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Natural Treatment Of Leachate

Year 2011, Volume: 11 Issue: 2, 1 - 16, 01.08.2011

Abstract

References

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  • Brodrick, S.J., Cullen, P. and Maher, W. (1988). Denitrification in a natural wetland receiving secondary treated effluent, Water Res., Vol. 22, 431- 439.
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  • 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.
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  • 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.
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  • arıtılabilirliğinin yöntemle izlenmesi, Uludağ

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

Year 2011, Volume: 11 Issue: 2, 1 - 16, 01.08.2011

Abstract

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

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Details

Primary Language Turkish
Journal Section Articles
Authors

Murat Topal This is me

Bünyamin Karagözoğlu This is me

Erdal Öbek This is me

Publication Date August 1, 2011
Submission Date August 8, 2015
Published in Issue Year 2011 Volume: 11 Issue: 2

Cite

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. August 2011;11(2):1-16.
Chicago Topal, Murat, Bünyamin Karagözoğlu, and Erdal Öbek. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi 11, no. 2 (August 2011): 1-16.
EndNote Topal M, Karagözoğlu B, Öbek E (August 1, 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, and E. Öbek, “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”, Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, vol. 11, no. 2, pp. 1–16, 2011.
ISNAD Topal, Murat et al. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi 11/2 (August 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 et al. “Sızıntı Sularının Doğal Arıtımı (025401) (1-16)”. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, vol. 11, no. 2, 2011, pp. 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.