Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes

Aim: In this study, the decolorization of methylene blue (MB) by the electro-Fenton process using stainless steel (SS) mesh electrodes was examined. Materials and Methods: The effects of initial dye concentration, pH, and ratio of Fe: H2O2, current density, and type of electrode were studied. The ki...

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Main Authors: Mahshid Loloei, Abbas Rezaee
Format: Article
Language:English
Published: Wolters Kluwer Medknow Publications 2016-01-01
Series:International Journal of Environmental Health Engineering
Subjects:
Online Access:http://www.ijehe.org/article.asp?issn=2277-9183;year=2016;volume=5;issue=1;spage=27;epage=27;aulast=Loloei
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spelling doaj-727a1ee29bec451c8deef89ce8353e2a2020-11-24T22:01:40ZengWolters Kluwer Medknow PublicationsInternational Journal of Environmental Health Engineering 2277-91832016-01-0151272710.4103/2277-9183.196670Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodesMahshid LoloeiAbbas RezaeeAim: In this study, the decolorization of methylene blue (MB) by the electro-Fenton process using stainless steel (SS) mesh electrodes was examined. Materials and Methods: The effects of initial dye concentration, pH, and ratio of Fe: H2O2, current density, and type of electrode were studied. The kinetics of the reactions was also studied. Results: The highest removal rate 99%was obtained at pH 3 within 20 min. Kinetics experiment studies showed that removal of dye was faster at lower initial dye concentrations. The results revealed that color removal was highest at a Fe2+:H2O2 ratio of 1:4. An increase in current density resulted in an increase in oxidation rate and faster removal of color. The results demonstrated that increasing the size of the mesh pores led to an increase in the percentage of dye removal. The highest removal percentage (94.5%) was observed in 25 min with a mesh 2 electrode. The constant rate of dye removal on steel mesh 2 was 6.6 times higher than a steel plate. Energy consumed in this state was = 1.6 kWh/m3, compared to 2.6 kWh/m3 under other conditions. Conclusion: Using SS mesh electrodes was very effective in color removal for MB under optimal conditions. The present study showed that increasing the steel mesh size improved the conditions for color removal and reduced the energy consumption. Therefore, it is suggested that steel mesh be used as an electrode for electrochemical processes.http://www.ijehe.org/article.asp?issn=2277-9183;year=2016;volume=5;issue=1;spage=27;epage=27;aulast=LoloeiAdvanced oxidation processeselectro-Fentonmethylene bluestainless steel meshwastewater
collection DOAJ
language English
format Article
sources DOAJ
author Mahshid Loloei
Abbas Rezaee
spellingShingle Mahshid Loloei
Abbas Rezaee
Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
International Journal of Environmental Health Engineering
Advanced oxidation processes
electro-Fenton
methylene blue
stainless steel mesh
wastewater
author_facet Mahshid Loloei
Abbas Rezaee
author_sort Mahshid Loloei
title Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
title_short Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
title_full Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
title_fullStr Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
title_full_unstemmed Decolorization of methylene blue by the electro-Fenton process using stainless steel mesh electrodes
title_sort decolorization of methylene blue by the electro-fenton process using stainless steel mesh electrodes
publisher Wolters Kluwer Medknow Publications
series International Journal of Environmental Health Engineering
issn 2277-9183
publishDate 2016-01-01
description Aim: In this study, the decolorization of methylene blue (MB) by the electro-Fenton process using stainless steel (SS) mesh electrodes was examined. Materials and Methods: The effects of initial dye concentration, pH, and ratio of Fe: H2O2, current density, and type of electrode were studied. The kinetics of the reactions was also studied. Results: The highest removal rate 99%was obtained at pH 3 within 20 min. Kinetics experiment studies showed that removal of dye was faster at lower initial dye concentrations. The results revealed that color removal was highest at a Fe2+:H2O2 ratio of 1:4. An increase in current density resulted in an increase in oxidation rate and faster removal of color. The results demonstrated that increasing the size of the mesh pores led to an increase in the percentage of dye removal. The highest removal percentage (94.5%) was observed in 25 min with a mesh 2 electrode. The constant rate of dye removal on steel mesh 2 was 6.6 times higher than a steel plate. Energy consumed in this state was = 1.6 kWh/m3, compared to 2.6 kWh/m3 under other conditions. Conclusion: Using SS mesh electrodes was very effective in color removal for MB under optimal conditions. The present study showed that increasing the steel mesh size improved the conditions for color removal and reduced the energy consumption. Therefore, it is suggested that steel mesh be used as an electrode for electrochemical processes.
topic Advanced oxidation processes
electro-Fenton
methylene blue
stainless steel mesh
wastewater
url http://www.ijehe.org/article.asp?issn=2277-9183;year=2016;volume=5;issue=1;spage=27;epage=27;aulast=Loloei
work_keys_str_mv AT mahshidloloei decolorizationofmethylenebluebytheelectrofentonprocessusingstainlesssteelmeshelectrodes
AT abbasrezaee decolorizationofmethylenebluebytheelectrofentonprocessusingstainlesssteelmeshelectrodes
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