Guest Faculty, Department of Chemistry, Maltidhari College Naubatpur, Patliputra, University
JournalPIJST
Volume / Issue1 / 9
Pages56–65
Published30 Sep 2024
Paper IDPIJST19S24006
Views / Downloads1 / 0
Article summary
Abstract
Electro-oxidation (EO) is a new way to treat wastewater that looks like it could be a good way to get rid of both organic and inorganic pollutants from both commercial and household wastewater. In this study, the process of electro-oxidation is looked into, along with how it affects important aspects of wastewater quality, including pH, sediment, biological oxygen demand (BOD), chemical oxygen demand (COD), and total organic carbon (TOC). An electric current is sent through wires to create reactive oxygen species like hydroxyl radicals. These radicals oxidize and break down complicated pollution into simpler molecules that are not harmful. EO is very good at breaking down toxins like heavy metals, dyes, and medicines that are hard to break down. This makes the waste much better and the world safer. Additionally, electro-oxidation helps to stabilize wastewater by lowering the number of pathogens and increasing biodegradability. This makes cleaned water safe to reuse or release into the environment. Different operating factors, such as electrode material, current density, electrolyte content, and holding time, can change how well EO works. Even though there are problems with how much energy it uses and how much electrodes cost, the rising need for environmentally friendly and effective water treatment methods makes EO even more important. This research shows that electro-oxidation could be a good choice to or addition to current ways of treating wastewater.
Keywords
Electro-oxidationWastewater treatmentChemical oxygen demandWater qualityStabilization. I
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How to cite this article
Mukesh Kumar (2024). ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY. Procedure International Journal of Science and Technology, 1(9), 56–65. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability
Mukesh Kumar. “ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY.” Procedure International Journal of Science and Technology, vol. 1, no. 9, 2024, pp. 56–65. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability
Mukesh Kumar. “ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY.” Procedure International Journal of Science and Technology 1, no. 9 (2024): 56–65. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability
Mukesh Kumar (2024) ‘ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY’, Procedure International Journal of Science and Technology, 1(9), pp. 56–65. Available at: https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability.
Mukesh Kumar, “ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY,” Procedure International Journal of Science and Technology, vol. 1, no. 9, pp. 56–65, 2024. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability.
Mukesh Kumar. ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY. Procedure International Journal of Science and Technology. 2024;1(9):56–65. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability.
Mukesh Kumar. ELECTRO-OXIDATION AND ITS EFFECT ON PARAMETERS AFFECTING WASTEWATER QUALITY AND STABILITY. Procedure International Journal of Science and Technology 2024, 1 (9), 56–65. https://www.pijst.com/article/pijst19s24006/electro-oxidation-and-its-effect-on-parameters-affecting-wastewater-quality-and-stability.
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J. Navarro et al., “Electro-oxidation in combination with biological processes for removal of persistent pollutants in wastewater: A review,” J. Electrochem. Sci. Technol., vol. 13, no. 1, 2021.
N. Ungureanu, V. Vladut, M. Cristea, and D. Cujbescu, “Wastewater electrooxidation using stainless steel electrodes,” E3S Web Conf., vol. 180, pp. 3– 15, 2020.
R. Ardhianto and A. Bagastyo, “Personal care wastewater treatment with electrocoagulation and electro-oxidation,” E3S Web Conf., vol. 125, pp. 3–8, 2019.
M. Changmai, M. Pasawan, and M. K. Purkait, “Treatment of oily wastewater from drilling site using electrocoagulation followed by microfiltration,” Sep. Purif. Technol., vol. 210, no. 1, pp. 463–472, 2019.
Dimoglo, P. Sevim-Elibol, O. Dinç, K. Gökmen, and H. Erdoðan, “Electrocoagulation/electroflotation as a combined process for the laundry wastewater purification and reuse,” J. Water Process Eng., vol. 31, 100877, 2019.
G. Hasani et al., “A comparative optimization and performance analysis of four different electrocoagulation-flotation processes for humic acid removal from aqueous solutions,” Process Saf. Environ. Prot., vol. 121, pp. 103–117, 2019.
T. Tien and T. Luu, “Electrooxidation of tannery wastewater with continuous flow system: Role of electrode materials,” Environ. Eng. Res., vol. 25, no. 3, pp. 1–16, 2019.
S. Garcia-Segura, J. D. Ocon, and M. N. Chong, “Electrochemical oxidation remediation of real wastewater effluents - A review,” Process Saf. Environ. Prot., vol. 113, pp. 48–67, 2018.
Chakchouk, N. Elloumi, C. Belaid, S. Mseddi, L. Chaari, and M. Kallel, “A combined electrocoagulation–electrooxidation treatment for dairy wastewater,” Braz. J. Chem. Eng., vol. 34, no. 1, pp. 109–117, 2017.
D. Moussa, M. El-Naas, M. Nasser, and M. Al-Marri, “A comprehensive review of electrocoagulation for water treatment: Potentials and challenges,” J. Environ. Manage., vol. 186, pp. 24–41, 2017.
T. E. S. Santos et al., “Unexpected enhancement of electrocatalytic nature of Ti/ (RuO)x(SbO)y anodes prepared by ionic liquid-thermal decomposition method,” Ind. Eng. Chem. Res., vol. 55, no. 9, pp. 3182–3187, 2016.
H. Särkkä, A. Bhatnagar, and M. Sillanpää, “Recent developments of electrooxidation in water treatment—A review,” J. Electroanal. Chem., vol. 754, pp. 46, 2015.
C. Becerra-Castro, A. R. Lopes, I. Vaz-Moreira, E. F. Silva, C. M. Manaia, and O. C. Nunes, “Wastewater reuse in irrigation: A microbiological perspective on implications in soil fertility and human and environmental health,” Environ. Int., vol. 75, no. 1, pp. 117–135, 2015.
D. Woisetschläger, B. Humpl, M. Koncar, and M. Siebenhofer, “Electrochemical oxidation of wastewater - Opportunities and drawbacks,” Water Sci. Technol., vol. 68, no. 5, pp. 1173–1179, 2013.
J. M. Aquino, G. F. Pereira, R. C. Rocha-Filho, N. Bocchi, and S. R. Biaggio, “Electrochemical degradation of a real textile effluent using boron-doped diamond or â-PbO as anode,” J. Hazard. Mater., vol. 192, no. 3, pp. 1275–1282, 2011.
K. Bensadok, N. El Hanafi, and F. Lapicque, “Electrochemical treatment of dairy effluent using combined Al and Ti/Pt electrodes system,” Desalination, vol. 280, (Online) pp. 244–251, 2011.
F. Pedrero, I. Kalavrouziotis, J. J. Alarcón, P. Koukoulakis, and T. Asano, “Use of treated municipal wastewater in irrigated agriculture – Review of some practices in Spain and Greece,” Agric. Water Manag., vol. 97, no. 9, pp. 1233–1241, 2010.
Anglada, A. Urtiaga, and I. Ortiz, “Contributions of electrochemical oxidation to wastewater treatment: Fundamentals and review of applications,” J. Chem. Technol. Biotechnol., vol. 84, no. 12, pp. 1747–1755, 2009.