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Use of carbon sorbents in process of Hg-ions removal from treated wastewater

https://doi.org/10.20914/2310-1202-2018-4-322-329

Abstract

Studies on the analysis of composition of wastewater from chlorine and alkali production process, sampled at the treatment different stages, treated by electrolysis and the mercury cathode use, are presented in this paper. It is demonstrated that Hg-content range in the wastewater entering the post-treatment stage is 14.06–14.15 mg/dm3. Hg-ions sedimentation and filtration allow to reduce such content to 0.005 mg/dm3, while the final post-treatment stage with use of the anionite of АВ-17-8 type allows to achieve Hg-concentration in effluents discharged to water bodies with range of 0.001–0.002 mg/dm3. In addition to mercury, the wastewater contains relatively high concentrations of sodium, potassium, iron, aluminum and calcium ions. The main anion type in waste water is a chlorine anion; its content can be significantly reduced only after the post-treatment with the anionites. Experimental studies were carried out on the use of carbon sorbents in the process of wastewater post-treatment with regard to Hg-ions after the sedimentation and filtration stage. Tests of modified carbon sorbents for Hg-ion removal from standardized test solutions with different concentrations were carried out under static conditions. It was demonstrated that the higher post-treatment degrees were achieved with active carbons of АГ-3 and АГ-5 types, modified with HNO3 and MnS. Purification degree was 97–99% with 1,0-11,8 mg/dm3 Hg-concentration in treated solutions. Usage effectiveness of active carbons of АГ-3 and АГ-5 types (produced at “Sorbent JSC” Perm, Russia), modified with active compounds, was demonstrated.

About the Authors

E. A. Farberova
Perm national research polytechnic university
Russian Federation
Cand. Sci. (Chem.), associate professor, chemistry and biotechnology department, Komsomolsky av., 29, Perm, 614990, Russia


M. B. Khodyashev
Ural state research Institute of regional environmental problems
Russian Federation
Cand. Sci. (Chem.), department of ecological problems due to water bodies contamination, Komsomolsky av., 61a, Perm, 614039, Russia


V. Yu. Filatov
Vyatka state University
Dr. Sci. (Chem.), professor, department of industrial and applied ecology, Moskovskaya str., 36, Kirov, 610,000, Russia


N. B. Khodyashev
Perm national research polytechnic university
associate professor, chemistry and biotechnology department, Komsomolsky av., 29, Perm, 614990, Russia


E. A. Teengaeva
Perm national research polytechnic university
Cand. Sci. (Chem.), associate professor, chemistry and biotechnology department, Komsomolsky av., 29, Perm, 614990, Russia


A. D. Nozdrukhin
Ural state research Institute of regional environmental problems
engineer, department of ecological problems due to water bodies contamination, Komsomolsky av., 61a, Perm, 614039, Russia


References

1. Sodium sulfide treatment of mercury-containing wastewater. China Environ. Sci. 1995. vol. 15. no. 2. pp. 128–130. (in Chinese).

2. Bautin V.I., Mal'cev K.A., Careva G.A., Nebylica V.V. Method of sewage treatment from mercury. Tekhnologicheskie aspekty ohrany okruzhayushchej sredy [Technological aspects of environmental protection].1989. no. 4. pp.20. (in Russian).

3. Gol'dinov A.C., Lupkov V.A. Sposob ochistki promyshlennyh stochnyh vod ot rtuti [Method of Hg removal from wastewater]. Patent RF, no. 2123478,1998.

4. Zubkov A.A., Shulenina Z.M. Use of flotation process for reducing of environment contamination in result of mercury production. Ehkologiya promyshlennogo proizvodstva [Ecology of industrial processes]. 2012. no. 4. pp.75–78. (in Russian).

5. Napier J.M., Hancher C.M., Hackett G.D. Process for removing metals from water. Patent US, no. 4814091, 1989.

6. Alikin V.N. et al. Sovremennye tekhnologii obrabotki vody. Poluchenie pit'evoj vody vysokogo kachestva «Chistaya voda», T. 1. [Modern water treatment technology. Receiving high quality drinking water "Clean Water", V. 1]. Moscow, Nedra, 2014. 207 p. (in Russian).

7. Muhin V.M., Tarasov A.V., Klushin V.N. Aktivnye ugli Rossii [Active carbons in Russia]. Moscow, Metallurgiya, 2000. 352 p. (in Russian).

8. Tarkovskaya I.A. Okislennyj ugol' [Oxidized carbon]. Kiev, Naukova dumka, 1971. 200 p. (in Russian).

9. Ginocchio J.C. Metallionen und ihre Elimination. Chem. Rdsch. (Achw.). 1982. vol. 35. no. 44.

10. Ritter J.Q., Bidler J.P. Removal of mercury from waste water large – Scale perfomance ef an ion exchenge process. Water Sci. and Technol. 1992. vol. 25. no. 3. pp. 165–172.


Review

For citations:


Farberova E.A., Khodyashev M.B., Filatov V.Yu., Khodyashev N.B., Teengaeva E.A., Nozdrukhin A.D. Use of carbon sorbents in process of Hg-ions removal from treated wastewater. Proceedings of the Voronezh State University of Engineering Technologies. 2018;80(4):322-329. (In Russ.) https://doi.org/10.20914/2310-1202-2018-4-322-329

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ISSN 2226-910X (Print)
ISSN 2310-1202 (Online)