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Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant

The entry of toxic organic pollutants and resistant to biodegradation has increased the concern about human health. The use of advanced oxidation (AO) processes to degrade these pollutants has been developing. One of the AO processes is based on the use of hydrogen peroxide in removing resistant org...

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Autores principales: Fallahzadeh, Reza Ali, Ehrampoush, Mohammad Hassan, Mahvi, Amir Hossein, Ghaneian, Mohammad Taghi, Dalvand, Arash, Salmani, Mohammad Hossein, Fallahzadeh, Hossien, Nabi Meybodi, Mohsen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6558086/
https://www.ncbi.nlm.nih.gov/pubmed/31205863
http://dx.doi.org/10.1016/j.mex.2019.05.036
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author Fallahzadeh, Reza Ali
Ehrampoush, Mohammad Hassan
Mahvi, Amir Hossein
Ghaneian, Mohammad Taghi
Dalvand, Arash
Salmani, Mohammad Hossein
Fallahzadeh, Hossien
Nabi Meybodi, Mohsen
author_facet Fallahzadeh, Reza Ali
Ehrampoush, Mohammad Hassan
Mahvi, Amir Hossein
Ghaneian, Mohammad Taghi
Dalvand, Arash
Salmani, Mohammad Hossein
Fallahzadeh, Hossien
Nabi Meybodi, Mohsen
author_sort Fallahzadeh, Reza Ali
collection PubMed
description The entry of toxic organic pollutants and resistant to biodegradation has increased the concern about human health. The use of advanced oxidation (AO) processes to degrade these pollutants has been developing. One of the AO processes is based on the use of hydrogen peroxide in removing resistant organic pollutants. This study aimed to develop a new reactor capable of producing H(2)O(2) in the solution. Therefore, a porous electrode made of stainless steel with the capability of air injection in the electrode center was used. The 30 cm rod graphite electrodes were also used as an anode electrode in a 4000 ml reactor. The effects of variables, including current density (30–40 mA/cm(2)), time (10–30 min), and electrolyte concentration (12–17 mM/L) on the amount of H(2)O(2) production were evaluated by Box behenken design under response surface methodology using Design expert software. The results of this study showed that H(2)O(2) can be produced at the electrode surface of porous cathode under optimal conditions of 36 mA/cm(2) current density, 16 mM/l electrolyte concentration, in 23 min, and in the amount of 34 ppm. Using a porous cathode electrode causes the maximum contact among the solution, water, and air, and increases the production of H(2)O(2). The release of resistant organic compounds to the waste water is a serious problem to the environment. By the application of the Electro-oxidation (EO)reactor with the ability to produce H(2)O(2), this issue is resolved. Furthermore, this technique is applied for non-selective degradation of the toxic organic compounds. • The electro-oxidation process is a useful method for destruction of persistent organic matter from wastewater. • Due to use of porous cathode in this method, contact between the electrode and the sewage is at its maximum level which increases the efficiency and speed of sewage treatment. • This method can produce H(2)O(2) as a high potential oxidant that can reduce persistent organic properties of sewage and make the wastewater suitable for biological treatment.
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spelling pubmed-65580862019-06-14 Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant Fallahzadeh, Reza Ali Ehrampoush, Mohammad Hassan Mahvi, Amir Hossein Ghaneian, Mohammad Taghi Dalvand, Arash Salmani, Mohammad Hossein Fallahzadeh, Hossien Nabi Meybodi, Mohsen MethodsX Environmental Science The entry of toxic organic pollutants and resistant to biodegradation has increased the concern about human health. The use of advanced oxidation (AO) processes to degrade these pollutants has been developing. One of the AO processes is based on the use of hydrogen peroxide in removing resistant organic pollutants. This study aimed to develop a new reactor capable of producing H(2)O(2) in the solution. Therefore, a porous electrode made of stainless steel with the capability of air injection in the electrode center was used. The 30 cm rod graphite electrodes were also used as an anode electrode in a 4000 ml reactor. The effects of variables, including current density (30–40 mA/cm(2)), time (10–30 min), and electrolyte concentration (12–17 mM/L) on the amount of H(2)O(2) production were evaluated by Box behenken design under response surface methodology using Design expert software. The results of this study showed that H(2)O(2) can be produced at the electrode surface of porous cathode under optimal conditions of 36 mA/cm(2) current density, 16 mM/l electrolyte concentration, in 23 min, and in the amount of 34 ppm. Using a porous cathode electrode causes the maximum contact among the solution, water, and air, and increases the production of H(2)O(2). The release of resistant organic compounds to the waste water is a serious problem to the environment. By the application of the Electro-oxidation (EO)reactor with the ability to produce H(2)O(2), this issue is resolved. Furthermore, this technique is applied for non-selective degradation of the toxic organic compounds. • The electro-oxidation process is a useful method for destruction of persistent organic matter from wastewater. • Due to use of porous cathode in this method, contact between the electrode and the sewage is at its maximum level which increases the efficiency and speed of sewage treatment. • This method can produce H(2)O(2) as a high potential oxidant that can reduce persistent organic properties of sewage and make the wastewater suitable for biological treatment. Elsevier 2019-06-01 /pmc/articles/PMC6558086/ /pubmed/31205863 http://dx.doi.org/10.1016/j.mex.2019.05.036 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Environmental Science
Fallahzadeh, Reza Ali
Ehrampoush, Mohammad Hassan
Mahvi, Amir Hossein
Ghaneian, Mohammad Taghi
Dalvand, Arash
Salmani, Mohammad Hossein
Fallahzadeh, Hossien
Nabi Meybodi, Mohsen
Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title_full Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title_fullStr Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title_full_unstemmed Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title_short Designing and modeling of a novel electrolysis reactor using porous cathode to produce H(2)O(2) as an oxidant
title_sort designing and modeling of a novel electrolysis reactor using porous cathode to produce h(2)o(2) as an oxidant
topic Environmental Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6558086/
https://www.ncbi.nlm.nih.gov/pubmed/31205863
http://dx.doi.org/10.1016/j.mex.2019.05.036
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