References

  1. N.K. Surya, M. Basavaraju, A. Adani, Sustainable treatment of paint industry wastewater: current techniques and challenges, J. Environ. Manage., 296 (2021) 113105, doi: 10.1016/j.jenvman.2021.113105.
  2. T.E. Aniyikaiye, T. Oluseyi, J.O. Odiyo, J.N. Edokpayi, Physicochemical analysis of wastewater discharge from selected paint industries in Lagos, Nigeria, Int. J. Environ. Res. Public Health, 16 (2019) 1235, doi: 10.3390/ijerph16071235.
  3. M.A. Aboulhassan, S. Souabi, A. Yaacoubi, M. Baudu, Treatment of paint manufacturing wastewater by the combination of chemical and biological process, Int. J. Environ. Sci. Technol., 3 (2014) 1747–1758.
  4. S. Popli, U.D. Patel, Destruction of azo dyes by anaerobic– aerobic sequential biological treatment: a review, Int. J. Environ. Sci. Technol., 12 (2015) 405–420.
  5. D. Krithika, L. Philip, Treatment of wastewater from waterbased paint industries using submerged attached growth reactor, Int. Biodeterior. Biodegrad., 107 (2016) 31–41.
  6. O. Dovletoglou, C. Philippopoulos, H. Grigoropoulou, Coagulation for treatment of paint industry wastewater, J. Environ. Sci. Health. Part A Toxic/Hazard. Subst. Environ. Eng., 37 (2002) 1361–1377.
  7. O.Y. Balik, S. Aydin, Coagulation/flocculation optimization and sludge production for pre-treatment of paint industry wastewater, Desal. Water Treat., 57 (2016) 12692–12699.
  8. I.G. Ezemagu, M.I. Ejimofor, M.C. Menkiti, Turbidimetric study for the decontamination of paint effluent (PE) using mucuna seed coagulant (MSC): statistical design and coag-flocculation modeling, Environ. Adv., 2 (2020) 100023, doi: 10.1016/j.envadv.2020.100023.
  9. B.K. Korbahti, N. Aktas, A. Tanyolaç, Optimization of electrochemical treatment of industrial paint wastewater with response surface methodology, J. Hazard. Mater., 148 (2007) 83–90.
  10. B.K. Korbahti, A. Tanyolaç, Electrochemical treatment of simulated industrial paint wastewater in a continuous tubular reactor, Chem. Eng. J., 148 (2009) 444–451.
  11. L.F. da Silva, A.D. Barbosa, H.M. de Paula, L.L. Romualdo, L.S. Andrade, Treatment of paint manufacturing wastewater by coagulation/electrochemical methods: proposals for disposal and/or reuse of treated water, Water Res., 101 (2016) 467–475.
  12. A.D. Barbosa, L.F. da Silva, H.M. de Paula, L.L. Romualdo, G. Sadoyama, L.S. Andrade, Combined use of coagulation (M. oleifera) and electrochemical techniques in the treatment of industrial paint wastewater for reuse and/or disposal, Water Res., 145 (2018) 153–161.
  13. I.S. de Oliveira, L.C. VianaVerona, V.L.V. Fallavena, C.M.N. Azevedo, M. Pires, Alkydic resin wastewaters treatment by Fenton and photo-Fenton processes, J. Hazard. Mater., 146 (2007) 564–568.
  14. U. Kurt, Y. Avsar, M.T. Gonullu, Treatability of water-based paint wastewater with Fenton process in different reactor types, Chemosphere, 64 (2006) 1536–1540.
  15. M.A. Quiroz, E.R. Bandala, C.A. Martínez-Huitle, Advanced Oxidation Processes (AOPs) for Removal of Pesticides From Aqueous Media, M. Stoytcheva, Ed., Pesticides - Formulations, Effects, Fate, InTechOpen, London, 2011.
  16. D.P. Zagklis, P.G. Koutsoukos, C.A. Paraskeva, A combined coagulation/flocculation and membrane filtration process for the treatment of paint industry wastewaters, Ind. Eng. Chem. Res., 51 (2012) 15456–15462.
  17. M.A. Oturan, J.J. Aaron, Advanced oxidation processes in water/wastewater treatment: principles and applications. A review, Crit. Rev. Env. Sci. Technol., 44 (2014) 2577–2641.
  18. M.H. Zhang, H. Dong, L. Zhao, D. Wang, D. Meng, A review on Fenton process for organic wastewater treatment based on optimization perspective, Sci. Total Environ., 670 (2019) 110–121.
  19. K. Thirugnanasambandham, V. Sivakumar, J.P. Maran, Response surface modelling and optimization of treatment of meat industry wastewater using electrochemical treatment method, J. Taiwan Inst. Chem. Eng., 46 (2015) 160–167.
  20. J.M. Parks, On stochastic optimization: Taguchi methods demystified; its limitations and fallacy clarified, Probab. Eng. Mech., 16 (2001) 87–101.
  21. K. Yang, E.C. Teo, F.K. Fuss, Application of Taguchi method in optimization of cervical ring cage, J. Biomech., 40 (2007) 3251–3256.
  22. M.P. Elizalde-Gonzalez, L.E. Garcia-Diaz, Application of a Taguchi L16 orthogonal array for optimizing the removal of Acid Orange 8 using carbon with a low specific surface area, Chem. Eng. J., 163 (2010) 55–61.
  23. N. Yusoff, M. Ramasany, S. Yusup, Taguchi’s parametric design approach for the selection of optimization variables in a refrigerated gas plant, Chem. Eng. Res. Des., 89 (2011) 665–675.
  24. A. Deghles, U. Kurt, Treatment of raw tannery wastewater by electrocoagulation technique: optimization of effective parameters using Taguchi method, Desal. Water Treat., 57 (2016) 14798–14809.
  25. H.Y. Yen, C.P. Lin, Adsorption of Cd(II) from wastewater using spent coffee grounds by Taguchi optimization, Desal. Water Treat., 57 (2016) 11154–11161.
  26. F. Özyonar, Optimization of operational parameters of electrocoagulation process for real textile wastewater treatment using Taguchi experimental design method, Desal. Water Treat., 57 (2016) 2389–2399.
  27. F. Özyonar, H. Muratcobanoglu, O. Gökkus, Taguchi approach for color removal using electrocoagulation with different electrode connection types, Fresenius Environ. Bull., 26 (2017) 7600–7607.
  28. Ö. Apaydin, E. Özkan, Landfill leachate treatment with electrocoagulation: optimization by using Taguchi method, Desal. Water Treat., 173 (2020) 65–76.
  29. O. Gökkus, Y.S. Yildiz, B. Yavuz, Optimization of chemical coagulation of real textile wastewater using Taguchi experimental design method, Desal. Water Treat., 49 (2012) 263–271.
  30. APHA, AWWA, Standard Methods for the Examination of Water and Wastewater, 20th ed., American Public Health Association, Washington D.C., 1998.
  31. S.K. Singh, H.S. Mali, D.R. Unune, S. Wojciechowski, D. Wilczyński, Application of generalized regression neural network and Gaussian process regression for modelling hybrid micro-electric discharge machining: a comparative study, Processes, 10 (2022) 755, doi: 10.3390/pr10040755.
  32. Z. Wang, X. Jiang, B. Song, G. Yang, W. Liu, T. Liu, Z. Ni, R. Zhang, PSO-BP-based morphology prediction method for DED remanufactured deposited layers, Sustainability, 15 (2023) 6437, doi: 10.3390/su15086437.
  33. S.S. Yang, S.Y. Derakhshan, F.Y. Kong, Theoretical, numerical and experimental prediction of pump as turbine performance, Renewable Energy, 48 (2012) 507–513.
  34. J. Zhang, S. Chen, Y. Zhang, X. Quan, H. Zhao, Y. Zhang, Reduction of acute toxicity and genotoxicity of dye effluent using Fenton-coagulation process, J. Hazard. Mater., 274 (2014) 198–204.
  35. R. Lin, Y. Li, T. Yong, W. Cao, J. Wu, Y. Shen, Synergistic effects of oxidation, coagulation and adsorption in the integrated Fentonbased process for wastewater treatment: a review, J. Environ. Manage., 306 (2022) 114460, doi: 10.1016/j.jenvman.2022.114460.
  36. L.M. Nieto, G. Hodaifa, S. Rodríguez, J.A. Giménez, J. Ochando, Degradation of organic matter in olive-oil mill wastewater through homogeneous Fenton-like reaction, Chem. Eng. J., 173 (2011) 503–510.
  37. X.Q. Fan, H.Y. Hao, Y.C. Wang, F. Chen, J.L. Zhang, Fentonlike degradation of nalidixic acid with Fe3+/H2O2, Environ. Sci. Pollut. Res., 20 (2013) 3649–3656.
  38. Q. Wang, S.L. Tian, P. Ning, Ferrocene-catalyzed heterogeneous Fenton-like degradation of methylene blue: influence of initial solution pH, Ind. Eng. Chem. Res., 53 (2014) 6334–6340.
  39. J. Zhai, H. Ma, J. Liao, M.H. Rahaman, Z. Yang, Z. Chen, Comparison of Fenton, ultraviolet-Fenton and ultrasonic-Fenton processes on organics and colour removal from pre-treated natural gas produced water, Int. J. Environ. Sci. Technol., 15 (2018) 2411–2422.
  40. Z.X. Liu, L.J. Zhang, F.H. Dong, J. Dang, K.L. Wang, D. Wu, J. Zhang, J. Fang, Preparation of ultrasmall goethite nanorods and their application as heterogeneous Fenton reaction catalysts in the degradation of azo dyes, ACS Appl. Nano Mater., 1 (2018) 4170–4178.
  41. X.H. Li, S. Chen, I. Angelidaki, Y.F. Zhang, Bio-electro-Fenton processes for wastewater treatment: advances and prospects, Chem. Eng. J., 354 (2018) 492–506.
  42. C.J. Hu, D.L. Huang, G.M. Zeng, M. Cheng, X.M. Gong, R.Z. Wang, W.J. Xue, Z.X. Hu, Y.N. Liu, The combination of Fenton process and Phanerochaete chrysosporium for the removal of bisphenol A in river sediments: mechanism related to extracellular enzyme, organic acid and iron, Chem. Eng. J., 338 (2018) 432–439.
  43. M. Panizza, G. Cerisola, Electro-Fenton degradation of synthetic dyes, Water Res., 43 (2009) 339–344.
  44. S.G. Poulopoulos, M. Nikolaki, D. Karampetsos, C.J. Philippopoulos, Photochemical treatment of 2-chlorophenol aqueous solutions using ultraviolet radiation, hydrogen peroxide and photo-Fenton reaction, J. Hazard. Mater., 153 (2008) 582–587.
  45. O.G. Rodríguez, J.A. Bañuelos, A. El-Ghenymy, L.A. Godínez, E. Brillas, F.J. Rodríguez-Valadez, Use of a carbon feltiron oxide air-diffusion cathode for the mineralization of Malachite Green dye by heterogeneous electro-Fenton and UVA photoelectro-Fenton processes, J. Electroanal. Chem., 767 (2016) 40–48.