Preview

Экология и промышленность России

Расширенный поиск
Доступ открыт Открытый доступ  Доступ закрыт Только для подписчиков

Адсорбенты из отходов пивоваренной промышленности для удаления загрязнений из природных и сточных вод

https://doi.org/10.18412/1816-0395-2022-10-16-21

Полный текст:

Аннотация

Рассмотрены возможности использования основных отходов пивоварения, продуктов их модификации и переработки в угли в качестве адсорбентов при очистке природных и сточных вод.

Об авторе

Е.Ю. Руденко
Самарский государственный технический университет
Россия

д-р биол. наук, профессор



Список литературы

1. Wierzba S., Kłos A. Heavy metal sorption in biosorbents — Using spent grain from the brewing industry. Journal of Cleaner Production. 2019. Vol. 225. P. 112—120. https://doi.org/10.1016/j.jclepro.2019.03.286.

2. Wierzba S., Rajfur M., Nabrdalik M., Kłos A. Assessment of the influence of counter ions on biosorption of copper cations in brewer's spent grain — Waste product generated during beer brewing process. Microchemical Journal. 2019. Vol. 145. P. 196—203. https://doi.org/10.1016/j.microc.2018.10.040.

3. Chai L., Li Q., Zhu Y., Zhang Z., Wang Q., Wang Y., Yang Z. Synthesis of thiol-functionalized spent grain as a novel adsorbent for di valent metal ions. Bioresource Technology. 2010. Vol. 101. Iss. 15. P. 6269—6272. https://doi.org/10.1016/j.biortech.2010.03.009.

4. Li Q., Chai L., Qin W. Cadmium(II) adsorption on esterified spent grain: Equilibrium modeling and possible mechanisms. Chemical Engineering Journal. 2012. Vol. 197. P. 173—180. https://doi.org/10.1016/j.cej.2012.04.102.

5. Su Y., Wenzel M., Paasch S., Seifert M., Böhm W., Doer T., Weigand J.J. Recycling of Brewer’s Spent Grain as a Biosorbent by Nitro-Oxidation for Uranyl Ion Removal from Wastewater. ACS Omega. 2021. Vol. 6. Article ID 19364. https://doi.org/10.1021/ac somega.1c00589.

6. Vendruscolo F., de Sousa e Reis C.L.F., Silva J.G. Brewery spent grain: a potential biosorbent for hexavalent chromium. Journal of The Institute of Brewing. 2021. Vol.127. Iss. 2. P. 127—134. https://doi.org/10.1002/jib.638.

7. Low K.S., Lee C.K., Liew S.C. Sorption of cadmium and lead from aqueous solutions by spent grain. Process Biochemistry. 2000. Vol. 36. Iss. 1—2. P. 59—64. https://doi.org/10.1016/S0032-9592(00)00177-1.

8. Su Y., Bцhm W., Wenzel M., Paasch S., Acker M., Doert T., Brunner E., Henle T., Weigand J.J. Mild Hydrothermally Treated Brewer’s Spent Grain for Efficient Removal of Uranyl and Rare Earth Metal Ions. RSC Advances. 2020. Vol. 10. P. 45116—45129. https://doi.org/10.1039/D0RA08164G.

9. Chen Y., Xiong C. Adsorptive removal of As(III) ions from water using spent grain modified by polyacrylamide. Journal of Environmental Sciences. 2016. Vol. 45. P. 124—130. https://doi.org/10.1016/j.jes.2015.11.020.

10. Руденко Е.Ю., Бейбулатов С.Ю., Муковнина Г.С., Бахарев В.В. Влияние различных веществ на модификацию отработанного кизельгура, используемого для удаления свинца из сточных вод. Экология и промышленность России. 2020. Т. 24. № 1. С. 19—23. https://doi.org/10.18412/1816-0395-2020-1-19-23.

11. Gong X., Tian W., Wang L., Bai J., Qiao K., Zhao J. Bio logical regeneration of brewery spent diatomite and its reuse in basic dye and chromium(III) ions removal. Process Safety and Environmental Protection. 2019. Vol. 128. P. 353—361. https://doi.org/10.1016/j.psep.2019.05.024.

12. Ouazani F., Benchekor H., Chergui Y., Iddou A., Aziz A. Lin earized form effect on estimation adsorption parameters of three industrial dyes by lignocellulosic sorbent. Journal of Environmental Health Science and Engineering. 2020. Vol. 18. Iss. 2. P. 1045—1055. https://doi.org/ 10.1007/s40201-020-00526-4.

13. Chanzu H.A., Onyari J.M., Shiundu P.M. Biosorption of Malachite Green from Aqueous Solutions onto Polylactide/Spent Brewery Grains Films: Kinetic and Equilibrium Studies. Journal of Polymers and the Environment. 2012. Vol. 20. P. 665—672. https://doi.org/10.1007/s10924-012-0479-5.

14. Wang Y., Lv Y., Shen H., Xu S., Guo Y., Bao Z., Feng Y. Preparation of naoh modified spent grain adsorbent and adsorptive properties for dyes. IOP Conference Series: Materials Science and Engineering. 2020. Vol. 735. Iss. 1. Article ID 0120747. https://doi.org/10.1088/1757-899X/735/1/012074.

15. Silva J.P., Sousa S., Gonçalves I., Porter J.J., Ferreira-Dias S. Modelling adsorption of acid orange 7 dye in aqueous solutions to spent brewery grains. Separation and Purification Technology. 2004. Vol. 40. Iss. 2. P. 163—170. https://doi.org/10.1016/j.sep pur.2004.02.006.

16. Wu J., Zhang Z., Xu J., Lu X., Wang C., Xu H., Yuan H., Zhang J. Brewer's grains with different pretreatments used as bio-ad sorbents for the removal of Congo red dye from aqueous solution. BioResources. 2020. Vol. 15. Iss. 3. P. 6928—6940. https://doi.org/10.15376/biores.8.3.6928-6940.

17. Safarik I., Horska K., Safarikova M. Magnetically modified spent grain for dye removal. Journal of Cereal Science. 2011. Vol. 53. Iss. 1. P. 78—80. https://doi.org/10.1016/j.jcs.2010.09.010.

18. Ma T., Wu Y., Liu N., Wu Y. Hydrolyzed polyacrylamide modified diatomite waste as a novel adsorbent for organic dye removal: Adsorption performance and mechanism studies. Polyhedron. 2020. Vol. 175. Article ID 114227. https://doi.org/10.1016/j.poly.2019.114227.

19. Tao X., Wu Y., Sha H. Cuprous Oxide-Modified Diatomite Waste from the Brewery Used as an Effective Adsorbent for Removal of Organic Dye: Adsorption Performance, Kinetics and Mechanism Studies. Water, Air and Soil Pollution. 2018. Vol. 229. Iss. 10. P. 322—326. https://doi.org/10.1007/s11270-018-3977-9.

20. Tsai W.T., Hsien K.J., Yangb J.M. Silica adsorbent prepared from spent diatomaceous earth and its application to removal of dye from aqueous solution. Journal of Colloid and Interface Science. 2004. Vol. 275. Iss. 2. P. 428—433. https://doi.org/10.1016/j.jcis.2004.02.093.

21. Tanniratt P., Wasanapiarnpong T., Mongkolkachit C., Sujaridworakun P. Utilization of industrial wastes for preparation of high performance ZnO/diatomite hybrid photocatalyst. Ceramics International. 2016. Vol. 42. Iss. 15. P. 17605—17609. https://doi.org/10.1016/j.ce ramint.2016.08.074.

22. Mussatto S.I., Fernandes M., Rocha G.J.M., Órfão J.J.M., Teixeira J.A., Roberto I.C. Production, characterization and application of activated carbon from brewer’s spent grain lignin. Bioresource Technology. 2010. Vol. 101. Iss. 7. P. 2450—2457. https://doi.org/10.1016/j.biortech.2009.11.025.

23. Osman A.I., O'Connor E., McSpadden G., Abu-Dahrieh J.K., Farrell C., Al-Muhtaseb A.H., Harrison J., Rooney D.W. Upcycling brewer's spent grain waste into activated carbon and carbon nanotubes for energy and other applications via two-stage activation. Journal of Chemical Technology and Biotechnology. 2020. Vol. 95. Iss.1. P. 183—195. https://doi.org/10.1002/jctb.6220.

24. Vanderheyden S.R.H., Yperman J., Carleer R., Schreurs S. Activated carbon modification resulting in an enhanced Cr(VI) removal. Desalination and Water Treatment. 2018. Vol. 112. P. 186—195. https://doi.org/10.5004/dwt.2017.21456.

25. Gonçalves G.C., Nakamura P.K., Furtado D.F., Veit M.T. Utilization of brewery residues to produces granular activated carbon and bio-oil. Journal of Cleaner Production. 2017. Vol. 168. P. 908—916. https://doi.org/10.1016/j.jclepro.2017.09.089.

26. Franciski M.A., Peres E.C., Godinho M., Perondi D., Foletto E.L., Collazzo G.C., Dotto G.L. Development of CO2 activated biochar from solid wastes of a beer industry and its application for methylene blue adsorption. Waste Management. 2018. Vol. 78. P. 630—638. https://doi.org/10.1016/j.wasman.2018.06.040

27. Leichtweis J., Silvestri S., Welter N., Vieira Y., Zaragoza Sánchez P.I., Chávez-Mejía A.C., Carissimi E. Wastewater containing emerging contaminants treated by residues from the brewing industry based on biochar as a new CuFe2O4 biochar photocatalyst. Process Safety and Environmental Protection. 2021. Vol. 150. P. 497—509. https://doi.org/10.1016/j.psep.2021.04.041.

28. Sousa A.F.C., Gil M.V., Calisto V. Upcycling spent brewery grains through the production of carbon adsorbents — application to the removal of carbamazepine from water. Environmental Science and Pollution Research. 2020. Vol. 27. P. 36463—36475. https://doi.org/10.1007/s11356-020-09543-0.

29. Araújo T.P., Quesada H.B., Bergamasco R., Vareschini D.T., Barros M.A.S.D. Activated hydrochar produced from brewer's spent grain and its application in the removal of acetaminophen. Bioresource Technology. 2020. Vol. 310. Article ID 123399. https://doi.org/10.1016/j.biortech.2020.123399.

30. Leichtweis J., Silvestri S., Stefanello N., Carissimi E. Degradation of ramipril by residues from the brewing industry: A new carbon-based photocatalyst compound. Chemosphere. 2021. Vol. 281. Article ID 130987. https://doi.org/10.1016/j.chemosphere.2021.130987.

31. Machado L.M.M., Lütke S.F., Perondi D., Godinho M., Oliveira M.L.S., Collazzo G.C., Dotto G.L. Treatment of effluents containing 2- chlorophenol by adsorption onto chemically and physically activated biochars. Journal of Environmental Chemical Engineering. 2020. Vol. 8. Iss. 6. Article ID 104473. https://doi.org/10.1016/j.jece.2020.104473.

32. Hao W., Björkman E., Yun Y., Lilliestrеle M., Hedin N. Iron Oxide Nanoparticles Embedded in Activated Carbons Prepared from Hydrothermally Treated Waste Biomass. ChemSusChem. 2014. Vol. 7. Iss. 3. P. 875—882. https://doi.org/10.1002/cssc.201300912.

33. Kordialik-Bogacka E. Saccharomyces pastorianus immobilized on brewer's spent grain in continuous system for lead ion biosorption. International Biodeterioration and Biodegradation. 2014. Vol. 96. P. 191—197. https://doi.org/10.1016/j.ibiod.2014.09.018.

34. Benyoucef N., Cheikh A., Drouiche N., Lounici H., Mameri N., Abdi N. Denitrification of groundwater using Brewer's spent grain as biofilter media. Ecological Engineering. 2013. Vol. 52. P. 70—74. https://doi.org/10.1016/j.ecoleng.2012.12.092.

35. Руденко Е.Ю., Макеева Е.Н., Ващенко В.В., Бахарев В.В., Муковнина Г.С., Ермаков В.В. Влияние способов модификации на свойства отработанного кизельгура, используемого для удаления нефти из сточных вод. Экология и промышленность России. 2019. Т. 23. № 1. С. 20—25. https://doi.org/10.18412/1816-0395-2019-01-20-25.


Рецензия

Для цитирования:


Руденко Е. Адсорбенты из отходов пивоваренной промышленности для удаления загрязнений из природных и сточных вод. Экология и промышленность России. 2022;26(10):16-21. https://doi.org/10.18412/1816-0395-2022-10-16-21

For citation:


Rudenko E. Waste-derived Adsorbents from Brewing Industry for Pollutant Removal in Natural Waters and Wastewaters. Ecology and Industry of Russia. 2022;26(10):16-21. (In Russ.) https://doi.org/10.18412/1816-0395-2022-10-16-21

Просмотров: 71


ISSN 1816-0395 (Print)
ISSN 2413-6042 (Online)