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Nonpoint Source Pollutant Transport in Watersheds: Modelling Approaches for Antibiotics, Heavy Metals and Nutrients

Year 2015, Volume: 27 Issue: 1, 21 - 31, 28.04.2016
https://doi.org/10.7240/mufbed.99724

Abstract

Modelling studies predicting the fate and transport of non-point-source pollutants, especially from agricultural and pasture lands, have gained increasing attention during the recent years. Veterinary antibiotics are one of the most widely preferred drugs for animal husbandry. Since a considerable fraction of antibiotics is excreted in animal waste; following to application of animal waste as manure on agricultural lands, antibiotics can affect both soil and water quality by leaching from manure to soil, and by being transported to surface waters via runoff, respectively. This necessitates the development of modeling approaches for planning and management of catchments that play a significant role on water supply. Geographical Information Systems (GIS) has become an important methodological tool in catchment modeling, with the facilities to obtain spatial data, and advanced visualization of numerous data types as different map layers. GIS-based modeling approaches concerned with nutrient transport and water quality are encountered in literature; however, similar studies are scarce for heavy metals and antibiotics. The aim of this study is to provide a summary and evaluation of the existing modelling approaches from the literature that are used for modelling the fate and transport of emerging pollutants, particularly antibiotics, heavy metals and nutrients, in watersheds

References

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Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları

Year 2015, Volume: 27 Issue: 1, 21 - 31, 28.04.2016
https://doi.org/10.7240/mufbed.99724

Abstract

Özellikle tarım ve hayvancılık kaynaklı yayılı kirleticilerin su havzalarındaki davranışlarına yönelik çalışmalar, son yıllarda önem ve hız kazanmıştır. Çoğu zaman sadece önlem amaçlı kullanılan antibiyotikler, hayvan yetiştiriciliğince en yaygın tercih edilen ilaç türlerinden bir tanesidir. Antibiyotiklerin kayda değer fraksiyonları hayvan atığında ortaya çıktığı için; tarımsal arazilere hayvan atıklarının gübre olarak uygulanmasını takiben, antibiyotikler gübreden toprağa geçerek toprak kalitesini, aynı zamanda yüzeysel akışla yüzey sularına taşınarak su kalitesini olumsuz etkileyebilmektedirler. Bu durum su temininde önemli rol oynayan havzaların planlanması ve yönetimi için modelleme çalışmalarının geliştirilmesini gerekli kılmıştır. Coğrafi Bilgi Sistemleri (CBS), mekansal verileri elde etmede sağladığı kolaylık ve çok sayıda farklı türdeki veriyi haritalandırma özelliği ile havza modelleme çalışmalarında başvurulan önemli araçlardan bir tanesi olmuştur. Besi maddelerinin taşınımı ve su kalitesi üzerine etkilerini inceleyen CBS tabanlı modelleme yaklaşımları bulunmaktadır; ancak benzer çalışmalar ağır metaller ve antibiyotikler için sınırlı sayıdadır. Bu çalışmanın amacı literatürde yer alan, başta antibiyotikler olmak üzere ağır metal ve besi maddeleri gibi önem arz eden kirleticilerin su ortamlarında ve havzalarındaki taşınımındaki modelleme yaklaşımlarını özetlemek ve değerlendirmektir.

References

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  • Vadas, P.A., Owens, L.B. ve Sharpley, A.N. (2008). An empirical model for dissolved phosphorus in runoff from surface-applied fertilizers. Agr. Ecosyst. Environ., 127, 59–65.
  • Brennan, R.B., Fenton, O., Grant, J. ve Healy, M.G. (2011). Impact of chemical amendment of dairy cattle slurry on phosphorus, suspended sediment and metal loss to runoff from a grassland soil. Sci. Total Environ., 409, 5111-5118.
  • Huber, A., Bach, M. ve Frede, H.G. (1998). Modelling pesticide losses with surface runoff in Germany. Sci. Total Environ., 223, 177-91.
  • Montforts, M.H.M.M. (1999). Environmental Risk Assessment for Veterinary Medicinal Products Part 1. Other than GMO-containing and Immulogical Products First Update, Report 601300, National Institute of Public Health and the Environment (RIVM), Bilthoven, Hollanda.
  • Kumar, K., Gupta, S.C., Chander, Y. ve Singh A.K. (2005). Antibiotic use in agriculture and its impact on the terrestrial environment. Adv. Agron., 87, 1-53.
  • Park, S.J. (2007). Hazard assessment of major veterinary antibiotics in aquatic ecosystem using microbe, macroinvertebrates and fish. Yüksek Lisans Tezi, Seoul National University, Güney Kore.
  • Lenzi, M.A. ve Di Luzio, M. (1997). Surface runoff, soil erosion and water quality modeling in the Alpone catchment using AGNPS integrated with a Geographic Information System. Eur. J. Agron., 6, 1-14.
  • Parry, R. (1998). Agricultural phosphorus and water quality: A US Environmental Protection Agency perspective. J. Environ. Qual., 27, 258–260.
  • Lal, R., Miller, F.P. ve Logan, T.J. (1998). Are intensive agricultural practices environmentally and ethically sound? J. Agr. Environ. Ethic., 1, 193–210.
  • Delpla, I., Baurès, E., Jung, A.V. ve Thomas, O. (2011). Impacts of rainfall events on runoff water quality in an agricultural environment in temperate areas. Sci. Total Environ., 409, 1683–1688.
  • Blenkinsop, S., Fowler, H.J., Dubusi, I.G., Nolan, B.T. ve Hollis, J.M. (2008). Developing climatic scenarios for pesticide fate modeling in Europe. Environ. Pollut., 154, 219-231.
  • Rao, M.N., Waits, D.A. ve Neilsen, M.L. (2000). A GIS-based modeling approach for implementation of sustainable farm management practices. Environ. Model. Softw., 15, 745–753.
  • Maidment, D.R. (1993). Environmental modeling within GIS. Proceedings of the Second International Conference/ Workshop on Integrating GIS and Environmental modeling, Breckridge, Colorado, USA, 2 Eylül.
  • Ragan, R.M. ve Kosicki, A.J. (1993). An operational GIS to support statewide hydrologic and nonpoint pollution modeling. Proceedings, International Symposium of Engineering Hydrology, San Francisco, USA, 26–30 Temmuz, ASCE.
  • Fedra, K. (1999). Urban environmental management: monitoring, GIS, and modeling. Comput. Environ. Urban Syst.,23, 443-457.
  • Lertpaitoonpan, W., Ong, S.K. ve Moorman, T.B. (2009). Effect of organic carbon and pH on soil sorption of sulfamethazine. Chemosphere, 76, 558–64.
  • Kim, S.C., Davis, J.G., Truman, C.C., Ascough, J.C. ve Carlson, K. (2010). Simulated rainfall study for transport of veterinary antibiotics – Mass balance analysis. J. Hazard. Mater., 175, 836–43.
  • Cengiz, M., Balcıoğlu, I., Oruc, H.H. ve Cengiz, T.G. (2010). Evaluation of the interaction between soil and antibiotics. J. Environ. Sci. Health B., 45, 183-189.
  • Cengiz, M., Balcıoğlu, I., ve Oruç, H.H. (2010). Detection of oxytetracycline and chlorotetracycline residues in agricultural fields in Turkey. J. Biol. Environ. Sci., 4(10), 23-27.
  • Uslu, M.O. ve Balcıoğlu, I. (2009). Comparison of the ozonation and fenton process performances for the treatment of antibiotic containing manure. Sci. Total Environ., 407(11), 3450-3458.
  • Uslu, M.O. ve Balcıoğlu, I. (2009). Simultaneous removal of oxytetracycline and sulfamethazine antibacterials from animal waste by chemical oxidation processes. J. Agr. Food Chem., 57(23), 11284-11291.
  • Yalap, K.S. ve Balcıoğlu, I. (2009). Effects of inorganic anions and humic on the photocatalytic and ozone oxidation of oxytetracycline in aqueous solution. J. Adv. Oxid. Technol., 12(1), 1-10.
  • Karcı, A. ve Balcıoğlu, I. (2009). Investigation of the tetracycline, sulfonamide, and fluoroquinolone antimicrobial compounds in animal manure and agricultural soils in Turkey. Sci. Total Environ., 407, 4652–4664.
  • Sarmah, A.K., Meyer, M.T. ve Boxall, A.B.A. (2006). A global perspective on the use, sales, exposure pathways, occurrence, fate and effects of veterinary antibiotics (VAs) in the environment. Chemosphere, 65, 725–59.
  • Rekolainen, S., Mitikka, S., Vuorenmaa, J. ve Johansson, M. (2005). Rapid decline of dissolved nitrogen in Finnish lakes. J. Hydrol., 304, 94–102.
  • Buckingham, S., Tipping, E. ve Taylor, J.H. (2008). Concentrations and fluxes of dissolved organic carbon in UK topsoils. Sci. Total Environ., 407, 460 - 470.
  • Spark, K.M. ve Swift, R.S. (2002). Effect of soil composition and dissolved organic matter on pesticide sorption. Sci. Total Environ., 298, 147–61.
  • Ikem, A. ve Adisa, S. (2011). Runoff effect on eutrophic lake water quality and heavy metal distribution in recent littoral sediment. Chemosphere, 82, 259–267.
  • Joyce, B.A., Wallender, W.W. ve Mailapalli, D.R. (2010). Application of pesticide transport model for simulating diazinon runoff in California’s Central Valley. J. Hydrol., 395, 79–90.
  • Horton, R.E. (1933). The role of infiltration in the hydrologic cycle. EOS, Trans. Am. Geophys. Union, 14, 446–460.
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There are 85 citations in total.

Details

Primary Language Turkish
Subjects Engineering
Journal Section Research Articles
Authors

Zeynep Akdoğan This is me

Arın Küçükdoğan This is me

Başak Güven

Publication Date April 28, 2016
Published in Issue Year 2015 Volume: 27 Issue: 1

Cite

APA Akdoğan, Z., Küçükdoğan, A., & Güven, B. (2016). Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları. Marmara Fen Bilimleri Dergisi, 27(1), 21-31. https://doi.org/10.7240/mufbed.99724
AMA Akdoğan Z, Küçükdoğan A, Güven B. Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları. MAJPAS. April 2016;27(1):21-31. doi:10.7240/mufbed.99724
Chicago Akdoğan, Zeynep, Arın Küçükdoğan, and Başak Güven. “Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller Ve Besi Maddeleri Üzerine Modelleme Yaklaşımları”. Marmara Fen Bilimleri Dergisi 27, no. 1 (April 2016): 21-31. https://doi.org/10.7240/mufbed.99724.
EndNote Akdoğan Z, Küçükdoğan A, Güven B (April 1, 2016) Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları. Marmara Fen Bilimleri Dergisi 27 1 21–31.
IEEE Z. Akdoğan, A. Küçükdoğan, and B. Güven, “Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları”, MAJPAS, vol. 27, no. 1, pp. 21–31, 2016, doi: 10.7240/mufbed.99724.
ISNAD Akdoğan, Zeynep et al. “Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller Ve Besi Maddeleri Üzerine Modelleme Yaklaşımları”. Marmara Fen Bilimleri Dergisi 27/1 (April 2016), 21-31. https://doi.org/10.7240/mufbed.99724.
JAMA Akdoğan Z, Küçükdoğan A, Güven B. Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları. MAJPAS. 2016;27:21–31.
MLA Akdoğan, Zeynep et al. “Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller Ve Besi Maddeleri Üzerine Modelleme Yaklaşımları”. Marmara Fen Bilimleri Dergisi, vol. 27, no. 1, 2016, pp. 21-31, doi:10.7240/mufbed.99724.
Vancouver Akdoğan Z, Küçükdoğan A, Güven B. Yayılı Kirleticilerin Havzalardaki Taşınım Süreçleri:Antibiyotikler, Ağır Metaller ve Besi Maddeleri Üzerine Modelleme Yaklaşımları. MAJPAS. 2016;27(1):21-3.

Marmara Journal of Pure and Applied Sciences

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