Isfahan University of Medical Sciences

Science Communicator Platform

Stay connected! Follow us on X network (Twitter):
Share this content! On (X network) By
A Brief Review on Working Fluid Wastewater Treatment: A Glance at the Disposal of Exhausted Fluids Used in the Organic Rankine Cycle Publisher



Mofrad MMG1 ; Sillanpaa M3, 4, 5 ; Parseh I6 ; Ebrahimi A1 ; Amin MM1
Authors
Show Affiliations
Authors Affiliations
  1. 1. Environment Research Center, Research Institute for Primordial Prevention of Non-communicable Disease, Department of Environmental Health Engineering, School of Health, Isfahan University of Medical Sciences, Isfahan, Iran
  2. 2. Department of Environmental Health Engineering, School of Health, Isfahan University of Medical Sciences, Isfahan, Iran
  3. 3. Department of Chemical Engineering, School of Mining, Metallurgy and Chemical Engineering, University of Johannesburg, Doornfontein, 2028, South Africa
  4. 4. Department of Chemistry, College of Science, King Saud University, Riyadh, Saudi Arabia
  5. 5. Faculty of Science and Technology, School of Applied Physics, University Kebangsaan Malaysia, Selangor, Bangi, Malaysia
  6. 6. Department of Environmental Health Engineering, Behbahan Faculty of Medical Sciences, Behbahan, Iran

Source: Journal of Health Sciences and Surveillance System Published:2022


Abstract

Background: Treating working fluid wastewater (WFW) by having several organic/inorganic pollutants is not an easy task. There are many hurdles to adopt an appropriate treatment strategy through biological, physical, chemical, and electrochemical approaches. Methods: The treatment methods of WFW are reviewed in this work through a critical literature survey. Therefore, databases such as Google scholar, science direct, and PubMed were considered to find literature. Altogether, about 49 articles were finally found relevant to the topic to extract and interpret findings. Results: The best solution to treat WFW could be an integrated approach by designing various AOPs for the pre-treatment and post-treatment of main units. For this reason, and to meet discharge standards, measuring intermediates and the toxicity of reaction solution and final effluent by bioassay could be a complementary tool. Additionally, if the used AOP is a photocatalytic one, applying catalysts with a low energy bandgap and designing reactors to utilize the highest amount of energy is crucial to make a process cost-effective. Furthermore, using aeration could increase the number of radicals by supplying oxygen and removing contaminants from the reaction medium. Finally, if AOPs are the pretreatment unit, removing halogens should be done to predict floc breakage in the next step. Conclusion: Hybrid treatment approaches with at least 80% efficiency in degrading and removing micropollutants could be reliable methods to dispose of working fluid wastewater. However, further research on them in the future is essential because of discharging a considerable volume of them annually worldwide. © 2022 Shriaz University of Medical Sciences
Experts (# of related papers)
Other Related Docs
12. Advanced Oxidation Treatment of Composting Leachate of Municipal Solid Waste by Ozone-Hydrogen Peroxide, International Journal of Environmental Health Engineering (2014)
17. Application of Coagulation Process Reactive Blue 19 Dye Removal From Textile Industry Wastewater, International Journal of Environmental Health Engineering (2012)
20. Degradation of Di-2-Ethylhexyl Phthalate in Aqueous Solution by Advanced Oxidation Process, International Journal of Environmental Health Engineering (2015)
21. Micropollutants and Challenges: Emerging in the Aquatic Environments and Treatment Processes, Micropollutants and Challenges: Emerging in the Aquatic Environments and Treatment Processes (2020)
24. A Review on Wastewater Disinfection, International Journal of Environmental Health Engineering (2013)
26. Evaluation of Flat Sheet Membrane Bioreactor Efficiency for Municipal Wastewater Treatment, International Journal of Environmental Health Engineering (2012)
34. Determination of Biokinetic Coefficients for Activated Sludge Processes on Municipal Wastewater, Iranian Journal of Environmental Health Science and Engineering (2011)
35. The Study of Leachate Treatment by Using Three Advanced Oxidation Process Based Wet Air Oxidation, Iranian Journal of Environmental Health Science and Engineering (2013)
38. Decolorization of Synthetic Wastewaters by Nickel Oxide Nanoparticle, International Journal of Environmental Health Engineering (2012)
39. Introduction, Micropollutants and Challenges: Emerging in the Aquatic Environments and Treatment Processes (2020)
47. Determination of Design Parameters of Urban Wastewater Treatment Plants in the Cold Regions of Iran, International Journal of Environmental Health Engineering (2012)
48. Nickel (Ii) Removal From Industrial Plating Effluent by Fenton Process, Environmental Engineering and Management Journal (2015)
50. Use of a Uv/H2o2 Process for Posttreatment of a Biologically Treated Composting Leachate, Turkish Journal of Engineering and Environmental Sciences (2014)