov i ikh deystvie na neftesoderzhashchie stochnye vody [Study of technological properties of nanopolymers and their effect on oily wastewater] (2013).

Google Scholar

[10] Andrianova,M. Yu., Vedmetskiy, Yu.V., Kudoyarov, M.F., Molodkina, L.M., Patrova, M. Ya., Fedorov, M.P., Chusov, A.N. Kompleks ochistki toksichnykh neftesoderzhashchikh zhidkikh othodov [Complex of toxic oily liquid waste treatment](2013).

Google Scholar

[11] Molodkina, L.M., Kolosova, D.D., Leonova, E.I., Kudoyarov, M.F., Patrova, M.Y., Vedmetskii, Y.V. Track membranes in post-treatment of domestic wastewater (2012) Petroleum Chemistry, 52 (7), pp.487-493. (rus).

DOI: 10.1134/s0965544112070092

Google Scholar

[12] Kolosova, D.D., Maslak, A.A., Rolle, N.N., Molodkina, L.M. Modelnye eksperimenty po koagulyatsionno-membrannoy doochistke slozhnykh stokov [Model experiment on the coagulation-membrane advanced treatment of complex wastewaters] (2013).

Google Scholar

[13] A Review of Techniques for Electrochemical Analysis (2010) Princeton Applied Research, Copyright 2010 AMETEK, Inc. All Right Reserved, pp.1-12.

Google Scholar

[14] Santos, A.L., Takeuchi, R.M., Fenga, P.G., Stradiotto, N.R. Electrochemical Methods in Analysis of Biofuels (2011) 451-494 in Ognyan Ivanov Applications and Experiences of Quality Control Intechweb. org, 724 p.

Google Scholar

[15] Lund, H., Hammerich, O. Organic Electrochemistry (2001), 4th Ed., Marcel Dekker, New York, 1406 p.

Google Scholar

[16] Farghaly, O.A., Abdel Hameed, R.S., Abd-Alhakeem H. Abu-Nawwas. Analytical Application Using Modern Electrochemical Techniques (2014) Int. J. Electrochem, 9, p.3287 – 3318.

DOI: 10.1016/s1452-3981(23)08010-0

Google Scholar

[17] Genxi, Li, Peng, M. Electrochemical Analysis of Proteins and Cells Springer Briefs (2013) Molecular Science, 9, 69 p.

Google Scholar

[18] Chusov, A.N., Bondarenko, E.A., Andrianova, M. Yu. Study of electric conductivity of urban stream water polluted with municipal effluents (2014) Mechanics and Materials, vols. 641-642, pp.1172-1175.

DOI: 10.4028/www.scientific.net/amm.641-642.1172

Google Scholar

[19] Vasilev, B.P. Analiticheskaya khimiya. V 2 n. Kn. 2. Fiziko-khimicheskie metody analiza [Analytical chemistry. In 2 books. Book no. 2. Physicochemical methods of analysis] (2002) Moscow: Drofa, 384 p. (rus).

DOI: 10.1134/s1061934807110172

Google Scholar

[20] Budnikov, G.K., Maystrenko, V.N., Vyaselev, M.R. Osnovy sovremennogo elektroanaliza [Foundations of modern electroanalysis] (2003) Moscow: Mir-Binom, 602 p. (rus).

DOI: 10.1023/b:janc.0000014752.62028.e5

Google Scholar

[21] LabX titration Version 3. 1 operating instructions, 126 p.

Google Scholar

[22] Titration Excellence Selected METTLER TOLEDO Methods, 182 p.

Google Scholar

[23] Simanova, S.A. Novyy spravochnik khimika i tekhnologa. Khimicheskoe ravnovesie. Svoystva rastvorov [New handbook for chemist and technologist. Chemical equilibrium. Properties of solutions] (2004).

Google Scholar

[24] Sukhotin, A.M. Spravochnik po elektrokhimii [Handbook on electrochemistry] (1981) Leningrad: Khimiya, 488 p. (rus).

Google Scholar

[25] http: /www. chemport. ru/chemical_substance_806. html.

Google Scholar