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2019 | 28 | 5 |

Tytuł artykułu

Homogeneous photocatalytic iron slag reduction Cr6plus from chromium wastewater containing high-salt in constructed wetland

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The reductive removal of hexavalent chromium Cr⁶⁺ by iron slag from aqueous solutions was investigated. Iron slag was treated with a grinding miller and washed thoroughly. The redox reaction of iron slag onto the chromium Cr⁶⁺ was initiated by Fenton’s reagent (Fe²⁺/H₂O₂). The optimum conditions for adsorption of Cr⁶⁺ were found to be as follows: pH 3; photocatalyst dose 0.13 g/L; COD 400 mg/L; Cl⁻ concentration 5 mg/L; matrix was gravel and construction waste and contact; reaction time was 270 min. In addition, the action mechanism of each factor in the wastewater was analyzed. In the reaction system, pH was the main influencing factor. When the pH was 3, the reduced rate of Cr⁶⁺ could reach 99%. High salinity had a certain effect on Cr⁶⁺ reduction. When the Cl⁻ concentration was more than 6 mg/L, Cr⁶⁺ reduction rate was below 90%. Owing to high efficiency and low cost, iron slag could be used as an effective catalyst for Cr⁶⁺ removal from wastewater.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

28

Numer

5

Opis fizyczny

p.3745-3752,fig.,ref.

Twórcy

autor
  • College of Ecological Technology and Engineering, Shanghai Institute of Technology, Shanghai, China
autor
  • College of Ecological Technology and Engineering, Shanghai Institute of Technology, Shanghai, China

Bibliografia

  • 1. JIN W., ZHANG Z., WU G. Integrated lignin mediated adsorption-release process and electrochemical reduction for the removal of trace Cr(VI). RSC Advances, 4 (4), 27843, 2014.
  • 2. ASSADI A., DEHGHANI M.H., RASTKARI N., NASSERI S., MAHVI A. H. Photocatalytic reduction of hexavalent chromium in aqueous solutions with zinc oxide nanoparticles and hydrogen peroxide Environ. Prot. Eng., 38, 5, 2012.
  • 3. KARALE R.S., WADKAR D.V., NANGARE P.B. Removal and recovery of hexavalent chromium from industrial wastewater by precipitation with due consideration to cost optimization J. Environ. Res. Dev., 2, 209, 2007.
  • 4. CHANGMAN K., CHO R. L., YOUNG E. S., JINHEE H., SUNG M.C., DONG-HA L., JAEHOON C., CHULHWAN P., MIN J., JUNG R.K. Hexavalent chromium as a cathodic electron acceptor in a bipolar membrane microbial fuel cell with the simultaneous treatment of electroplating wastewater. Chemical Engineering Journal, 328, 703, 2017.
  • 5. FEKADU M., GIJS D.L., ARGAW A., ESAYAS A. Application of freeze desalination for chromium (VI) removal from water. Desalination, 377, 23, 2016.
  • 6. MARIUS G., IONEL B. Cheap metallic iron source for hexavalent chromium removal. Energy Procedia, 136, 133, 2017.
  • 7. LUCIANA P.M., MARIA A. P.C., SSLENE M.A.G.U.S., RUI A.R.B., VITOR J.P.V. Brown marine macroalgae as natural cation exchangers for toxic metal removal from industrial wastewaters: A review. Journal of Environmental Management, 223, 215, 2018.
  • 8. ELENI V., PETROS G. Effects of chromium on activated sludge and on the performance of wastewater treatment plants: A review. Water Research, 46, 549, 2012.
  • 9. WANG Z.H., LIU R.L., LIU J.S. Trivalent Chromium: A Neglected Latent Contaminant. Vitam Trace Elem, 1, 4, 2012.
  • 10. COSTA R.C.C., MOURA F.C.C., OLIVEIRA P.E.F., MAGALHAES F., ARDISSON J. D. Lago RM Controlled reduction of red mud waste to produce active systems for environmental applications: heterogeneous Fenton reaction and reduction of Cr (VI). Brazil/ Chemosphere, 78, 1116, 2010.
  • 11. WEI J., HAO D., SHILI Z., YI Z. Electrochemical processes for the environmental remediation of toxic Cr(VI): A review. Electrochimica Acta, 191, 1044, 2016.
  • 12. TURKAN A., YAKUP K. Removal of Cr(VI) from aqueous solution by pyrolytic charcoals. New Carbon Materials, 31 (5), 501, 2016.
  • 13. JYOTHI M.S., VIGNESH N., MAHESH P., R.GEETHA B., KHANTONG S. Eco-friendly membrane process and product development for complete elimination of chromium toxicity in wastewater. Journal of Hazardous Materials, 332 (15), 112, 2017.
  • 14. BUGAJSKI P.M., NOWOBILSKA-MAJEWAKA E., KUREK K. The variability of pollution load of organic, biogenic and chromium ions in wastewater inflow to the treatment plant in Nowy Targ. Journal of Water and Land Development, 35 (X-XII), 11, 2017.
  • 15. LEFEBVRE O., MOLETTA R. Treatment of organic pollution in industrial saline wastewater: a literature review. Water Res., 40, 3671, 2006.
  • 16. HUIJUN H., YUJUAN C., XIANG L., YAN C., CHUNPING Y., GUANGMING Z. Influence of salinity on microorganisms in activated sludge processes: A review. International Biodeterioration & Biodegradation, 119, 520, 2017.
  • 17. M.CONCETTA T., DOMENICA M.A., VALENTINA S., ANDREW J.D. On the applicability of a hybrid bioreactor operated with polymeric tubing for the biological treatment of saline wastewater. Science of The Total Environment, 599-600 (1), 1056, 2017.
  • 18. XULIANG Z., ZHEN H., ZHIHUI B., GUOQIANG Z., HOJAE S. Progress in decontamination by halophilic microorganisms in saline wastewater and soil. Environmental Pollution, 158 (5), 1119, 2010.
  • 19. XIAOYE S., MING X., YUN L., GUOXUE L., WENHAI L. Salinity build-up in osmotic membrane bioreactors: Causes, impacts, and potential cures. Bioresource Technology, 257, 301, 2018.
  • 20. GLAZE W.H. Treatment with Ozone. Environ. Sci., 21, 224, 1987.
  • 21. BARKAT M.A. New trends in removing heavy metals from industrial wastewater. Arab. J. Chem., 4 (4), 361, 2011.
  • 22. BAI Y., B. BARTKIEWICZ Removal of cadmium from wastewater using ion exchange resin Amberjet 1200H columns Polish J. Environ. Stud., 18 (6), 1191, 2009.
  • 23. HEGAZI H.A. Removal of heavy metals from wastewater using agricultural and industrial wastes as adsorbents. HBRC J., 9 (3), 276, 2013.
  • 24. LAKHERWAL D. Adsorption of heavy metals, a reviewInt. J. Environ. Res. Develop., 4 (1), 41, 2014.
  • 25. YINXIU L., HUI Z., GARY B., BAIXING Y., QINGWEI Z., XIANGFEI Y., XIANWEI C. Constructed wetlands for saline wastewater treatment: A review. Ecological Engineering, 98, 275, 2017.
  • 26. SAEED T., SUN G. A review on nitrogen and organics removal mechanisms in subsurface flow constructed wetlands: dependency on environmental parameters. operating conditions and supporting media J. Environ. Manage., 112, 429, 2012.
  • 27. PUJIA B., ABHINAV K.K., BALSUBRAMANIAN P., PARESH G.K. Biosensor for detection of dissolved chromium in potable water: A review. Biosensors and Bioelectronics, 94 (15), 589, 2017.
  • 28. YIBANG X., XIAOJUN F., XIAN G. Improvement of Method for Determination of Chromium (VI) in Water by1, 5-diphenylcarbohydrazide Spectrophotometry. China Water & Wastewater, 8 (30), 106, 2015.
  • 29. YIBANG X., XIAOJUN F., XIAN G. Improvement of Method for Determination of Chromium (VI) in Water by1, 5-diphenylcarbohydrazide Spectrophotometry. China Water & Wastewater, 8 (30), 106, 2015.
  • 30. SEMANUR G.C., MEHMET H.M., SUMEYYE A., CENGIZE A.Z., MUSTAFA D. Comparison of classic Fenton with ultrasound Fenton processes on industrial textile wastewater. Sustainable Environment Research, 28 (4), 165, 2018.
  • 31. FENG J.Y., H X.J., YUE P.L., ZHU H.Y., LU G.Q. Discoloration and mineralizationof Reactive Red HE-3B by heterogeneous photo-Fenton reaction. Water Research, 37, 3776, 2003.
  • 32. VANESSA L., TAMISA P.M.S., DANIELLE W.Z., LUCIANA M. Ferrous ions reused as catalysts in Fenton-like reactions for remediation of agro-food industrial wastewater. Journal of Environment Management, 222 (15), 284, 2018.
  • 33. GARRIDO-RAMIREZ E.G., THENG B.K.G., MORA M.L. Clays and oxide minerals as catalysts and nanocatalysts in Fenton-like reactions - A review. Applied Clay Science, 47, 182, 2010.
  • 34. CLARIZIA L., RUSSO D., SOMMA I.D., MAROTTA R., ANDREOZZI R. Homogeneous photo-Fenton processes at near neutral pH: A review. Applied Catalysis B: Environmental, 209 (15), 358, 2017.
  • 35. ALEXANDRA F., CLEMENSVON S., TORSTEN C.S., Hydroxyl radical yields in the Fenton process under various pH, ligand concentrations and hydrogen peroxide/Fe(II) ratios. Chemosphere, 182, 738, 2017.
  • 36. SIWEI P., WEIJUN Z., JIE H., XIAOFANG Y., DONGSHENG W., GUISHENG Z., Enhancement of Fenton oxidation for removing organic; matter from hypersaline solution by accelerating ferric; system with hydroxylamine hydrochloride and benzoquinone. Journal of Environmental Sciences, 41, 16, 2016.
  • 37. VANESSA L., TAMISA P.M.S., DANIELLE W.Z., LUCIANA L.M., Ferrous ions reused as catalysts in Fenton-like reactions for remediation of agro-food industrial wastewater. Journal of Environmental Management, 222 (5), 284, 2018.
  • 38. SANDRA R.C., ALEXANDRA M., NAOMI M., DAN M., The effect of pyrophosphate, tripolyphosphate and ATP on the rate of the Fenton reaction. Journal of Inorganic Biochemistry, 105 (5), 669, 2011.
  • 39. CHUANHAO C., BO X., YUAN R.,CHAOFEI W., CHAOHAI W. The Mechanisms of Affecting Factors in Treating Wastewater by Fenton Reagent*. Environmental Science, 3, 93, 2000.
  • 40. COSTA M. Potential hazards of hexavalent chromate in our drinking water. Toxicology&Applied Pharmacology, 188, 1, 2003.
  • 41. ALI A.B., BABAK K., MOHAMMAD R., FARIBA K., LLNZA P., EHSAN A., SHIRIN E., Comparative treatment of textile wastewater by adsorption, Fenton, UV-Fenton and US-Fenton using magnetic nanoparticles-functionalized carbon (MNPs@C). Journal of Industrial and Engineering Chemistry, 56 (25), 163, 2017.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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