حذف دیکلوفناک از محیطهای آبی توسط فرایند UV/TiO2در یک فوتوراکتور ناپیوسته با بستر ثابت: بهینه سازی به روش سطح پاسخ
محورهای موضوعی : ارزیابی خطرات آلاینده ها بر روی محیط زیست
1 - دانش آموخته کارشناسی ارشد شیمی کاربردی، گروه شیمی، واحد تبریز، دانشگاه آزاد اسلامی، تبریز، ایران
کلید واژه: فوتوراكتور ناپیوسته با بستر ثابت, دیکلوفناک, روش سطح پاسخ, طراحی ترکیب مرکزی, UV/TiO2,
چکیده مقاله :
در اين کار تحقيقی حذف يك آلايندة دارویی تحت عنوان دیکلوفناک (DCF) با استفاده از فرآيند UV/TiO2در يك فوتوراكتور ناپیوسته با بستر ثابت مورد بررسی قرار گرفته و شرایط عملیاتی موثر در کارآیی فرایند به روش سطح پاسخ (RSM) از نوع طراحی ترکیب مرکزی (CCD) بهینهسازی شده است. نتايج طراحي آزمايش نشاندهنده اثر مثبت پارامترهاي زمان تابش نور، دبي حجمي و اثر منفي پارامترهاي غلظت اوليه DCF و pH در راندومان حذف آلاینده مورد نظر (DCF) از محیطهای آبی ميباشد. همچنین از پارامترهاي مؤثر در راندمان حذف، بيشترين تأثير مربوط به پارامترهای زمان تابش و pH ميباشد. مقدار pH بهینه برای حذف DCF در فرایند مذکور حوالی 5/4 میباشد.
In this study, the removal of a pharmaceutical contaminant, diclofenac (DCF), using the UV/TiO₂ process in a fixed-bed batch photoreactor was investigated. The effective operating conditions influencing the process efficiency were optimized using Response Surface Methodology (RSM) of the Central Composite Design (CCD) type. The results of the experimental design indicated a positive effect of light irradiation time and volumetric flow rate, and a negative effect of initial DCF concentration and pH on the removal efficiency of DCF from aqueous media. Among the studied parameters, irradiation time and pH were found to be the most influential. The optimal pH for DCF removal in this process was approximately 4.5.
[1] Daneshvar, N., 2009, Chemistry of water & wastewater treatment, First Edition, Amidi Pub., pp. 215-269. (in Persian)
[2] Sathishkumar, P., Mangalaraja, R.V., Anandan, S., 2016, Review on the recent improvements in sonochemical and combined sonochemical oxidation processes – A powerful tool for destruction of environmental contaminants, Renewable and Sustainable Energy Reviews, 55, 426.
[3] Gharbani, P., 2024, Investigating the efficiency of graphene oxide in the adsorption of 2-chlorophenol from aqueous solutions as an environmental pollutant, Environmental Pollution and Sustainable Urban Development, 1(3), 63. (in Persian)
[4] Guyer, G.T., Ince.H, N., 2010, Degradation of diclofenac in water by homogeneous and heterogeneous sonolysis, Ultrasonics Sonochemistry, 18, 114.
[5] Eskandarloo, H., 2024, A review of new methods of removing environmental pollutants: Photolysis and UV/H2O2 processes, Environmental Pollution and Sustainable Urban Development, 1(1), 1. (in Persian)
[6] Zafari, S.H., 2024, Removal of p-nitrophenol from aqueous environments by UV/S2O82- process in a continuous photoreactor: Optimization by Taguchi method, Environmental Pollution and Sustainable Urban Development, 1(1), 33. (in Persian)
[7] Airemlou, L., 2024, Synthesis of ZnO/SnO2 nanocomposite loaded with silver via liquid impregnation method and investigation of its photocatalytic activity in removing an environmental pollutant under visible light irradiation, Environmental Pollution and Sustainable Urban Development, 1(2), 85. (in Persian)
[8] Mohammadpour Koselar, Z., Ghazi Tabatabaei, Z., 2024, Design of multifunctional photocatalysts with g-C₃N₄ and its applications in sustainable technologies, Environmental Pollution and Sustainable Urban Development, 1(3), 29. (in Persian)
[9] Fujishima, A., Honda, K., 1972, Electrochemical photolysis of water at a semiconductor electrode, Nature, 238, 37.
[10] Park, Y., Kim, S., Kim, J., Khan, S., Han, C., 2022, UV/TiO2 photocatalysis as an efficient livestock wastewater quaternary treatment for antibiotics removal, Water, 14, 958.
[11] Silva, V., Louros, V.L., Silva, C.P., Tacão, M., Otero, M., Calisto, V., Lima, D.L.D., 2024, A solar flow photo-reactor for antibiotic removal from aquaculture effluents using TiO2/carbon quantum dots, Chemosphere, 348, 140723.
[12] Hu, Y.-L., Liu, Y., Fu, W., Yang, H., 2024, Efficiency and mechanism of enhanced norfloxacin removal using amorphous TiO2-modified biochar, Environmental Pollution, 351, 124027.
[13] Rizzo, L., Meric, S., Kassinos, D., Guida, M., Russo, F., Belgiorno, V., 2009, Degradation of diclofenac by TiO2 photocatalysis: UV absorbance kinetics and process evaluation through a set of toxicity bioassays, Water Research, 43, 979.
[14] Achilleos, A., Hapeshi, E., Xekoukoulotakis, N.P., Mantzavinos, D., Fatta-Kassinos, D., 2010, Factors affecting diclofenac decomposition in water by UV-A/TiO2 photocatalysis, Chemical Engineering Journal, 161, 53.
[15] Całus-Makowska, K., Grosser, A., Grobelak, A., Białek, H., Siedlecka, E., 2024, Kinetic study of the simultaneous removal of ibuprofen, carbamazepine, sulfamethoxazole, and diclofenac from water using biochar and activated carbon adsorption, and TiO2 photocatalysis, Desalination and Water Treatment, 320, 100817.
[16] Amini-Badr, A., Behnajady, M.A., 2024, Photocatalytic removal of cefazolin in a photoreactor packed with TiO2-P25 nanoparticles supported on glass beads: An artificial neural network modeling, International Journal of Environmental Analytical, 104, 5713.
[17] Shargh, M., Behnajady, M.A., 2016, Optimization of photocatalytic activity of immobilized TiO2–P25 nanoparticles in the removal of phenazopyridine using response surface methodology, Russian Journal of Applied Chemistry, 89, 1544.