Browse > Article
http://dx.doi.org/10.15681/KSWE.2017.33.6.736

A Study on Ozonation of 4-nonylphenol  

Lee, Cheal-Gyu (Department of Environmental Engineering, Cheongju University)
Publication Information
Abstract
In this study, 4-nonylphenol (4-NP), an endocrine disrupting chemical, was removed by ozone treatment processes under the various experimental conditions including UV irradiation, $TiO_2$ addition. The ozone flow rate and concentration were maintained at $1.0L{\cdot}min^{-1}$ and $70{\pm}5mg{\cdot}L^{-1}$. The pH, COD and TOC of the samples were obtained every 10 minutes for 60 minutes in laboratory scale batch reactor. We found that the combination of UV irradiation and $TiO_2$ addition for ozonation improves the removal efficiency of COD and TOC in 4-NP aqueous solution. In case of the $O_3/UV/TiO_2$ system, COD and TOC were greatly reduced to 85.3 ~ 94.0% and 89.2 ~ 97.2%, respectively. 4-NP degradation rate constants, $k_{COD}$ and $k_{TOC}$, were calculated based on the COD and TOC values. Significantly, $k_{COD}$ and $k_{TOC}$ were improved in the $O_3/UV/TiO_2$ treatment process compared with single $O_3$ process, because the oxidation and the mineralization of 4-NP were increased by generating of the hydroxyl radical. The $k_{COD}$ and $k_{TOC}$ were obtained to be $5.81{\times}10^{-4}{\sim}10.8{\times}10^{-4}sec^{-1}$ and $11.9{\times}10^{-4}{\sim}19.4{\times}10^{-4}sec^{-1}$ in the $O_3/UV/TiO_2$ process. Activation energy ($E_a$) of ozone oxidation reaction based on $k_{COD}$ and $k_{TOC}$ were increased in order of $O_3/UV/TiO_2$ < $O3/UV$ < $O_3/TiO_2$ < $O_3$ process. It was confirmed that the addition of $TiO_2$ and UV irradiation to the ozone oxidation reaction significantly reduced the $E_a$ value and the degradation of 4-NP.
Keywords
Activation energy; Advanced oxidation process; Ozonation; 4-nonylphenol;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 Lee C. G. (2016). Effect of UV Irradiation and $TiO_2$ Addition on the Ozonation of Pyruvic Acid, Journal of Korean Society on Water Environment, 32(1), 23-29. [Korean Literature]   DOI
2 Lee, C. G. and Kim, M. C. (2010). A Study of Ozonation Characteristics of Bis(2-chloroethyl) Ether, Applied Chemistry for Engineering, 21(6), 610-615. [Korean Literature]
3 Ministry of Environment (ME). (2011). Stanrd Methods for Water Quality, Ministry of Environment [Korean Literature].
4 Ministry of Environment (ME). (2016). Chemicals Information System, http://ncis.nier.go.kr/ncis/LIW0602.do?b_id=00443&b_seq=43&leftordridx=3&topordridx=4 (accessed Sep. 2017) [Korean Literature].
5 Mizuno, T., Yamada, H., and Tsuno, H. (2002). Decomposition Characteristics of Nonylphenol Ethoxylates by Ozonation and Ozone/hydrogen Peroxide Process, Journal of Japan Society on Water Environment, 25(1), 46-52. [Japanese Literature]   DOI
6 Ning, B., Graham, N., Zhang, Y., Nakonechny, M. and Gamal El-Din, M. (2007). Degradation of Endocrine Disrupting Chemicals by Ozone/AOPs, Ozone: Science and Engineering, 29(3), 153-176.   DOI
7 Pichat, P., Disdier, J., Hoang-Van, C., Mas, D., Goutailler, G., and Gaysse, C. (2000). Purification/deodorization of Indoor Air and Gaseous Effluents by $TiO_2$ Photocatalysis, Catalysis Today, 63(2), 363-369.   DOI
8 Porter, A. J. and Hayden, N. J. (2002). emba.uvm.edu, http://www.emba.uvm.edu/-njhayden/npreview.pdf (accessed Sep. 2017)
9 Sharma, V. K., Anquandah, G. A., Yngard, R. A., Kim, H., Fekete, J., Bouzek, K., Ray, A. K., and Golovko, D. (2009). Nonylphenol, Octylphenol, and Bisphenol-A in the Aquatic Environment: A Review on Occurrence, Fate, and Treatment, Journal of Environmental Science and Health Part A, 44(5), 423-442.
10 Al-Kdasi, A., Idris, A., Saed, K., and Guan, C. T. (2004). Treatment of Textile Wastewater by Advanced Oxidation Processes-A Review, Global Nest International Journal, 6(3), 222-230.
11 Dzinun, H., Othman, M. H. D., Ismail, A. F., Puteh, M. H., Rahman, M. A., and Jaafar, J. (2015). Photocatalytic Degradation of Nonylphenol by Immobilized $TiO_2$ in Dual Layer Hollow Fibre Membranes, Chemical Engineering Journal, 269, 255-261.   DOI
12 Eckenfelder, Jr. W. W. (1989). Industrial Water Pollution Control, McGraw-Hill, New York, 302-306.
13 Kasprzyk-Hordern, B., Ziolek, M., and Nawrocki, J. (2003). Catalytic Ozonation and Methods of Enhancing Molecular Ozone Reactions in Water Treatment, Applied Catalysis B: Environmental, 46(4), 639-669.   DOI
14 Kitanaka, A., Ogoshi M., and Suzuki Y. (2003). Degradation of Nonylphenol using Chlorine and Ozone, Journal of Japan Society on Water Environment, 26(5), 307-313. [Japanese Literature]   DOI
15 Tanaka, Y. and Nakanishi, J. (2002) Chronic Effects of p-nonylphenol on Survival and Reproduction of Daphnia galeata: Multigenerational Life Table Experiment, Environmental Toxicology, 17, 487-92.   DOI
16 Sherrard, K. B., Marriott, P. J., Amiet, R. G., McCormick, M. J., Colton, R., and Millington, K. (1996). Spectroscopic Analysis of Heterogeneous Photocatalysis Products of Nonylphenol- and Primary Alcohol Ethoxylate Nonionic Surfactants, Chemosphere, 33(10), 1921-1940.   DOI
17 Shiyun, Z., Xuesong, Z., Daotang, L., and Weimin, C. (2003). Ozonation of Naphthalene Sulfonic Acids in Aqueous Solutions: Part II-Relationships of Their COD, TOC Removal and the Frontier Orbital Energies, Water research, 37(5), 1185-1191.   DOI
18 Silva, L. M. D. and Jardim, W. F. (2006). Trends and Strategies of Ozone Application in Environmental Problems, Quimica Nova, 29(2), 310-317.   DOI
19 United States Environmental Protection Agency (U. S. EPA). (1998). Advanced Photochemical Oxidation Processes Handbook, Office of Research and Development Washington, DC, 4-5.
20 Wang, X. D., Lv, Y., Li, M. M., and Liu, H. Y. (2014). Removal of Nonylphenol from Water by Ozone, In Advanced Materials Research, Trans Tech Publications, 859, 357-360.
21 Yang, O., Kim, H. L., Weon, J. I., and Seo, Y. R. (2015). Endocrine-disrupting Chemicals: Review of Toxicological Mechanisms Using Molecular Pathway Analysis, Journal of cancer prevention, 20(1), 12-24.   DOI
22 Yoon, Y., Park, M., Kwon, M., Jung, Y., and Kang, J. (2013). A Two-Stage Process, $O_3$ and Subsequent $O_3/H_2O_2$, for Effective Color Removal from Leather-Dyeing Wastewater: Case Study in the D Industrial Wastewater Treatment Plan, Journal of Korean Society on Water Environment, 29(1), 74-80.
23 Zgola-Grzeskowiak, A., Grzeskowiak, T., and Szymanski, A. (2014). Comparison of Biodegradation of Nonylphenol Propoxylates with Usage of Two Different Sources of Activated Sludge, Journal of surfactants and detergents, 17(1), 121-132.   DOI
24 Lahnsteiner, J. and Vranitzky, R. (2010). Ozone Treatment of Organic Micro-pollutants in Sewage Sludge, Water Science and Technology, 61(11), 2923-2930.   DOI