BibTex RIS Kaynak Göster

Natural Treatment Of Leachate

Yıl 2011, Cilt: 11 Sayı: 2, 1 - 16, 01.08.2011

Öz

Kaynakça

  • Aalbers, H. (1999). Resource Recovery from Faecal Sludge Using Constructed Wetlands, A Survey of the Litrerature, Netherlands. Document, The
  • Akça, L. (2005). Atıksu Arıtımında Doğal Sistemler, Seminer notları, Elazığ.
  • Anonim. (2010). Atıksu Arıtma Tesisi Teknik Usuller Tebliği (27527 sayı) , TC Resmi Gazete, 20 Mart.
  • Ayaz, Ç.S. ve Saygın, Ö. (1996). Hydroponic wastewater treatment garden. 9th International Association on Water Quality Conference, 11-12, Wienna.
  • Barlaz, M.A. (1996). Microbiology of Solid Waste Landfills. In: Palmisano, A.C. and Barlaz, M.A. Microbiology of Solid Waste, Florida, CRC Press.
  • Bastviken, S.K., Eriksson, P.G., Premrov, P. and Tonderski, K. (2005). Potential denitrification in wetland sediments with different plant species detritus, Ecological Engineering, Vol. 25, 183-190.
  • Bavor, H.J.and Andel, E.F. (1994). Nutrient removal and disinfection performance in the Byron Bay constructd wetland system, Water Sci. Technol., Vol. 29, 201-208.
  • Bloor, M.C. and Banks, C.J. (2005). Acute and sub-lethal toxicity of landfill leachate towards two macro- invertebrates, Proc.Saf. and Env. Pro., Vol. 83, 185- 190.
  • Boothe, D.D.H., Smith, M.C., Gattie, D.K. and Das, K.C. (2001). Characterization of microbial populations in landfil leachate and bulk samples during aerobic bioreduction, Advances in Environmental Research, Vol. 5, 285-294.
  • Brix, H. (1993). Wastewater Treatment in Constructed Wetlands. System Design, Removal Processes, and Treatment Performance. In: Moshiri, G.A. (Ed)., Constructed Improvement, Lewis, 9-22. for Water Quality
  • Brodie, G.A., Hammer, D.A. and TomIjanovich, D.A. (1989). Treatment of Acid Drainage with Constructed Wetland at Tennessee Valley Authority 950 Coal Mine. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 211-219.
  • Brodrick, S.J., Cullen, P. and Maher, W. (1988). Denitrification in a natural wetland receiving secondary treated effluent, Water Res., Vol. 22, 431- 439.
  • Bulc, T., Vrhovsek, D. and Kukanja, V. (1997). The use of constructed wetland for landfill leachate treatment, Water Sci. Technol., Vol. 35, 301-306.
  • Bulc, G.T. (2006). Long term performance of a constructed wetland for landfill leachate treatment, Ecological Engineering, Vol. 26, 365-374.
  • Carley, B.N. and Mavinic, D.S. (1991). The effects of external carbon loading on nitrification and denitrification of a high-amonnia landfill leachate, Res. J. Water Pollut. Control Fed., Vol. 63, 51-58.
  • Christensen, J.B., Jensen, D.L., Gron, C., Filip, Z. and Christensen, T.H. (1997). Characterization of the dissolved organic carbon in leachate-polluted groundwater, Water Research, Vol. 32, 125-135.
  • Chiemchaisri, C., Chiemchaisri, J.J., Threedeach, S. and Wicranarachchi, P.N. (2009). Leachate treatment and greenhouse gas emisssion in subsurface horizontal flow constructed wetland, Bioresource Technology, Vol. 100, 3808-3814.
  • Cossu, R., Haarstad, K., Lavagnolo, M .C. and Littarru, P. (2001). Removal of municipal solid waste COD and NH4+–N by phyto-reduction: A laboratory–scale comparison of terrestrial and aquatic species at different organic loads, Ecological Engineering, Vol. 16, 459–470.
  • Cooper, P., Smith, M. and Maynard, H. (1997). The design and performance of a nitrifying vertical-low reed bed treatment system. Wat. Sci. Tech., Vol. 35, 215-221.
  • Crawford, J.F. and Smith, P.G. (1985). Landfill Technology, Butterworths, London, 84-85. Cronk, J.K. and Fennessy, M.S. (2001). Wetland Plants: Biology and Ecology, Lewis Publishers, USA.
  • Cronk, J.K. and Fennessy, M.S. (2001). Wetland Plants: Biology and Ecology, Lewis Publishers, USA.
  • Çiftçi, H., Kaplan, Ş.Ş., Köseoğlu, H., Karakaya, E., Kitiş, M. (2007). Yapay sulaklanlarda atıksu arıtımı ve ekolojik yaşam, Erciyes Üniversitesi, Fen Bilimleri Enstitüsü Dergisi, 23 (1-2), 149-160.
  • D’Angelo, E.M. and Reddy, K.R. (1994). Diagenesis of organic matter in a wetland receivig hypereutrophic lake water: Role of inorganic electron acceptors in nutrient release, J. Environ. Qual., Vol. 23, 937-943.
  • Dağlı, S., Akça, L. (2007). Yapay sulakalan sisteminde fosfor giderimine ortam malzemesinin etkisi, İTÜ Mühendislik Dergisi, Cilt 17, Sayı 1, 51-59.
  • Davido, R.L. and Conway, T.E. (1989). Nitrification and Denitrification at the Iselin Marsh/Pond/Meadow Facility. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 477-483.
  • Denny, P. (1997). Implementation of constructed wetlands in developing countries, Water Science and Technology, Vol. 35, 27-34.
  • Dölgen, D. (1996). Sızıntı Suyu Arıtma Yöntemleri, Katı Atık ve Çevre, 23, 15-24.
  • Dölgen, D. (1998). Sızıntı Suyu Kalite Kestirimi, Katı Atık ve Çevre, 31, 12-18.
  • DuBowry, P.L. and Reaves, R.P. (1994). Constructed Wetkands for Animal Waste Management. In: Proceedings of a Workshop, 4-6 April, Purdue University, Wes Lafayette IN.
  • EEA. (2005). EEA Multilingual Environmental Glossary: Landfill Leachate.
  • Ehrig, H. K. (1989). Leachate Quality, In: Christensen, T. H., Cossu, R. and Stegmann, R. Sanitary Landfiling. San Diego, Academic Press Inc., 285-297.
  • Ekmekçi, F. (2007). Adana Sofulu Düzensiz Çöp Depolama Sahasından Alınan Çöp Sızıntı Sularının Laboratuar Ölçekli Ortamda Bitkisel Yolla Azot-Fosfor ve Ağır Metal Gideriminin Araştırılması, Çukurova Üniversitesi, Mühendisliği Anabilim Dalı, Yüksek Lisans Tezi. Enstitüsü, Çevre
  • El-Fadel, M., Findikakis, A.N. and Leckie, J.O. (1997). Environmental impacts of solid waste landfilling, Journal of Environmental Management, Vol. 50, 1- 25.
  • El-Gendy, A.S., Biswas, N. and Bewtra, J.K. (2004). Growth of water hyacint in municipal landfill leachate with different pH. Environmental Tech., Vol. 8, 833-840.
  • El-Gendy, A.S., Biswas, N. and Bewtra, J.K. (2005). A floating aquatic system employing water hyacint for municipal landfill leachate treatment: effect of leachated characteristics on the plant growth, Journal of Env. Eng. Sci., Vol. 14, 227-240.
  • EPA. (1988). Design Manual for Constructed Wetland and Floating Aquatic Plants Systems for Municipal Wastewater Cincinnati, OH. EPA625/1-88-022,
  • EPA. (1993). Constructed Wetlands for Wastewater Treatment and Wild Life Habitat: 17 Case Studies, EPA832-R-93-005.
  • EPA. (2000). Constructed Wetlands Treatment of Municipal Wastewaters., EPA/625/R-99-010.
  • Faulwetter, J.L., Gagnon, V., Sundberg, C., Chazarenc, F., Burr, M.D., Brisson, J., Camper, A.K. and Stein, O.R. (2009). Microbial processes influencing performance of treatment wetlands: A review, Ecological Engineering, Vol. 35, 987-1004.
  • Ferdoushi, Z., Haque, F., Khan, S. and Haque, M. (2008). The effects of two aquatic floating macrofits (Lemna and Azolla) as biofilters of nitrogen and phosphate in fish ponds, Turkish Journal of Fisheries and Aquatic Sciences, Vol. 8, 253-258.
  • Galbrand, C. C. (2003). Naturalized Treatment Wetlands for Contaminant Removal: A Case Study of the Burnside Engineered Wetland for Treatment of Landfill University. Thesis, Dalhousie
  • Gersberg, R.M., Elkins, B.V. and Goldman, C.R. (1985). Wastewater treatment by artifical wetlands, Water Sci. Technol. Vol. 17, 443-450.
  • Gijzen, H. J. (2002). Anaerobic digestion for sustainable development: a natural approach, Wat. Sci. Tech., Vol. 45, 321-328.
  • Gschlöβl, T., Steinmann, C., Schleypen, P. and Melzer, A. (1998). Constructed wetlands for effluent polishing of lagoons, Wat. Res., Vol. 32, 2639-2645.
  • Hammer, D.A. and Bastian,R.X. (1989). Wetlands Ecosystems: Natural Water Purifiers, In: Hammer, D.A. (Ed)., Constructed Wetlands for Wastewater Treatment. Chelsea, Lewis, 5-19.
  • Hoppe, H.G., Kim, S.J. and Gocke, K. (1988). Microbial decomposition in aquatic environments: combined processes of extra cellular activity and substrate uptake. Appl. Environ. Microbiol., Vol. 54, 784-790.
  • Hosomi, M., Murakami, A. and Sudo, R. (1994). A four- year mass balance for a natural wetland system receiving domestic wastewater. Water Sci.Technol., Vol. 30, 235-244.
  • Howard, E.A., Emerick, L.C. and Wildeman, T.R. (1989). Design and Construction of a Research Site for Passive Mine Drainage Treatment in Idaho Springs, Colorado. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 761-764.
  • Hui, T.S. (2005). Leachate Treatment By Floating Plants In Constructed Wetland, Master Thesis, Universiti Teknologi Malaysia. 83p.
  • İlhan, F., Kurt, U., Apaydın, Ö., Arslankaya, E., Gönüllü, M.T. (2007). Elektrokimyasal arıtım ve uygulamaları; Katı atık sızıntı suyu çalışması, AB Sürecinde Türkiye’de Katı Atık Yönetimi ve Çevre Sorunları Sempozyumu, TÜRKAY 2007.
  • Kadlec, R.H. and Zmarthie, L.A. (2010). Wetland treatment of leachate from a closed landfill, Ecological Engineering, Vol. 36, 946-957.
  • Kang, K.H., Shin, H.S. and Park, H. (2002). Characterization of humic substances present in landfill leachates with different landfill ages and its implications, Water Research, Vol. 36, 4023-4032.
  • Kivaisi, A.K. (2001). The potential for constructed wetlands for wastewater treatment and reuse in developing Engineering, Vol. 16, 545-560. a review, Ecological
  • Kleinmann, R.L.P. and Girts, M.A. (1987). Acid Mine Water Treatment: An Overview of an Emergend Technology. In: Reddy, K.R. and Smith, W.H. (Ed), Aquatic Plants for Water Treatment and Resource Recovery, Magnolia, Orlando, 255-261.
  • Klikowska, D. and Klimiuk, E. (2008). The effect of landfill age on municipal leachate composition, Bioresource Technology, Vol. 94, 5981-5985.
  • Krishnan, V.G. (2002). Kajian Peyerapan Logan- Logan Berat oleh Dua Spesies Tumbuhan Separuh Tenggelam Dalam Tanah Bencah Buatan Jenis Sub- Permakaan Bagi Olahan Air Larut Lesap. Master Thesis, Universiti Teknologi Malaysia.
  • Kurt, U., İlhan, F., Birben, N.C., Ulucan, K., Gönüllü, M.T. (2009). Sızıntı sularının evsel atıksularla birlikte elektrokoagülasyon incelenmesi, Sempozyumu, 1-9, 15-17 Haziran 2009. Atık Türkiye^de Katı Yönetimi
  • Lavrova, S. and Koumanova, B. (2010). Influence of recirculation in a lab-scale vertical flow constructed wetland on the treatment efficiency of landfill leachate, Bioresorce Technology, Vol. 101, 1756- 1761.
  • Lee, Y.F. (2004). Rainfall Effects to the Performance of Subsurface LeachateTreatment, Teknologi, Malaysia. Wetland in Thesis, Universiti
  • Ling, C.A. (2006). Nutrient Removal from Leachate Using Horizontal Subsurface Constructed Wetlands, Master Thesis, Universiti Teknologi Malaysia.
  • Lu, J. C. S., Eichenberger, B. and Stearns, R. J. (1985). Leachate from Municipal Landfills: Prduction and Management. US: Noyes Publications.
  • Madigan, M.T., Martinko, L.M. and Parker, J. (1997). Brock Biology of Microorganisms, 8.th ed. Prentice Hall, Upper Saddle River, NJ, p986.
  • Martin, C.D. and Moshiri, G.A. (1994). Nutrient reduction in an in-series constructed wetland system terating landfill leachate, Water Science Technology, Vol. 29, 267-272.
  • Martin, C.D. and Johnson K.D. (1995). The use of extended aeration and in-series surface flow wetlands for landfill leachate treatment, Wat. Sci. Tec., Vol. 12, 119-128.
  • Mathewson, C.C. and Mathewson, H.A. (1998). Designing a Wetland for a Wastewater Treatment-A Truly Assciation for Engineering Geology and the Environment, International Congress, Vol. 5, No.8, Vancouver. Effort., International
  • McBean, E. and Rovers, F. (1999). Landfill Leachate Characteristics as Inputs for the Design of Wetlands Used as Treatment Systems. In: Mulamoottil, G., McBean, E. and Rovers, F. Constructed Wetlands for the Treatment of Landfill Leachates, Florida, Lewis Publishers.
  • Muna Mohamed. (2003). Pengulahan Air Larut Lesap Melalui Tanah Bencah Bu Atan Aliran Subpermukaan Dengan sexangulare bagi Penyigkiran Logan Berat. Master Thesis, Univesiti Teknologi Malaysia. Ericaulon
  • Muslu, Y., (1985). Su Temini ve Çevre Sağlığı, İstanbul Teknik Üniversitesi Kütüphanesi, Cilt III., 790s.
  • Nichols, D.S. (1983). Capacşty of natural wetlands to remove nutrients from wastewater, J. Water Pollut. Control Fed., Vol. 55, 501-505.
  • Nivala, J., Hoos, M.B., Cross, C., Wallace, S. and Parkin, G. (2007). Treatment of landfill leachate using an aerated, horizontal subsurface-flow constructed wetland, Sci. of the to. Env. Vol. 380, 19-27.
  • Nordin, N.I.A.B.A. (2006). Leachate Treatment Using Constructed Wetland with Magnetic Field, Master Thesis, Universiti Teknologi Malaysia. 88p.
  • Peverly, J.H., Surface, J.M. and Wang, T. (1995). Growth and trace metal absorption by Phragmites australis in wetlands constructed for landfill leachated treatment, Ecological Engineering, Vol. 5, 21-35.
  • Pouliot, J.M. (1999). Biological Treatment of Landfill Leachate. The University of Western Ontario, Master Thesis.
  • Rafidah binti Hamdan. (2002). Kajian Pengaruh Konfigurasi Tumbuhan Di Dalam Sistem Tanah Bencah Buatan Jenis Aliran Sub-Permukaan Terhadap Penyingkiran Bahan Organik dan Logan Berat di dalam Air Larut Lesap. Master Thesis, Universiti Teknologi Malaysia.
  • Razman, S., Othman, F.H. and Sabarinah. (1993). The challanges of solid waste management: a case study in South johore, Kongres Sains and Teknologi Malaysia, KL 11-14 August Vol. V-Social sciences.
  • Reed, S. C., Middlebrooks, E.J. and Crites, R.W. (1988). Natural Systems for Waste Management and Treatment, McGraw-Hill, New York.
  • Rivera, R., Warren, A., Curds, C.R., Robles, E., Gutierrez, A., Gallegos, E. and Caldeffin, A. (1997). The application of the rood zone method for the treatment and reuse of high-strenght abattoir waste in Mexico, Water, Science and Technology, Vol. 35, 271-278.
  • Robinson, H.D. (1995). A Review of the Composition of Leachates from Domestic Wastes in Landfill Sites. UK: Department of the Environment.
  • Sawaittayothin, V. and Polprasert, C. (2007). Nitrogen mass balance and microbial analysis of constructed wetlands treating municipal landfill leachate, Bioresorce Technology, Vol. 98, 565-570.
  • Schreijer, M., Xampf, R., Toet, S. and Verhoeven, J. (1997). The use of constructed wetland to upgrade terated sewage effluents before discharge to natural surface water in Texel island, The Netherlands: pilot study, Wat. Sci. Tech., Vol. 35, 231-237.
  • Schwartz, L.X., Wallace, P.M., Gale, P.M., Smith, W.X., Wittig, J.T. and McCarty, S.L. (1994). Orange country Florida eastern service area reclaimed water wetland reuse system, Wat. Sci. Tech., Vol. 29, 273-281.
  • Spieles, D.J. and Mitsch, W.J. (2000). The effects of season and hydrologic and chemical loading on nitrate retention in constructed wetlands: a comparison of low-and high-nutrient riverine systems, Ecological Engineering, Vol. 14, 77-91.
  • Tatsi, A.A. and Zouboulis, A.I. (2002). A field investigation of the quantity and quality of leachate from a municipal solid waste landfill in a mediterranean Advances in Environmental Research, Vol. 6, 207- 219. thessaloniki, Greece,
  • Tchobanoglous, G. and Burton, F.L. (1991). Wastewater Engineering Treatment, Disposal, and Reuse, McGraw-Hill, Inc., 1334p.
  • Tchobanoglous, G., Theisen, H. and Vigil, S. (1993). Integrated Solid Waste Management, Engineering Principles and Management Issues, New York: McGraw-Hill.
  • Trebouet, D., Schlumpf, J. P., Jaouen, P. and Quemeneur, F. (2001). Stabilized Landfill Leachate Treatment Nanofiltration Processes. Water Resource, Vol. 35, 2935-2942. Physicochemical
  • Tunçsiper, B., Akça, L. (2006). Pilot ölçekli bir yapay sulakalan incelenmesi, İTÜ Mühendislik dergisi, Cilt 5, Sayı 3, 13-22. arıtma performansının
  • Topal, M., Karagözoğlu, B., Öbek, E., Arslan Topal, E.I. (2011). Bazı su mercimeklerinin nutrient gideriminde kullanımı, Mehmet Akif Ersoy Üniversitesi, Fen Bilimleri Enstitüsü Dergisi, MAKUFEBED 4:12-28.
  • Urbanc Bersic, O. (1994). Investigation in to the Use of Constructed Reedbads for Municipal Waste Dump Leachate Treatment. In: Lim, P. E. and Polprasert, C. Constructed Wetlands for Wastewater Treatment and Resource Recovery. Thailand: Environmental Systems Information Center.
  • Wenerick Jr, S.E., Webster, H.J., Stark, L.R. and DeVeau, E. (1989). Tolerance of Three Wetland Plant Species to Acid Mine Drainage: A Greenhouse Study. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 801-807.
  • Wittgren, H.B and Tobiason, S. (1995). Nitrogen removal from pretreated wastewater in surface flow wetlands, Water Sci. Technol. Vol. 32, 69-78.
  • Wojciechowska, E. and Obarska- Pempkowiak, H. (2008). Landfill Leachated Treatment at a Plot Plant Using Hydrophyte Systems. In: Pawlowska, M. and Pawlowski, L. (Ed), Management of Pollutants from Landfills and Sludge. Taylor and Francis, London, UK, 205-210.
  • Worrall, P., Peberdy, K.J. and Millet, M.C. (1997). Constructed wetlands and nature conservation, Water Sci. Technol. Vol. 35, 205-213.
  • WPCF. (1990). Natural Systems for Wastewater Treatment, Manual of Practice. FD-16, Alexandria, VA.
  • Yalcuk, A. and Uğurlu, A. (2009). Comparison of horizontal and vertical constructed wetland systems for Technology, Vol. 100, 2521-2526. treatment, Bioresource
  • Yalılı, M., Kestioğlu, K., Mert, B.K. (2006). Sızıntı sularının evsel respirometrik Üniversitesi, Mühendislik- Mimarlık Fakültesi Dergisi, Cilt 11, Sayı 1, 65-73. birlikte
  • arıtılabilirliğinin yöntemle izlenmesi, Uludağ

Sızıntı Sularının Doğal Arıtımı (025401) (1-16)

Yıl 2011, Cilt: 11 Sayı: 2, 1 - 16, 01.08.2011

Öz

Bu çalışmada, sızıntı sularının doğal arıtımı ile ilgili genel bilgiler verilmiş ve tartışılmıştır. İçeriğinde bulunan farklı kirleticiler nedeniyle karmaşık bir atıksu olan sızıntı suyu, katı atık sahalarında çöplerin ayrışmasının bir sonucu olarak meydana gelmektedir. Farklı katı atıkların ayrışmasından oluşan sızıntı suları yüksek miktarda organik madde, inorganik madde (sodyum klorür, karbonat) ve ağır metal içerebildiğinden evsel ve endüstriyel atıksuların çoğundan daha konsantre (fiziksel, kimyasal ve biyolojik olarak) kirlilik yüküne sahiptir. Sızıntı suları uygun bir şekilde arıtılmadıkça çevrede ciddi kirlilik oluşturmaktadır. Sızıntı sularını arıtmak için çeşitli metotlar kullanılmaktadır. Bu metotlar arasında doğal arıtma sistemleri son zamanlarda önem kazanmıştır. Sızıntı sularının doğal sistemler ile arıtılması çevresel olarak uygun gözükmektedir. Doğal arıtma sistemleri bazı özelliklerinden dolayı tercih edilmektedir. Ekonomiktirler ve fazla insan gücü gerektirmezler. Ayrıca işletilmeleri kolaydır ve enerji gereksinimleri azdır. Hem evsel hem de endüstriyel atıksuların arıtılmasında kullanılan bu sistemler özellikle nüfusun az olduğu yerlerde ve kırsal kesimlerde sızıntı sularının arıtımı için kullanılabilir

Kaynakça

  • Aalbers, H. (1999). Resource Recovery from Faecal Sludge Using Constructed Wetlands, A Survey of the Litrerature, Netherlands. Document, The
  • Akça, L. (2005). Atıksu Arıtımında Doğal Sistemler, Seminer notları, Elazığ.
  • Anonim. (2010). Atıksu Arıtma Tesisi Teknik Usuller Tebliği (27527 sayı) , TC Resmi Gazete, 20 Mart.
  • Ayaz, Ç.S. ve Saygın, Ö. (1996). Hydroponic wastewater treatment garden. 9th International Association on Water Quality Conference, 11-12, Wienna.
  • Barlaz, M.A. (1996). Microbiology of Solid Waste Landfills. In: Palmisano, A.C. and Barlaz, M.A. Microbiology of Solid Waste, Florida, CRC Press.
  • Bastviken, S.K., Eriksson, P.G., Premrov, P. and Tonderski, K. (2005). Potential denitrification in wetland sediments with different plant species detritus, Ecological Engineering, Vol. 25, 183-190.
  • Bavor, H.J.and Andel, E.F. (1994). Nutrient removal and disinfection performance in the Byron Bay constructd wetland system, Water Sci. Technol., Vol. 29, 201-208.
  • Bloor, M.C. and Banks, C.J. (2005). Acute and sub-lethal toxicity of landfill leachate towards two macro- invertebrates, Proc.Saf. and Env. Pro., Vol. 83, 185- 190.
  • Boothe, D.D.H., Smith, M.C., Gattie, D.K. and Das, K.C. (2001). Characterization of microbial populations in landfil leachate and bulk samples during aerobic bioreduction, Advances in Environmental Research, Vol. 5, 285-294.
  • Brix, H. (1993). Wastewater Treatment in Constructed Wetlands. System Design, Removal Processes, and Treatment Performance. In: Moshiri, G.A. (Ed)., Constructed Improvement, Lewis, 9-22. for Water Quality
  • Brodie, G.A., Hammer, D.A. and TomIjanovich, D.A. (1989). Treatment of Acid Drainage with Constructed Wetland at Tennessee Valley Authority 950 Coal Mine. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 211-219.
  • Brodrick, S.J., Cullen, P. and Maher, W. (1988). Denitrification in a natural wetland receiving secondary treated effluent, Water Res., Vol. 22, 431- 439.
  • Bulc, T., Vrhovsek, D. and Kukanja, V. (1997). The use of constructed wetland for landfill leachate treatment, Water Sci. Technol., Vol. 35, 301-306.
  • Bulc, G.T. (2006). Long term performance of a constructed wetland for landfill leachate treatment, Ecological Engineering, Vol. 26, 365-374.
  • Carley, B.N. and Mavinic, D.S. (1991). The effects of external carbon loading on nitrification and denitrification of a high-amonnia landfill leachate, Res. J. Water Pollut. Control Fed., Vol. 63, 51-58.
  • Christensen, J.B., Jensen, D.L., Gron, C., Filip, Z. and Christensen, T.H. (1997). Characterization of the dissolved organic carbon in leachate-polluted groundwater, Water Research, Vol. 32, 125-135.
  • Chiemchaisri, C., Chiemchaisri, J.J., Threedeach, S. and Wicranarachchi, P.N. (2009). Leachate treatment and greenhouse gas emisssion in subsurface horizontal flow constructed wetland, Bioresource Technology, Vol. 100, 3808-3814.
  • Cossu, R., Haarstad, K., Lavagnolo, M .C. and Littarru, P. (2001). Removal of municipal solid waste COD and NH4+–N by phyto-reduction: A laboratory–scale comparison of terrestrial and aquatic species at different organic loads, Ecological Engineering, Vol. 16, 459–470.
  • Cooper, P., Smith, M. and Maynard, H. (1997). The design and performance of a nitrifying vertical-low reed bed treatment system. Wat. Sci. Tech., Vol. 35, 215-221.
  • Crawford, J.F. and Smith, P.G. (1985). Landfill Technology, Butterworths, London, 84-85. Cronk, J.K. and Fennessy, M.S. (2001). Wetland Plants: Biology and Ecology, Lewis Publishers, USA.
  • Cronk, J.K. and Fennessy, M.S. (2001). Wetland Plants: Biology and Ecology, Lewis Publishers, USA.
  • Çiftçi, H., Kaplan, Ş.Ş., Köseoğlu, H., Karakaya, E., Kitiş, M. (2007). Yapay sulaklanlarda atıksu arıtımı ve ekolojik yaşam, Erciyes Üniversitesi, Fen Bilimleri Enstitüsü Dergisi, 23 (1-2), 149-160.
  • D’Angelo, E.M. and Reddy, K.R. (1994). Diagenesis of organic matter in a wetland receivig hypereutrophic lake water: Role of inorganic electron acceptors in nutrient release, J. Environ. Qual., Vol. 23, 937-943.
  • Dağlı, S., Akça, L. (2007). Yapay sulakalan sisteminde fosfor giderimine ortam malzemesinin etkisi, İTÜ Mühendislik Dergisi, Cilt 17, Sayı 1, 51-59.
  • Davido, R.L. and Conway, T.E. (1989). Nitrification and Denitrification at the Iselin Marsh/Pond/Meadow Facility. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 477-483.
  • Denny, P. (1997). Implementation of constructed wetlands in developing countries, Water Science and Technology, Vol. 35, 27-34.
  • Dölgen, D. (1996). Sızıntı Suyu Arıtma Yöntemleri, Katı Atık ve Çevre, 23, 15-24.
  • Dölgen, D. (1998). Sızıntı Suyu Kalite Kestirimi, Katı Atık ve Çevre, 31, 12-18.
  • DuBowry, P.L. and Reaves, R.P. (1994). Constructed Wetkands for Animal Waste Management. In: Proceedings of a Workshop, 4-6 April, Purdue University, Wes Lafayette IN.
  • EEA. (2005). EEA Multilingual Environmental Glossary: Landfill Leachate.
  • Ehrig, H. K. (1989). Leachate Quality, In: Christensen, T. H., Cossu, R. and Stegmann, R. Sanitary Landfiling. San Diego, Academic Press Inc., 285-297.
  • Ekmekçi, F. (2007). Adana Sofulu Düzensiz Çöp Depolama Sahasından Alınan Çöp Sızıntı Sularının Laboratuar Ölçekli Ortamda Bitkisel Yolla Azot-Fosfor ve Ağır Metal Gideriminin Araştırılması, Çukurova Üniversitesi, Mühendisliği Anabilim Dalı, Yüksek Lisans Tezi. Enstitüsü, Çevre
  • El-Fadel, M., Findikakis, A.N. and Leckie, J.O. (1997). Environmental impacts of solid waste landfilling, Journal of Environmental Management, Vol. 50, 1- 25.
  • El-Gendy, A.S., Biswas, N. and Bewtra, J.K. (2004). Growth of water hyacint in municipal landfill leachate with different pH. Environmental Tech., Vol. 8, 833-840.
  • El-Gendy, A.S., Biswas, N. and Bewtra, J.K. (2005). A floating aquatic system employing water hyacint for municipal landfill leachate treatment: effect of leachated characteristics on the plant growth, Journal of Env. Eng. Sci., Vol. 14, 227-240.
  • EPA. (1988). Design Manual for Constructed Wetland and Floating Aquatic Plants Systems for Municipal Wastewater Cincinnati, OH. EPA625/1-88-022,
  • EPA. (1993). Constructed Wetlands for Wastewater Treatment and Wild Life Habitat: 17 Case Studies, EPA832-R-93-005.
  • EPA. (2000). Constructed Wetlands Treatment of Municipal Wastewaters., EPA/625/R-99-010.
  • Faulwetter, J.L., Gagnon, V., Sundberg, C., Chazarenc, F., Burr, M.D., Brisson, J., Camper, A.K. and Stein, O.R. (2009). Microbial processes influencing performance of treatment wetlands: A review, Ecological Engineering, Vol. 35, 987-1004.
  • Ferdoushi, Z., Haque, F., Khan, S. and Haque, M. (2008). The effects of two aquatic floating macrofits (Lemna and Azolla) as biofilters of nitrogen and phosphate in fish ponds, Turkish Journal of Fisheries and Aquatic Sciences, Vol. 8, 253-258.
  • Galbrand, C. C. (2003). Naturalized Treatment Wetlands for Contaminant Removal: A Case Study of the Burnside Engineered Wetland for Treatment of Landfill University. Thesis, Dalhousie
  • Gersberg, R.M., Elkins, B.V. and Goldman, C.R. (1985). Wastewater treatment by artifical wetlands, Water Sci. Technol. Vol. 17, 443-450.
  • Gijzen, H. J. (2002). Anaerobic digestion for sustainable development: a natural approach, Wat. Sci. Tech., Vol. 45, 321-328.
  • Gschlöβl, T., Steinmann, C., Schleypen, P. and Melzer, A. (1998). Constructed wetlands for effluent polishing of lagoons, Wat. Res., Vol. 32, 2639-2645.
  • Hammer, D.A. and Bastian,R.X. (1989). Wetlands Ecosystems: Natural Water Purifiers, In: Hammer, D.A. (Ed)., Constructed Wetlands for Wastewater Treatment. Chelsea, Lewis, 5-19.
  • Hoppe, H.G., Kim, S.J. and Gocke, K. (1988). Microbial decomposition in aquatic environments: combined processes of extra cellular activity and substrate uptake. Appl. Environ. Microbiol., Vol. 54, 784-790.
  • Hosomi, M., Murakami, A. and Sudo, R. (1994). A four- year mass balance for a natural wetland system receiving domestic wastewater. Water Sci.Technol., Vol. 30, 235-244.
  • Howard, E.A., Emerick, L.C. and Wildeman, T.R. (1989). Design and Construction of a Research Site for Passive Mine Drainage Treatment in Idaho Springs, Colorado. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 761-764.
  • Hui, T.S. (2005). Leachate Treatment By Floating Plants In Constructed Wetland, Master Thesis, Universiti Teknologi Malaysia. 83p.
  • İlhan, F., Kurt, U., Apaydın, Ö., Arslankaya, E., Gönüllü, M.T. (2007). Elektrokimyasal arıtım ve uygulamaları; Katı atık sızıntı suyu çalışması, AB Sürecinde Türkiye’de Katı Atık Yönetimi ve Çevre Sorunları Sempozyumu, TÜRKAY 2007.
  • Kadlec, R.H. and Zmarthie, L.A. (2010). Wetland treatment of leachate from a closed landfill, Ecological Engineering, Vol. 36, 946-957.
  • Kang, K.H., Shin, H.S. and Park, H. (2002). Characterization of humic substances present in landfill leachates with different landfill ages and its implications, Water Research, Vol. 36, 4023-4032.
  • Kivaisi, A.K. (2001). The potential for constructed wetlands for wastewater treatment and reuse in developing Engineering, Vol. 16, 545-560. a review, Ecological
  • Kleinmann, R.L.P. and Girts, M.A. (1987). Acid Mine Water Treatment: An Overview of an Emergend Technology. In: Reddy, K.R. and Smith, W.H. (Ed), Aquatic Plants for Water Treatment and Resource Recovery, Magnolia, Orlando, 255-261.
  • Klikowska, D. and Klimiuk, E. (2008). The effect of landfill age on municipal leachate composition, Bioresource Technology, Vol. 94, 5981-5985.
  • Krishnan, V.G. (2002). Kajian Peyerapan Logan- Logan Berat oleh Dua Spesies Tumbuhan Separuh Tenggelam Dalam Tanah Bencah Buatan Jenis Sub- Permakaan Bagi Olahan Air Larut Lesap. Master Thesis, Universiti Teknologi Malaysia.
  • Kurt, U., İlhan, F., Birben, N.C., Ulucan, K., Gönüllü, M.T. (2009). Sızıntı sularının evsel atıksularla birlikte elektrokoagülasyon incelenmesi, Sempozyumu, 1-9, 15-17 Haziran 2009. Atık Türkiye^de Katı Yönetimi
  • Lavrova, S. and Koumanova, B. (2010). Influence of recirculation in a lab-scale vertical flow constructed wetland on the treatment efficiency of landfill leachate, Bioresorce Technology, Vol. 101, 1756- 1761.
  • Lee, Y.F. (2004). Rainfall Effects to the Performance of Subsurface LeachateTreatment, Teknologi, Malaysia. Wetland in Thesis, Universiti
  • Ling, C.A. (2006). Nutrient Removal from Leachate Using Horizontal Subsurface Constructed Wetlands, Master Thesis, Universiti Teknologi Malaysia.
  • Lu, J. C. S., Eichenberger, B. and Stearns, R. J. (1985). Leachate from Municipal Landfills: Prduction and Management. US: Noyes Publications.
  • Madigan, M.T., Martinko, L.M. and Parker, J. (1997). Brock Biology of Microorganisms, 8.th ed. Prentice Hall, Upper Saddle River, NJ, p986.
  • Martin, C.D. and Moshiri, G.A. (1994). Nutrient reduction in an in-series constructed wetland system terating landfill leachate, Water Science Technology, Vol. 29, 267-272.
  • Martin, C.D. and Johnson K.D. (1995). The use of extended aeration and in-series surface flow wetlands for landfill leachate treatment, Wat. Sci. Tec., Vol. 12, 119-128.
  • Mathewson, C.C. and Mathewson, H.A. (1998). Designing a Wetland for a Wastewater Treatment-A Truly Assciation for Engineering Geology and the Environment, International Congress, Vol. 5, No.8, Vancouver. Effort., International
  • McBean, E. and Rovers, F. (1999). Landfill Leachate Characteristics as Inputs for the Design of Wetlands Used as Treatment Systems. In: Mulamoottil, G., McBean, E. and Rovers, F. Constructed Wetlands for the Treatment of Landfill Leachates, Florida, Lewis Publishers.
  • Muna Mohamed. (2003). Pengulahan Air Larut Lesap Melalui Tanah Bencah Bu Atan Aliran Subpermukaan Dengan sexangulare bagi Penyigkiran Logan Berat. Master Thesis, Univesiti Teknologi Malaysia. Ericaulon
  • Muslu, Y., (1985). Su Temini ve Çevre Sağlığı, İstanbul Teknik Üniversitesi Kütüphanesi, Cilt III., 790s.
  • Nichols, D.S. (1983). Capacşty of natural wetlands to remove nutrients from wastewater, J. Water Pollut. Control Fed., Vol. 55, 501-505.
  • Nivala, J., Hoos, M.B., Cross, C., Wallace, S. and Parkin, G. (2007). Treatment of landfill leachate using an aerated, horizontal subsurface-flow constructed wetland, Sci. of the to. Env. Vol. 380, 19-27.
  • Nordin, N.I.A.B.A. (2006). Leachate Treatment Using Constructed Wetland with Magnetic Field, Master Thesis, Universiti Teknologi Malaysia. 88p.
  • Peverly, J.H., Surface, J.M. and Wang, T. (1995). Growth and trace metal absorption by Phragmites australis in wetlands constructed for landfill leachated treatment, Ecological Engineering, Vol. 5, 21-35.
  • Pouliot, J.M. (1999). Biological Treatment of Landfill Leachate. The University of Western Ontario, Master Thesis.
  • Rafidah binti Hamdan. (2002). Kajian Pengaruh Konfigurasi Tumbuhan Di Dalam Sistem Tanah Bencah Buatan Jenis Aliran Sub-Permukaan Terhadap Penyingkiran Bahan Organik dan Logan Berat di dalam Air Larut Lesap. Master Thesis, Universiti Teknologi Malaysia.
  • Razman, S., Othman, F.H. and Sabarinah. (1993). The challanges of solid waste management: a case study in South johore, Kongres Sains and Teknologi Malaysia, KL 11-14 August Vol. V-Social sciences.
  • Reed, S. C., Middlebrooks, E.J. and Crites, R.W. (1988). Natural Systems for Waste Management and Treatment, McGraw-Hill, New York.
  • Rivera, R., Warren, A., Curds, C.R., Robles, E., Gutierrez, A., Gallegos, E. and Caldeffin, A. (1997). The application of the rood zone method for the treatment and reuse of high-strenght abattoir waste in Mexico, Water, Science and Technology, Vol. 35, 271-278.
  • Robinson, H.D. (1995). A Review of the Composition of Leachates from Domestic Wastes in Landfill Sites. UK: Department of the Environment.
  • Sawaittayothin, V. and Polprasert, C. (2007). Nitrogen mass balance and microbial analysis of constructed wetlands treating municipal landfill leachate, Bioresorce Technology, Vol. 98, 565-570.
  • Schreijer, M., Xampf, R., Toet, S. and Verhoeven, J. (1997). The use of constructed wetland to upgrade terated sewage effluents before discharge to natural surface water in Texel island, The Netherlands: pilot study, Wat. Sci. Tech., Vol. 35, 231-237.
  • Schwartz, L.X., Wallace, P.M., Gale, P.M., Smith, W.X., Wittig, J.T. and McCarty, S.L. (1994). Orange country Florida eastern service area reclaimed water wetland reuse system, Wat. Sci. Tech., Vol. 29, 273-281.
  • Spieles, D.J. and Mitsch, W.J. (2000). The effects of season and hydrologic and chemical loading on nitrate retention in constructed wetlands: a comparison of low-and high-nutrient riverine systems, Ecological Engineering, Vol. 14, 77-91.
  • Tatsi, A.A. and Zouboulis, A.I. (2002). A field investigation of the quantity and quality of leachate from a municipal solid waste landfill in a mediterranean Advances in Environmental Research, Vol. 6, 207- 219. thessaloniki, Greece,
  • Tchobanoglous, G. and Burton, F.L. (1991). Wastewater Engineering Treatment, Disposal, and Reuse, McGraw-Hill, Inc., 1334p.
  • Tchobanoglous, G., Theisen, H. and Vigil, S. (1993). Integrated Solid Waste Management, Engineering Principles and Management Issues, New York: McGraw-Hill.
  • Trebouet, D., Schlumpf, J. P., Jaouen, P. and Quemeneur, F. (2001). Stabilized Landfill Leachate Treatment Nanofiltration Processes. Water Resource, Vol. 35, 2935-2942. Physicochemical
  • Tunçsiper, B., Akça, L. (2006). Pilot ölçekli bir yapay sulakalan incelenmesi, İTÜ Mühendislik dergisi, Cilt 5, Sayı 3, 13-22. arıtma performansının
  • Topal, M., Karagözoğlu, B., Öbek, E., Arslan Topal, E.I. (2011). Bazı su mercimeklerinin nutrient gideriminde kullanımı, Mehmet Akif Ersoy Üniversitesi, Fen Bilimleri Enstitüsü Dergisi, MAKUFEBED 4:12-28.
  • Urbanc Bersic, O. (1994). Investigation in to the Use of Constructed Reedbads for Municipal Waste Dump Leachate Treatment. In: Lim, P. E. and Polprasert, C. Constructed Wetlands for Wastewater Treatment and Resource Recovery. Thailand: Environmental Systems Information Center.
  • Wenerick Jr, S.E., Webster, H.J., Stark, L.R. and DeVeau, E. (1989). Tolerance of Three Wetland Plant Species to Acid Mine Drainage: A Greenhouse Study. In: Hammer, D.A. Jr. (Ed), Constructed Wetlands for Wastewater Treatment, Lewis Publishers, Chelsea, MI, 801-807.
  • Wittgren, H.B and Tobiason, S. (1995). Nitrogen removal from pretreated wastewater in surface flow wetlands, Water Sci. Technol. Vol. 32, 69-78.
  • Wojciechowska, E. and Obarska- Pempkowiak, H. (2008). Landfill Leachated Treatment at a Plot Plant Using Hydrophyte Systems. In: Pawlowska, M. and Pawlowski, L. (Ed), Management of Pollutants from Landfills and Sludge. Taylor and Francis, London, UK, 205-210.
  • Worrall, P., Peberdy, K.J. and Millet, M.C. (1997). Constructed wetlands and nature conservation, Water Sci. Technol. Vol. 35, 205-213.
  • WPCF. (1990). Natural Systems for Wastewater Treatment, Manual of Practice. FD-16, Alexandria, VA.
  • Yalcuk, A. and Uğurlu, A. (2009). Comparison of horizontal and vertical constructed wetland systems for Technology, Vol. 100, 2521-2526. treatment, Bioresource
  • Yalılı, M., Kestioğlu, K., Mert, B.K. (2006). Sızıntı sularının evsel respirometrik Üniversitesi, Mühendislik- Mimarlık Fakültesi Dergisi, Cilt 11, Sayı 1, 65-73. birlikte
  • arıtılabilirliğinin yöntemle izlenmesi, Uludağ
Toplam 97 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Bölüm Makaleler
Yazarlar

Murat Topal Bu kişi benim

Bünyamin Karagözoğlu Bu kişi benim

Erdal Öbek Bu kişi benim

Yayımlanma Tarihi 1 Ağustos 2011
Gönderilme Tarihi 8 Ağustos 2015
Yayımlandığı Sayı Yıl 2011 Cilt: 11 Sayı: 2

Kaynak Göster

APA Topal, M., Karagözoğlu, B., & Öbek, E. (2011). Sızıntı Sularının Doğal Arıtımı (025401) (1-16). Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, 11(2), 1-16.
AMA Topal M, Karagözoğlu B, Öbek E. Sızıntı Sularının Doğal Arıtımı (025401) (1-16). Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi. Ağustos 2011;11(2):1-16.
Chicago Topal, Murat, Bünyamin Karagözoğlu, ve Erdal Öbek. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi 11, sy. 2 (Ağustos 2011): 1-16.
EndNote Topal M, Karagözoğlu B, Öbek E (01 Ağustos 2011) Sızıntı Sularının Doğal Arıtımı (025401) (1-16). Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi 11 2 1–16.
IEEE M. Topal, B. Karagözoğlu, ve E. Öbek, “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”, Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, c. 11, sy. 2, ss. 1–16, 2011.
ISNAD Topal, Murat vd. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi 11/2 (Ağustos 2011), 1-16.
JAMA Topal M, Karagözoğlu B, Öbek E. Sızıntı Sularının Doğal Arıtımı (025401) (1-16). Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi. 2011;11:1–16.
MLA Topal, Murat vd. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, c. 11, sy. 2, 2011, ss. 1-16.
Vancouver Topal M, Karagözoğlu B, Öbek E. Sızıntı Sularının Doğal Arıtımı (025401) (1-16). Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi. 2011;11(2):1-16.


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