Araştırma Makalesi
BibTex RIS Kaynak Göster

PERFORMANCE COMPARISON OF UV, UV/H2O2, UV/Fe2+, H2O2/Fe2+, UV/H2O2/Fe2+ PROCESSES IN THE REMOVAL OF COD AND COLOR FROM TEXTILE WASTEWATER

Yıl 2020, Sayı: 045, 236 - 252, 31.12.2020

Öz

In this study, the removal of chemical oxygen demand (COD) and color from textile industry wastewater were investigated in comparison with UV, UV/H2O2, UV/Fe2+, H2O2/Fe2+, UV/H2O2/Fe2+ processes. Initial pH, hydrogen peroxide dosage, ferrous iron dosage, and UV radiation were selected as variables. A maximum of 95.65% COD and 98.52% color removal were achieved by the photo-Fenton method. Another effective method was Fenton process by which 83.76% COD and 80.44% color removal efficiencies were obtained. It was concluded that the Fe2+/H2O2 process (Fenton) with UV light (photo-Fenton) can provide higher removal efficiencies in shorter process times in the treatment of textile wastewater.

Destekleyen Kurum

Ondokuz Mayıs Üniversitesi, Proje Yönetim Ofisi

Proje Numarası

PYO.MUH.1904.19.008

Teşekkür

This study was supported by the Scientific Research Project Fund of Ondokuzmayis University. We would like to thank for their support.

Kaynakça

  • [1] Silva, G.M., Moreira, F.C., Alice, M., Mazur, L.P., Souza, A.U., Boaventura, A.R., Vilar, J.P, (2020), Integration of Fenton's reaction based processes and cation exchange processes in textile wastewater treatment as a strategy for water reuse, Journal of Environmental Management, 272, 111082.
  • [2] Pereda, B.R., Gallegos, A.A., Terrones, Y.A, Silva, S., Perez, A.H., (2020), Effective Electro-Fenton Treatment for Real Textile Effluent. A Case Study, Journal of Water Engineering, 37, 101434.
  • [3] Asghar, A., Raman, A.A. and Daud, W.M., (2015), Advanced oxidation processes for in-situ production of hydrogen peroxide/hydroxyl radical for textile wastewater treatment: a review, Journal of Cleaner Production, 87, 826-838.
  • [4] Kang, S.F., Liao, C.H. and Po, S.T., (2000), Color removal of textile wastewater by photo-fenton oxidation technology, Chemosphere, 41, -1287-1294.
  • [5] Bali, U., Çatalkaya, E. and Şengül, F., (2004), Photodegradation of Reactive Black 5, Direct Red 28 and Direct Yellow 12 using UV, UV/ H2O2 and UV/ H2O2/Fe2+: a comparative study, Journal of Hazardous Materials, B-114, 159-166.
  • [6] Ghanbari, F. and Moradi, M., (2015), A comparative study of electrocoagulation, electrochemical Fenton, electro-Fenton and peroxi-coagulation for color removal of real textile wastewater: Electrical energy consumption and biodegradability improvement, Journal of Environmental Chemical Engineering, 3, 499-506.
  • [7] Perez, M., torrades, F., Domenech, X. and Peral, J., (2002), Fenton and photo-Fenton oxidation of textile effluents, Water Research, 36, 2703-2710.
  • [8] Gilpavas, E., Gomez, I.D. and Garcia, M.A.G., (2018), Optimization of solar-driven photo-electro-Fenton process for the treatment of textile industrial wastewater, Journal of Water Process Engineering, 24, 49-55.
  • [9] Gilpavas, E., Gomez, I.D. and garcia, M.A.G., (2019), Optimization and toxicity assessment of a combined electrocoagulation, H2O2/ Fe2+/UV and activated carbon adsorption for textile wastewater treatment, Science of the Total Environment, 651, 551-560.
  • [10] Sreeja, P.H. and Sosamony, K.J., (2016), A Comparative Study of Homogeneous and Heterogeneous Photo-Fenton Process for Textile Wastewater Treatment, Procedia Technology, 24, 217-223.
  • [11] Rott, E., Minke, R., Bali, U. and Steinmetz, H., (2017), Removal of phosphonates from industrial wastewater with UV/Fe(II), Fenton and UV/Fenton treatment, Water Research, 122, 345-354.
  • [12] Zhang, H., Choi, H.J. and Huang, C.P., (2005), Optimization of Fenton process for the treatment of landfill leachate, Journal of Hazardous Materials, B125, 166-174.
  • [13] Umar, M., Aziz, H.A. and Yusoff, M.S., (2010), Review: Trends in the use of Fenton, electro-Fenton and photo-Fenton for the treatment of landfill leachate, Waste Management, 30, 2113-2121.
  • [14] Rice, E.W., Baird, R.B., Eaton, A.D., and Bridgewater, L.L., (2012), Standard Methods in Examination of Water and Wastewater, twenty-three ed. Water Environment Federation, American Public Health Association, American Water Works Association (APHA-AWWA).
Yıl 2020, Sayı: 045, 236 - 252, 31.12.2020

Öz

Proje Numarası

PYO.MUH.1904.19.008

Kaynakça

  • [1] Silva, G.M., Moreira, F.C., Alice, M., Mazur, L.P., Souza, A.U., Boaventura, A.R., Vilar, J.P, (2020), Integration of Fenton's reaction based processes and cation exchange processes in textile wastewater treatment as a strategy for water reuse, Journal of Environmental Management, 272, 111082.
  • [2] Pereda, B.R., Gallegos, A.A., Terrones, Y.A, Silva, S., Perez, A.H., (2020), Effective Electro-Fenton Treatment for Real Textile Effluent. A Case Study, Journal of Water Engineering, 37, 101434.
  • [3] Asghar, A., Raman, A.A. and Daud, W.M., (2015), Advanced oxidation processes for in-situ production of hydrogen peroxide/hydroxyl radical for textile wastewater treatment: a review, Journal of Cleaner Production, 87, 826-838.
  • [4] Kang, S.F., Liao, C.H. and Po, S.T., (2000), Color removal of textile wastewater by photo-fenton oxidation technology, Chemosphere, 41, -1287-1294.
  • [5] Bali, U., Çatalkaya, E. and Şengül, F., (2004), Photodegradation of Reactive Black 5, Direct Red 28 and Direct Yellow 12 using UV, UV/ H2O2 and UV/ H2O2/Fe2+: a comparative study, Journal of Hazardous Materials, B-114, 159-166.
  • [6] Ghanbari, F. and Moradi, M., (2015), A comparative study of electrocoagulation, electrochemical Fenton, electro-Fenton and peroxi-coagulation for color removal of real textile wastewater: Electrical energy consumption and biodegradability improvement, Journal of Environmental Chemical Engineering, 3, 499-506.
  • [7] Perez, M., torrades, F., Domenech, X. and Peral, J., (2002), Fenton and photo-Fenton oxidation of textile effluents, Water Research, 36, 2703-2710.
  • [8] Gilpavas, E., Gomez, I.D. and Garcia, M.A.G., (2018), Optimization of solar-driven photo-electro-Fenton process for the treatment of textile industrial wastewater, Journal of Water Process Engineering, 24, 49-55.
  • [9] Gilpavas, E., Gomez, I.D. and garcia, M.A.G., (2019), Optimization and toxicity assessment of a combined electrocoagulation, H2O2/ Fe2+/UV and activated carbon adsorption for textile wastewater treatment, Science of the Total Environment, 651, 551-560.
  • [10] Sreeja, P.H. and Sosamony, K.J., (2016), A Comparative Study of Homogeneous and Heterogeneous Photo-Fenton Process for Textile Wastewater Treatment, Procedia Technology, 24, 217-223.
  • [11] Rott, E., Minke, R., Bali, U. and Steinmetz, H., (2017), Removal of phosphonates from industrial wastewater with UV/Fe(II), Fenton and UV/Fenton treatment, Water Research, 122, 345-354.
  • [12] Zhang, H., Choi, H.J. and Huang, C.P., (2005), Optimization of Fenton process for the treatment of landfill leachate, Journal of Hazardous Materials, B125, 166-174.
  • [13] Umar, M., Aziz, H.A. and Yusoff, M.S., (2010), Review: Trends in the use of Fenton, electro-Fenton and photo-Fenton for the treatment of landfill leachate, Waste Management, 30, 2113-2121.
  • [14] Rice, E.W., Baird, R.B., Eaton, A.D., and Bridgewater, L.L., (2012), Standard Methods in Examination of Water and Wastewater, twenty-three ed. Water Environment Federation, American Public Health Association, American Water Works Association (APHA-AWWA).
Toplam 14 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Research Articles
Yazarlar

Nevzat Beyazıt

Hande Karaca 0000-0001-5868-0625

Proje Numarası PYO.MUH.1904.19.008
Yayımlanma Tarihi 31 Aralık 2020
Gönderilme Tarihi 29 Ekim 2020
Yayımlandığı Sayı Yıl 2020 Sayı: 045

Kaynak Göster

IEEE N. Beyazıt ve H. Karaca, “PERFORMANCE COMPARISON OF UV, UV/H2O2, UV/Fe2+, H2O2/Fe2+, UV/H2O2/Fe2+ PROCESSES IN THE REMOVAL OF COD AND COLOR FROM TEXTILE WASTEWATER”, JSR-A, sy. 045, ss. 236–252, Aralık 2020.