Tytuł artykułu
Treść / Zawartość
Pełne teksty:
Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
This study aimed to investigate the degradation of Congo red and Rhodamine B dyes in synthetic wastewater by ozonation and study the parameters that influence the efficiencies of color removal such as concentration of pollutants, gas flow rate, time of reaction, and the pH of solution. Congo red dye and Rhodamine B dye were selected as model pollutants. ozonation process of these dyes was carried out in a continuous reactor with a diameter of 8 cm and length of 25 cm. It was observed that over 85% of Congo red and 95% of Rhodamine B could be removed at 90 min for both dyes. and when using the H2O2 (0.5, 1, 1.5) ml for Rhodamine B and Cong Red at 90 min the decolorization efficiency in natural pH was 93%, 95%, 96%, 84%, 89%, and 94% respectively. When used the packing the decolorization efficiency changed from 77% to 82% for Rhodamine B and from 53% to 63% for Congo Red. Higher color removal could be achieved when ozonation was carried out in an alkaline condition (pH 10) for Congo Red and an acidic condition (pH 1.5) for Rhodamine B. The ozonation of dyes was dominant at room temperature and atmospheric pressure.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
327--341
Opis fizyczny
Bibliogr. 55 poz., rys., tab.
Twórcy
autor
- Department of Chemical Engineering, Al Nahrain University, Baghdad, Iraq
autor
- Department of Chemical Engineering, Al Nahrain University, Baghdad, Iraq
Bibliografia
- 1. Abidin, C.Z.A. et al. (2015) Decolourization of an azo dye in aqueous solution by ozonation in a semi-batch bubble column reactor, Science Asia, 41, 49–54.
- 2. Aksu, Z. (2005) Application of biosorption for the removal of organic pollutants: a review, Process biochemistry, 40(3–4), 997–1026.
- 3. Altmann, J. et al. (2014). Direct comparison of ozonation and adsorption onto powdered activated carbon for micropollutant removal in advanced wastewater treatment, Water Research, 55, 185–193. Available at: https://doi.org/10.1016/j.watres.2014.02.025
- 4. Argun, Y.A. et al. (2016). Biosorption method and biosorbents for dye removal from industrial wastewater: a review, in 2 Nd International Conference on Science, Ecology and Technology-2016.
- 5. Artifon, V., Zanardi-Lamardo, E. and Fillmann, G. (2019). Aquatic organic matter: Classification and interaction with organic microcontaminants, Science of the Total Environment. Elsevier B.V., 1620–1635. Available at: https://doi.org/10.1016/j.scitotenv.2018.08.385
- 6. Avramescu, S.M. et al. (2009). Catalytic ozonation of acid red 88 from aqueous solutions, Catalysis letters, 129, 273–280.
- 7. Awad, E.S. et al. (2021). A mini-review of enhancing ultrafiltration membranes (UF) for wastewater treatment: Performance and stability’, Chem Engineering, 5(3), 34.
- 8. Aziz, K.H.H. et al. (2018). Application of a planar falling film reactor for decomposition and mineralization of methylene blue in the aqueous media via ozonation, Fenton, photocatalysis and non-thermal plasma: A comparative study, Process Safety and Environmental Protection, 113, 319–329.
- 9. Beak, M.H., Ijagbemi, C.O. and Kim, D.S. (2009). Azo dye Acid Red 27 decomposition kinetics during ozone oxidation and adsorption processes, Journal of Environmental Science and Health - Part A Toxic/Hazardous Substances and Environmental Engineering, 44(6), 623–629. Available at: https://doi.org/10.1080/10934520902784708
- 10. Bouasla, C., Samar, M.E.-H. and Ismail, F. (2010). Degradation of methyl violet 6B dye by the Fenton process, Desalination, 254(1–3), 35–41.
- 11. Brodowska, A.J., Nowak, A. and Śmigielski, K. (2018). Ozone in the food industry: Principles of ozone treatment, mechanisms of action, and applications: An overview, Critical Reviews in Food Science and Nutrition, 58(13), 2176–2201. Available at: https://doi.org/10.1080/10408398.2017.1308313
- 12. Chung, J. and Kim, J.-O. (2011). Application of advanced oxidation processes to remove refractory compounds from dye wastewater, Desalination and Water Treatment, 25(1–3), 233–240.
- 13. Cuiping, B. et al. (2011). Removal of rhodamine B by ozone-based advanced oxidation process, Desalination, 278(1–3), 84–90.
- 14. Davarnejad, R. and Sahraei, A. (2016). Industrial wastewater treatment using an electrochemical technique: an optimized process, Desalination and Water Treatment, 57(21), 9622–9634.
- 15. Faryadi, M., Rahimi, M. and Akbari, M. (2016). Process modeling and optimization of Rhodamine B dye ozonation in a novel microreactor equipped with high frequency ultrasound wave, Korean Journal of Chemical Engineering, 33, 922–933.
- 16. Gerulová, K. et al. (2021). Preliminary study into the decolorization of selected dyes by the ozone application, Research Papers Faculty of Materials Science and Technology Slovak University of Technology, 29(48), 37–44.
- 17. Ghernaout, B., Ghernaout, D. and Saiba, A. (2010). Algae and cyanotoxins removal by coagulation/flocculation: A review, Desalination and Water Treatment, 20(1–3), 133–143.
- 18. Ghuge, S.P. and Saroha, A.K. (2018). Catalytic ozonation for the treatment of synthetic and industrial effluents-Application of mesoporous materials: A review, Journal of Environmental Management, 211, 83–102.
- 19. Gogate, P.R. and Pandit, A.B. (2004). A review of imperative technologies for wastewater treatment I: Oxidation technologies at ambient conditions, Advances in Environmental Research, 8(3–4), 501–551. Available at: https://doi.org/10.1016/S1093-0191(03)00032-7
- 20. Hakeem, K.R., Bhat, R.A. and Qadri, H. (2020) Bioremediation and biotechnology: Sustainable approaches to pollution degradation, Bioremediation and Biotechnology: Sustainable Approaches to Pollution Degradation. Springer International Publishing. Available at: https://doi.org/10.1007/978-3-030-35691-0
- 21. Hanafi, M.F. and Sapawe, N. (2020). A review on the current techniques and technologies of organic pollutants removal from water/wastewater, Materials Today: Proceedings, 31, A158–A165.
- 22. Hashim, M.A. et al. (2019). Arsenic removal by adsorption on activated carbon in a rotating packed bed, Journal of Water Process Engineering, 30. Available at: https://doi.org/10.1016/j.jwpe.2018.03.006
- 23. Hsu, Y. et al. (2001). Decolorization of dyes using ozone in gas‐induced a reactor, AIChE journal, 47(1), 169–176.
- 24. Karami, M.A. et al. (2016). Degradation of reactive red 198 from aqueous solutions by advanced oxidation process: O: 3:, O: 3:/H: 2: O: 2:, and persulfate International Journal of Environmental Health Engineering, 5(1), 26.
- 25. Khudair, D.S. and Abdulaziz, Y.I. (2024). Synthesis and characterization of novel biochar developed from peganum harmala seeds to adsorb heavy metals from aqueous solution. Journal of Ecological Engineering, 25(8).
- 26. Ku, Y., Wang, W. and Shen, Y.-S. (2000). Reaction behaviors of decomposition of monocrotophos in aqueous solution by UV and UV/O3 processes, Journal of Hazardous Materials, 72(1), 25–37. Available at: https://doi.org/https://doi.org/10.1016/S0304-3894(99)00150-8
- 27. Loganathan, P. et al. (2022). Ozonation/adsorption hybrid treatment system for improved removal of natural organic matter and organic micropollutants from water – A mini review and future perspectives,Chemosphere, 296, 133961. Available at: https://doi.org/https://doi.org/10.1016/j.chemosphere.2022.133961
- 28. Lu, F. and Astruc, D. (2020). Nanocatalysts and other nanomaterials for water remediation from organic pollutants, Coordination Chemistry Reviews. Elsevier B.V. Available at: https://doi.org/10.1016/j.ccr.2020.213180
- 29. Lv, X. et al. (2021). Active destruction of pyrite passivation by ozone oxidation of a biotic leaching system, Chemosphere, 277. Available at: https://doi.org/10.1016/j.chemosphere.2021.130335
- 30. Machado, Ê.L. et al. (2012). Use of ozonization for the treatment of dye wastewaters containing rhodamine B in the agate industry, Water, Air, & Soil Pollution, 223, 1753–1764.
- 31. Machado, K.C. et al. (2016). A preliminary nationwide survey of the presence of emerging contaminants in drinking and source waters in Brazil, Science of The Total Environment, 572, 138–146. Available at: https://doi.org/https://doi.org/10.1016/j.scitotenv.2016.07.210
- 32. Modin, O. et al. (2016). Nonoxidative removal of organics in the activated sludge process, Critical Reviews in Environmental Science and Technology, 46(7), 635–672.
- 33. Mojiri, A. et al. (2019). Combined ozone oxidation process and adsorption methods for the removal of acetaminophen and amoxicillin from aqueous solution; kinetic and optimisation, Environmental Technology and Innovation, 15, 100404. Available at: https://doi.org/10.1016/j.eti.2019.100404
- 34. Neamţu, M. et al. (2013). Ozone photolysis of paracetamol in aqueous solution, Journal of Environmental Science and Health - Part A Toxic/Hazardous Substances and Environmental Engineering, 48(10), 1264–1271. Available at: https://doi.org/10.1080/10934529.2013.776898
- 35. Oller, I., Malato, S. and Sánchez-Pérez, J.A. (2011). Combination of advanced oxidation processes and biological treatments for wastewater decontamination—a review, Science of the total environment, 409(20), 4141–4166.
- 36. Peleka, E.N., Gallios, G.P. and Matis, K.A. (2018). A perspective on flotation: A review, Journal of Chemical Technology & Biotechnology, 93(3), 615–623.
- 37. Psaltou, S. and Zouboulis, A. (2020). Catalytic ozonation and membrane contactors—A review concerning fouling occurrence and pollutant removal, Water, 12(11), 2964.
- 38. Rekhate, C.V. and Srivastava, J.K. (2020). Recent advances in ozone-based advanced oxidation processes for treatment of wastewater- A review, Chemical Engineering Journal Advances. Elsevier B.V. Available at: https://doi.org/10.1016/j.ceja.2020.100031
- 39. Reyes-Serrano, A. et al. (2020). Removing contaminants from tannery wastewater by chemical precipitation using CaO and Ca (OH) 2, Chinese Journal of Chemical Engineering, 28(4), 1107–1111.
- 40. Ria Wulansarie, M.R.S.B.W.D.P.R. (2023). Degradation of congo red dye in wastewater using ozonation method with H2O2 Catalyst, Jurnal Ilmu Lingkungan, 22(1), 150–154.
- 41. Rozas, O. et al. (2017). Organic micropollutants (OMPs) oxidation by ozone: Effect of activated carbon on toxicity abatement, Science of The Total Environment, 590–591, 430–439. Available at: https://doi.org/https://doi.org/10.1016/j.scitotenv.2016.12.120
- 42. Sang, L. et al. (2020). Hydrodynamics and mass transfer of gas–liquid flow in micropacked bed reactors with metal foam packing, AIChE Journal, 66(2). Available at: https://doi.org/10.1002/aic.16803
- 43. Soares, O.S.G.P. et al. (2006). Ozonation of textile effluents and dye solutions under continuous operation: Influence of operating parameters, Journal of Hazardous Materials, 137(3), 1664–1673.
- 44. Song, S. et al. (2008). Mineralization of CI reactive yellow 145 in aqueous solution by ultraviolet-enhanced ozonation, Industrial & engineering chemistry research, 47(5), 1386–1391.
- 45. Song, S. et al. (2009). Degradation of the biocide 4-chloro-3,5-dimethylphenol in aqueous medium with ozone in combination with ultraviolet irradiation: Operating conditions influence and mechanism, Chemosphere, 77(8), 1043–1051. Available at: https://doi.org/https://doi.org/10.1016/j.chemosphere.2009.09.026
- 46. Von Sonntag, C. and Von Gunten, U. (2012). Chemistry of ozone in water and wastewater treatment. IWA publishing.
- 47. Sukmana, H. et al. (2021). Adsorption and coagulation in wastewater treatment–Review, Progress in Agricultural Engineering Sciences, 17(1), 49–68.
- 48. Tehrani-Bagha, A.R. and Amini, F.L. (2010). Decolorization of a reactive dye by UV-enhanced ozonation, Progress in Color, colorants and coatings, 3(1), 1–8.
- 49. Tizaoui, C. and Grima, N. (2011). Kinetics of the ozone oxidation of Reactive Orange 16 azo-dye in aqueous solution, Chemical Engineering Journal, 173(2), 463–473.
- 50. Tripathi, S. and Hussain, T. (2021). Water and wastewater treatment through ozone-based technologies, in Development in Wastewater Treatment Research and Processes: Removal of Emerging Contaminants from Wastewater through Bio-nanotechnology. Elsevier, 139–172. Available at: https://doi.org/10.1016/B978-0-323-85583-9.00015-6
- 51. Venkatesh, S. et al. (2014). Decolorization of synthetic dye solution containing congo red by advanced oxidation process (AOP), International Journal of Advanced Research in Civil, Structural, Environmental and Infrastructure Engineering and Developing.
- 52. Wang, X. et al. (2009). Degradation of rhodamine B in aqueous solution by using swirling jet-induced cavitation combined with H2O2, Journal of Hazardous Materials, 169(1–3), 486–491. Available at: https://doi.org/10.1016/j.jhazmat.2009.03.122
- 53. Zaharia, C. et al. (2009). Textile wastewater treatment by homogenous oxidation with hydrogen peroxide, Environmental Engineering and Management Journal, 8(6), 1359–1369.
- 54. Zawadzki, P. and Deska, M. (2021). Degradation efficiency and kinetics analysis of an advanced oxidation process utilizing ozone, hydrogen peroxide and persulfate to degrade the dye rhodamine b, Catalysts, 11(8). Available at: https://doi.org/10.3390/catal11080974
- 55. Zhu, S.-N. et al. (2014). Catalytic ozonation of basic yellow 87 with a reusable catalyst chip, Chemical engineering journal, 242, 180–186.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d0eff425-484a-4579-a78f-46dcb68fcba7
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.