دوره 14، شماره 1 - ( 3-1405 )                   جلد 14 شماره 1 صفحات 130-113 | برگشت به فهرست نسخه ها

XML English Abstract Print


Download citation:
BibTeX | RIS | EndNote | Medlars | ProCite | Reference Manager | RefWorks
Send citation to:

Nadimi H, Mortezazadeh F, Ahmadi Nasab M, Changani F. Narrative review of Ozone-Based Advanced Oxidation Processes for Wastewater Treatment. J Environ Health Eng 2026; 14 (1) :113-130
URL: http://jehe.abzums.ac.ir/article-1-1163-fa.html
ندیمی حجت، مرتضی زاده فاطمه، احمدی نسب مهدی، چنگانی فضل اله. مرور روایتی فرآیندهای اکسیداسیون پیشرفته مبتنی بر ازن در تصفیه فاضلاب. مجله مهندسی بهداشت محیط. 1405; 14 (1) :113-130

URL: http://jehe.abzums.ac.ir/article-1-1163-fa.html


1- گروه مهندسی بهداشت محیط، دانشکده بهداشت، دانشگاه علوم پزشکی تهران، تهران، ایران و مرکز پژوهش‌های علمی دانشجویان(SSRC)، دانشگاه علوم پزشکی تهران، تهران، ایران ، hojat.nadimi2910@gmail.com
2- گروه مهندسی بهداشت محیط، دانشکده بهداشت، دانشگاه علوم پزشکی تهران، تهران، ایران و مرکز پژوهش‌های علمی دانشجویان(SSRC)، دانشگاه علوم پزشکی تهران، تهران، ایران
3- گروه مهندسی بهداشت محیط، دانشکده بهداشت، دانشگاه علوم پزشکی تهران، تهران، ایران
چکیده:   (133 مشاهده)
زمینه و هدف: افزایش آلاینده‌های آلی دیرتجزیه‌پذیر در منابع آبی، ضرورت به‌کارگیری فناوری‌های تصفیه پیشرفته را بیش از پیش آشکار ساخته است. فرآیندهای اکسیداسیون پیشرفته مبتنی بر ازن به‌عنوان یکی از راه‌حل‌ها موثر وپایدار مطرح می‌باشند. این مطالعه با هدف ارزیابی نقادانه کارایی این فرآیندها و مقایسه پیشرفت‌های جهانی با وضعیت کنونی ایران انجام شده است.
مواد و روش‌ها: این مرور روایی با جستجوی نظام‌مند در پایگاه‌های  ScienceDirect، PubMed،  Web of Science و Scopus  با کلیدواژه‌های مرتبط با فاضلاب، اکسیداسیون پیشرفته، ازن و ایران انجام شد. از میان ۱۷۸ مقاله بازیابی‌شده در بازه زمانی ۲۰۱۰ تا اوایل ۲۰۲۶، پس از غربالگری، ۸۳ مطالعه اصیل داوری‌شده با معیارهای ورود مطابقت داشته و تحلیل گردیدند.
یافته‌ها: فرآیندهای اکسیداسیون پیشرفته مبتنی بر ازن، شامل ازن‌زنی تنها، ازن/پراکسید هیدروژن، ازن/فرابنفش، ازن‌زنی کاتالیستی، ازن/پرسولفات، الکترو-پراکسِن و سامانه‌های ترکیبی به‌کمک کاویتاسیون، از طریق سازوکار دوگانه اکسیداسیون مستقیم و تولید رادیکال‌های رادیکال‌های هیدروکسیل و سولفات ، راندمان حذف بیش از ۹۰ تا ۱۰۰ درصد را برای ترکیبات دارویی، رنگ‌ها و آفت‌کش‌ها حاصل می‌نمایند. سامانه‌های ترکیبی در مقایسه با ازن‌زنی تنها، سینتیک واکنش را ۲ تا ۱۰ برابر افزایش و مصرف ازن را ۳۰ تا ۷۰ درصد کاهش می‌دهند، ضمن آنکه زیست‌تجزیه‌پذیری پساب را بهبود بخشیده و تشکیل محصولات جانبی سمی را به حداقل می‌رسانند. فناوری‌های نوینی مانند نانوحباب‌های ازن و کاویتاسیون، انتقال جرم و مقرون‌به‌صرفگی را ارتقا می‌دهند. در ایران، مطالعات پایلوت عملکرد فنی قابل‌قیاسی با معیارهای جهانی نشان می‌دهند، اما پذیرش مقیاس کامل به دلیل تقاضای بالای انرژی (۲۰-۱۲ کیلووات‌ساعت به ازای هر کیلوگرم ازن)، ضعف چارچوب‌های نظارتی و کمبود زیرساخت‌ها محدود مانده است.
نتیجه‌گیری: فرآیندهای اکسیداسیون پیشرفته مبتنی بر ازن، فناوری‌ای مؤثر، چندمنظوره و به‌طور فزاینده‌ای پایدار برای تصفیه پیشرفته فاضلاب و بازاستفاده از آب هستند. پر کردن شکاف‌های پژوهشی در پایش سمیت بلندمدت، تدوین پروتکل‌های استاندارد و ارزیابی اقتصادی، همراه با مشوق‌های سیاستی، می‌تواند نقشی محوری در ارتقای کیفیت منابع آب در ایران و جهان ایفا نماید.
متن کامل [PDF 1956 kb]   (49 دریافت)    
نوع مطالعه: پژوهشي | موضوع مقاله: تخصصي
دریافت: 1405/2/5 | پذیرش: 1405/3/17 | انتشار: 1405/3/30

فهرست منابع
1. Mortezazadeh F, Nasab MA, Javid A, Changani F, Dehghani MH. A review of UV-based advanced oxidation processes in wastewater treatment systems. Desalination and Water Treatment. 2025:101388. [DOI:10.1016/j.dwt.2025.101388]
2. Dhakal N, Salinas-Rodriguez SG, Hamdani J, Abushaban A, Sawalha H, Schippers JC, et al. Is desalination a solution to freshwater scarcity in developing countries? Membranes. 2022;12(4):381. [DOI:10.3390/membranes12040381]
3. Al-Khatib LA, AlHanaktah AM. Wastewater Treatment Plant Upgrade and Its Interlinkages with the Sustainable Development Goals. Resources. 2025;14(4):62. [DOI:10.3390/resources14040062]
4. Poyatos JM, Muñio M, Almecija M, Torres J, Hontoria E, Osorio F. Advanced oxidation processes for wastewater treatment: state of the art. Water, Air, and Soil Pollution. 2010;205(1):187-204. [DOI:10.1007/s11270-009-0065-1]
5. Abuhasel K, Kchaou M, Alquraish M, Munusamy Y, Jeng YT. Oily wastewater treatment: overview of conventional and modern methods, challenges, and future opportunities. Water. 2021;13(7):980. [DOI:10.3390/w13070980]
6. Kumar P, Singh J. Perspective and challenges of synergistic removal of toxic contaminants from effluent using different treatment techniques. Microbial Niche Nexus Sustaining Environmental Biological Wastewater and Water-Energy-Environment Nexus: Springer; 2025. p. 419-51. [DOI:10.1007/978-3-031-62660-9_17]
7. Zehtabian E, Masoudi R, Yazdandoost F, Sedghi-Asl M, Loáiciga HA. Investigation of water allocation using integrated water resource management approaches in the Zayandehroud River basin, Iran. Journal of Cleaner Production. 2023;395:136339. [DOI:10.1016/j.jclepro.2023.136339]
8. Afolalu SA, Ikumapayi OM, Ogedengbe TS, Kazeem RA, Ogundipe AT. Waste pollution, wastewater and effluent treatment methods-an overview. Materials Today: Proceedings. 2022;62:3282-8. [DOI:10.1016/j.matpr.2022.04.231]
9. Mirzaei R, Mesdaghinia A, Hoseini SS, Yunesian M. Antibiotics in urban wastewater and rivers of Tehran, Iran: Consumption, mass load, occurrence, and ecological risk. Chemosphere. 2019;221:55-66. [DOI:10.1016/j.chemosphere.2018.12.187]
10. Mirzaei R, Yunesian M, Nasseri S, Gholami M, Jalilzadeh E, Shoeibi S, et al. Occurrence and fate of most prescribed antibiotics in different water environments of Tehran, Iran. Science of the total environment. 2018;619:446-59. [DOI:10.1016/j.scitotenv.2017.07.272]
11. Daliri M, Martinez-Morcillo S, Sharifinia M, Javdan G, Keshavarzifard M. Occurrence and ecological risk assessment of antibiotic residues in urban wastewater discharged into the coastal environment of the Persian Gulf (the case of Bandar Abbas). Environmental Monitoring and Assessment. 2022;194(12):905. [DOI:10.1007/s10661-022-10579-7]
12. Akbarzadeh A, Valipour A, Meshkati SMH, Hamnabard N. Municipal wastewater treatment in Iran: current situation, barriers and future policies. Journal of Advances in Environmental Health Research. 2023;11(1):60-71. [DOI:10.34172/jaehr.2023.08]
13. Alizadeh S, Zafari-Koloukhi H, Rostami F, Rouhbakhsh M, Avami A. The eco-efficiency assessment of wastewater treatment plants in the city of Mashhad using emergy and life cycle analyses. Journal of Cleaner Production. 2020;249:119327. [DOI:10.1016/j.jclepro.2019.119327]
14. Saravanan A, Kumar PS, Jeevanantham S, Karishma S, Tajsabreen B, Yaashikaa P, et al. Effective water/wastewater treatment methodologies for toxic pollutants removal: Processes and applications towards sustainable development. Chemosphere. 2021;280:130595. [DOI:10.1016/j.chemosphere.2021.130595]
15. Deng Y, Zhao R. Advanced oxidation processes (AOPs) in wastewater treatment. Current pollution reports. 2015;1(3):167-76. [DOI:10.1007/s40726-015-0015-z]
16. Wang J, Wang S. Toxicity changes of wastewater during various advanced oxidation processes treatment: An overview. Journal of Cleaner Production. 2021;315:128202. [DOI:10.1016/j.jclepro.2021.128202]
17. Mukherjee J, Lodh BK, Sharma R, Mahata N, Shah MP, Mandal S, et al. Advanced oxidation process for the treatment of industrial wastewater: A review on strategies, mechanisms, bottlenecks and prospects. Chemosphere. 2023;345:140473. [DOI:10.1016/j.chemosphere.2023.140473]
18. Khan AH, Khan NA, Ahmed S, Dhingra A, Singh CP, Khan SU, et al. Application of advanced oxidation processes followed by different treatment technologies for hospital wastewater treatment. Journal of Cleaner Production. 2020;269:122411. [DOI:10.1016/j.jclepro.2020.122411]
19. Guo K, Wu Z, Chen C, Fang J. UV/chlorine process: an efficient advanced oxidation process with multiple radicals and functions in water treatment. Accounts of Chemical Research. 2022;55(3):286-97. [DOI:10.1021/acs.accounts.1c00269]
20. Li S, Yang Y, Zheng H, Zheng Y, Jing T, Ma J, et al. Advanced oxidation process based on hydroxyl and sulfate radicals to degrade refractory organic pollutants in landfill leachate. Chemosphere. 2022;297:134214. [DOI:10.1016/j.chemosphere.2022.134214]
21. Mahmoodi M, Pishbin E. Ozone-based advanced oxidation processes in water treatment: Recent advances, challenges, and perspective. Environmental Science and Pollution Research. 2025;32(7):3531-70. [DOI:10.1007/s11356-024-35835-w]
22. Jamali GA, Devrajani SK, Memon SA, Qureshi SS, Anbuchezhiyan G, Mubarak NM, et al. Holistic insight mechanism of ozone-based oxidation process for wastewater treatment. Chemosphere. 2024;359:142303. [DOI:10.1016/j.chemosphere.2024.142303]
23. Lin Q, Dong F, Li C, Cui J. Disinfection byproduct formation from algal organic matters after ozonation or ozone combined with activated carbon treatment with subsequent chlorination. Journal of Environmental Sciences. 2021;104:233-41. [DOI:10.1016/j.jes.2020.12.009]
24. Bilińska L, Gmurek M, Ledakowicz S. Comparison between industrial and simulated textile wastewater treatment by AOPs-Biodegradability, toxicity and cost assessment. Chemical Engineering Journal. 2016;306:550-9. [DOI:10.1016/j.cej.2016.07.100]
25. Koundle P, Nirmalkar N, Boczkaj G. High performance ozone nanobubbles based advanced oxidation processes (AOPs) for degradation of organic pollutants under high pollutant loading. Journal of Environmental Management.2025: 374:124107. [DOI:10.1016/j.jenvman.2025.124107]
26. Han Y, Zhang L, Liu K, Tao J, Wei F. An Experimental Study on the Novel Ozone-Electro-Fenton Coupled Reactor for Treating Ofloxacin-Containing Industrial Wastewater. Water. 2025;17(11):1649. [DOI:10.3390/w17111649]
27. Azuma T, Usui M, Hayashi T. Inactivation of antibiotic-resistant bacteria in wastewater by ozone-based advanced water treatment processes. Antibiotics. 2022;11(2):210. [DOI:10.3390/antibiotics11020210]
28. Wang JL, Xu LJ. Advanced oxidation processes for wastewater treatment: formation of hydroxyl radical and application. Critical reviews in environmental science and technology. 2012;42(3):251-325. [DOI:10.1080/10643389.2010.507698]
29. Singh A, Majumder A, Saidulu D, Bhattacharya A, Bhatnagar A, Gupta AK. Oxidative treatment of micropollutants present in wastewater: A special emphasis on transformation products, their toxicity, detection, and field-scale investigations. Journal of Environmental Management. 2024;354:120339. [DOI:10.1016/j.jenvman.2024.120339]
30. Scaria J, Nidheesh PV. Comparison of hydroxyl-radical-based advanced oxidation processes with sulfate radical-based advanced oxidation processes. Current Opinion in Chemical Engineering. 2022;36:100830. [DOI:10.1016/j.coche.2022.100830]
31. Tichonovas M, Krugly E, Jankunaite D, Racys V, Martuzevicius D. Ozone-UV-catalysis based advanced oxidation process for wastewater treatment. Environmental Science and Pollution Research. 2017;24(21):17584-97. [DOI:10.1007/s11356-017-9381-y]
32. Priyadarshini M, Das I, Ghangrekar MM, Blaney L. Advanced oxidation processes: Performance, advantages, and scale-up of emerging technologies. Journal of environmental management. 2022;316:115295. [DOI:10.1016/j.jenvman.2022.115295]
33. Bavasso I, Montanaro D, Petrucci E. Ozone-based electrochemical advanced oxidation processes. Current Opinion in Electrochemistry. 2022;34:101017. [DOI:10.1016/j.coelec.2022.101017]
34. Li X, Fu L, Chen F, Zhao S, Zhu J, Yin C. Application of heterogeneous catalytic ozonation in wastewater treatment: an overview. Catalysts. 2023;13(2):342. [DOI:10.3390/catal13020342]
35. Psaltou S, Sioumpoura K, Kaprara E, Mitrakas M, Zouboulis A. Transition metal ions as ozonation catalysts: an alternative process of heterogeneous catalytic ozonation. Catalysts. 2021;11(9):1091. [DOI:10.3390/catal11091091]
36. Ji Y, Wang C, He L, Chen X, Wang J, Zhang X, et al. Comparison of ozone-based AOPs on the removal of organic matter from the secondary biochemical effluent of coking wastewater. Environmental Technology. 2024;45(10):1943-55. [DOI:10.1080/09593330.2022.2158759]
37. Sgroi M, Anumol T, Vagliasindi FG, Snyder SA, Roccaro P. Comparison of the new Cl2/O3/UV process with different ozone-and UV-based AOPs for wastewater treatment at pilot scale: Removal of pharmaceuticals and changes in fluorescing organic matter. Science of the total environment. 2021;765:142720. [DOI:10.1016/j.scitotenv.2020.142720]
38. Hübner U, Spahr S, Lutze H, Wieland A, Rüting S, Gernjak W, et al. Advanced oxidation processes for water and wastewater treatment-Guidance for systematic future research. Heliyon. 2024;10(9). [DOI:10.1016/j.heliyon.2024.e30402]
39. Wang J, Yuan R, Feng Z, Ma F, Zhou B, Chen H. The advanced treatment of textile printing and dyeing wastewater by hydrodynamic cavitation and ozone: Degradation, mechanism, and transformation of dissolved organic matter. Environmental Research. 2022;215:114300. [DOI:10.1016/j.envres.2022.114300]
40. Rekhate CV, Srivastava J. Recent advances in ozone-based advanced oxidation processes for treatment of wastewater-A review. Chemical Engineering Journal Advances. 2020;3:100031. [DOI:10.1016/j.ceja.2020.100031]
41. Krystynik P. Advanced oxidation processes (AOPs)-utilization of hydroxyl radical and singlet oxygen. Reactive oxygen species: IntechOpen; 2021. [DOI:10.5772/intechopen.98189]
42. Tufail A, Price WE, Mohseni M, Pramanik BK, Hai FI. A critical review of advanced oxidation processes for emerging trace organic contaminant degradation: Mechanisms, factors, degradation products, and effluent toxicity. Journal of Water Process Engineering. 2021;40:101778. [DOI:10.1016/j.jwpe.2020.101778]
43. Derco J, Gotvajn AŽ, Čižmárová O, Dudáš J, Sumegová L, Šimovičová K. Removal of micropollutants by ozone-based processes. Processes. 2021;9(6):1013. [DOI:10.3390/pr9061013]
44. Koundle P, Nirmalkar N, Momotko M, Boczkaj G. Ozone nanobubble technology as a novel AOPs for pollutants degradation under high salinity conditions. Water Research. 2024;263:122148. [DOI:10.1016/j.watres.2024.122148]
45. Xiao W, Zhang H, Wang X, Wang B, Long T, Deng S, et al. Interaction mechanisms and application of ozone micro/nanobubbles and nanoparticles: a review and perspective. Nanomaterials. 2022;12(12):1958. [DOI:10.3390/nano12121958]
46. Merényi G, Lind J, Naumov S, Sonntag Cv. Reaction of ozone with hydrogen peroxide (peroxone process): a revision of current mechanistic concepts based on thermokinetic and quantum-chemical considerations. Environmental science & technology. 2010;44(9):3505-7. [DOI:10.1021/es100277d]
47. Xu A, Fan S, Meng T, Zhang R, Zhang Y, Pan S, et al. Catalytic ozonation with biogenic Fe-Mn-Co oxides: Biosynthesis protocol and catalytic performance. Applied Catalysis B: Environmental. 2022;318:121833. [DOI:10.1016/j.apcatb.2022.121833]
48. Mansouri L, Tizaoui C, Geissen S-U, Bousselmi L. A comparative study on ozone, hydrogen peroxide and UV based advanced oxidation processes for efficient removal of diethyl phthalate in water. Journal of Hazardous Materials. 2019;363:401-11. [DOI:10.1016/j.jhazmat.2018.10.003]
49. Guo W, Li C, Zhao J, Ding Y, Yang Q, Guan H. The treatment of petrochemical wastewater via ozone-persulfate coupled catalytic oxidation: mechanism of removal of soluble organic matter. Environmental Science and Pollution Research. 2024;31(20):29400-14. [DOI:10.1007/s11356-024-32998-4]
50. Zhang T, Zheng L, Yang X, Demeestere K, Van Hulle SW. Integrated spectral based monitoring, optimization and control of the combined ozonation and powdered activated carbon adsorption process to remove organic micropollutants from secondary effluent. Water Research. 2025;268:122588. [DOI:10.1016/j.watres.2024.122588]
51. Gągol M, Przyjazny A, Boczkaj G. Effective method of treatment of industrial effluents under basic pH conditions using acoustic cavitation-a comprehensive comparison with hydrodynamic cavitation processes. Chemical Engineering and Processing-Process Intensification. 2018;128:103-13. [DOI:10.1016/j.cep.2018.04.010]
52. Quintero-González CA, Martínez J, Calva-Yáñez JC, Oropeza-Guzmán MT. Physicochemical wastewater treatment improvement by hydrodynamic cavitation nanobubbles. Journal of Water Process Engineering. 2025;69:106581. [DOI:10.1016/j.jwpe.2024.106581]
53. Yao W, Rehman SWU, Wang H, Yang H, Yu G, Wang Y. Pilot-scale evaluation of micropollutant abatements by conventional ozonation, UV/O3, and an electro-peroxone process. Water Research.2018;138:106-17. [DOI:10.1016/j.watres.2018.03.044]
54. Liu Z, Hosseinzadeh S, Wardenier N, Verheust Y, Chys M, Hulle SV. Combining ozone with UV and H2O2 for the degradation of micropollutants from different origins: lab-scale analysis and optimization. Environmental technology. 2019;40(28):3773-82. [DOI:10.1080/09593330.2018.1491630]
55. Liu Z, Demeestere K, Van Hulle S. Comparison and performance assessment of ozone-based AOPs in view of trace organic contaminants abatement in water and wastewater: A review. Journal of Environmental Chemical Engineering. 2021;9(4):105599. [DOI:10.1016/j.jece.2021.105599]
56. Khan ZUH, Gul NS, Sabahat S, Sun J, Tahir K, Shah NS, et al. Removal of organic pollutants through hydroxyl radical-based advanced oxidation processes. Ecotoxicology and Environmental Safety. 2023;267:115564. [DOI:10.1016/j.ecoenv.2023.115564]
57. Lucas MS, Peres JA, Puma GL. Treatment of winery wastewater by ozone-based advanced oxidation processes (O3, O3/UV and O3/UV/H2O2) in a pilot-scale bubble column reactor and process economics. Separation and purification technology. 2010;72(3):235-41. [DOI:10.1016/j.seppur.2010.01.016]
58. Mukherjee A, Mullick A, Teja R, Vadthya P, Roy A, Moulik S. Performance and energetic analysis of hydrodynamic cavitation and potential integration with existing advanced oxidation processes: A case study for real life greywater treatment. Ultrasonics Sonochemistry. 2020;66:105116. [DOI:10.1016/j.ultsonch.2020.105116]
59. Liu Z, Chys M, Yang Y, Demeestere K, Van Hulle S. Oxidation of trace organic contaminants (TrOCs) in wastewater effluent with different ozone-based AOPs: comparison of ozone exposure and• OH formation. Industrial & Engineering Chemistry Research. 2019;58(20):8896-902. [DOI:10.1021/acs.iecr.9b00293]
60. Wang J, Wang S. Reactive species in advanced oxidation processes: Formation, identification and reaction mechanism. Chemical Engineering Journal. 2020;401:126158. [DOI:10.1016/j.cej.2020.126158]
61. Gerrity D, Gamage S, Holady JC, Mawhinney DB, Quiñones O, Trenholm RA, et al. Pilot-scale evaluation of ozone and biological activated carbon for trace organic contaminant mitigation and disinfection. Water research. 2011;45(5):2155-65. [DOI:10.1016/j.watres.2010.12.031]
62. Basant N, Gupta S. QSAR modeling for predicting mutagenic toxicity of diverse chemicals for regulatory purposes. Environmental Science and Pollution Research. 2017;24(16):14430-44. [DOI:10.1007/s11356-017-8903-y]
63. Ramireddy VSR, Kurakula R, Chellam PV, James A, van Hullebusch ED. Systematic computational toxicity analysis of the ozonolytic degraded compounds of azo dyes: Quantitative structure-activity relationship (QSAR) and adverse outcome pathway (AOP) based approach. Environmental Research. 2023;231:116142. [DOI:10.1016/j.envres.2023.116142]
64. Zawadzki P. Toxicity changes of chlorfenvinphos using ozone, ultraviolet light-assisted ozonation, photocatalysis and persulfates activated by visible light. Journal of Ecological Engineering. 2025;26(7). [DOI:10.12911/22998993/203138]
65. Mousset E, Loh WH, Lim WS, Jarry L, Wang Z, Lefebvre O. Cost comparison of advanced oxidation processes for wastewater treatment using accumulated oxygen-equivalent criteria. Water Research. 2021;200:117234. [DOI:10.1016/j.watres.2021.117234]
66. Noshadi E, Changizian M, Behbahani-Nejad M. Enhancing wastewater treatment efficiency through hydrodynamic cavitation and advanced oxidation processes: Experimental insights and comparative analysis. Journal of the Taiwan Institute of Chemical Engineers. 2025;166:105604. [DOI:10.1016/j.jtice.2024.105604]
67. Wu C, Zhou Y, Sun X, Fu L. The recent development of advanced wastewater treatment by ozone and biological aerated filter. Environmental Science and Pollution Research. 2018;25(9):8315-29. [DOI:10.1007/s11356-018-1393-8]
68. Piadeh F, Alavi-Moghaddam MR, Mardan S. Assessment of sustainability of a hybrid of advanced treatment technologies for recycling industrial wastewater in developing countries: Case study of Iranian industrial parks. Journal of Cleaner Production. 2018;170:1136-50. [DOI:10.1016/j.jclepro.2017.09.174]
69. Ahmadian A, Ahmadi S, Goharrizi B. Roles of reactive species in photocatalysis: effect of scavengers and inorganic ions on dye removal from wastewater. International Journal of Environmental Science and Technology. 2023;20(6):6433-48. [DOI:10.1007/s13762-023-04908-7]
70. Ahmadi E, McLellan B, Ogata S, Tezuka T. An integrated, socially equitable design for sustainable water and energy supply in Iran. Energy Research & Social Science. 2021;81:102262. [DOI:10.1016/j.erss.2021.102262]
71. Kaiser H-P, Köster O, Gresch M, Périsset PM, Jäggi P, Salhi E, et al. Process control for ozonation systems: a novel real-time approach. Ozone: science & engineering. 2013;35(3):168-85. [DOI:10.1080/01919512.2013.772007]
72. Melhim SH, Isaifan RJ. The Energy-Economy Nexus of Advanced Air Pollution Control Technologies: Pathways to Sustainable Development. Energies. 2025;18(9):2378. [DOI:10.3390/en18092378]
73. Lim S, Lee W, Na S, Shin J, Lee Y. N-nitrosodimethylamine (NDMA) formation during ozonation of N, N-dimethylhydrazine compounds: Reaction kinetics, mechanisms, and implications for NDMA formation control. Water Research. 2016;105:119-28. [DOI:10.1016/j.watres.2016.08.054]
74. Garrido-Cardenas JA, Esteban-García B, Agüera A, Sánchez-Pérez JA, Manzano-Agugliaro F. Wastewater treatment by advanced oxidation process and their worldwide research trends. International journal of environmental research and public health. 2020;17(1):170. [DOI:10.3390/ijerph17010170]
75. Ghorbani M, Eisazadeh H. Removal of COD, color, anions and heavy metals from cotton textile wastewater by using polyaniline and polypyrrole nanocomposites coated on rice husk ash. Composites Part B: Engineering. 2013;45(1):1-7. [DOI:10.1016/j.compositesb.2012.09.035]
76. Ghanbari F, Khatebasreh M, Mahdavianpour M, Lin K-YA. Oxidative removal of benzotriazole using peroxymonosulfate/ozone/ultrasound: synergy, optimization, degradation intermediates and utilizing for real wastewater. Chemosphere. 2020;244:125326. [DOI:10.1016/j.chemosphere.2019.125326]
77. Fakhri B MS, Ghassemi Barghi N, Moradnia Mehdikhanmahaleh M, Raeis Zadeh SMM, Mousavi T, Rezaee R, et al. Pharmaceutical wastewater toxicity: An ignored threat to the public health. Sustainable Environment. 2024;10(1):2322821. [DOI:10.1080/27658511.2024.2322821]
78. Nadimi Hojjat AZ, Forough Riahimanesh, Mehdi Salari. Investigating the indicators of corrosiveness and sedimentation of drinking water in the villages of East Kakhk. Journal of Environmental Health Enginering. 2024;11(4):394-405. [DOI:10.61186/jehe.11.4.394]
79. Malik SN, Ghosh PC, Vaidya AN, Mudliar SN. Hybrid ozonation process for industrial wastewater treatment: Principles and applications: A review. Journal of Water Process Engineering. 2020;35:101193. [DOI:10.1016/j.jwpe.2020.101193]

ارسال نظر درباره این مقاله : نام کاربری یا پست الکترونیک شما:
CAPTCHA

ارسال پیام به نویسنده مسئول


بازنشر اطلاعات
Creative Commons License این مقاله تحت شرایط Creative Commons Attribution-NonCommercial 4.0 International License قابل بازنشر است.

کلیه حقوق این وب سایت متعلق به مجله مهندسی بهداشت محیط می باشد.

طراحی و برنامه نویسی : یکتاوب افزار شرق

© 2026 All Rights Reserved | Journal of Environmental Health Engineering

Designed & Developed by : Yektaweb