PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Kinetics of Pollutants Removal in Wetlands Influenced by Retention Time and Number of Plants Using Cyperus alternifolius

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Constructed wetland is considered an alternative for domestic wastewater treatment in cities. This study serves to evaluate the removal capacity and kinetics of TSS, COD, phosphate, and surfactant in domestic wastewater with several plants of Cyperus alternifolius, through the use of the constructed wetlands treatment. The overall objective of the study was to determine the ability of Cyperus alternifolius to remove water pollutants in domestic wastewater in several plants. The domestic wastewater was contacted in a batch system. The results indicated that CWs had a good performance on COD, phosphate, and surfactant with removal efficiencies of more than 80%, with a retention time of 8 days and 5 plants. However, the removal of suspended solids was found limited, as shown that the TSS removal efficiency was under 40%. The first-order equation of kinetics described the degradation of pollutants. The q1/2 values, which were defined as the average removal loading prior to the half of the pollutant concentration being removed and represented the removal capacity without limitation of pollutants concentration, were moderately increased with an addition to the number of plants.
Rocznik
Strony
37--43
Opis fizyczny
Bibliogr. 25 poz., rys., tab.
Twórcy
  • Study Program of Environmental Engineering, Department of Biology, Faculty of Science and Technology, Universitas Airlangga, Indonesia
  • Study Program of Environmental Engineering, Department of Biology, Faculty of Science and Technology, Universitas Airlangga, Indonesia
  • Study Program of Environmental Engineering, Department of Biology, Faculty of Science and Technology, Universitas Airlangga, Indonesia
  • Study Program of Environmental Engineering, Department of Biology, Faculty of Science and Technology, Universitas Airlangga, Indonesia
Bibliografia
  • 1. Al-Ajalin, F.A.H., Idris, M., Abdullah, S.R.S., Kurniawan, S.B., Imron, M.F. 2020. Evaluation of short-term pilot reed bed performance for real domestic wastewater treatment. Environmental Technology & Innovation, 20, 101–110.
  • 2. Carvalho, P.N., Arias, C.A., Brix, H. 2017. Constructed Wetlands for Water Treatment: New Developments. Water, 9(6), 397.
  • 3. Choudhary, A.K., Kumar, S., Sharma, C. 2011. Constructed wetlands: An approach for wastewater treatment. Elixir Pollution, 37, 3666–3672.
  • 4. Corbella, C.Hartl, M., Fernandez-gatell, M., Puigagut, J. 2019. MFC-based biosensor for domestic wastewater COD assessment in constructed wetlands. Science of The Total Environment, 660, 218–226.
  • 5. Dash, A. 2013. Characterization of Domestic Wastewater at Bhubaneswar, Odisha, India. The Ecoscan, 3, 297–305.
  • 6. Eaton, A.D. Clesceri, L.S., Franson, M.A.H., Rice, E.W., Greenberg, A.E. 2005. Standard methods for the examination of water and wastewater, 21st ed. American Public Health Association, Washington D.C.
  • 7. García-Ávila, F. 2020. Treatment of municipal wastewater by vertical subsurface flow constructed wetland: Data collection on removal efficiency using Phragmites Australis and Cyperus Papyrus. Data in Brief, 30, 105584.
  • 8. Ghosh, D., Gopal, B. 2010. Effect of hydraulic retention time on the treatment of secondary effluent in a subsurface flow constructed wetland. Ecological Engineering, 36(8), 1044–1051.
  • 9. Gunes, K., Masi, F., Ayaz, S., Tuncsiper, B., Besiktas, M. 2021. Domestic wastewater and surface runoff treatment implementations by constructed wetlands for Turkey: 25 years of experience. Ecological Engineering, 170, 106369.
  • 10. Kulshreshtha, N.M., Verma, V., Soti, A., Brighu, U., Gupta, A.B. 2022. Exploring the contribution of plant species in the performance of constructed wetlands for domestic wastewater treatment. Bioresource Technology Reports, 18, 101038.
  • 11. Lakho, F.H., Le, H.Q., Kerkhove, F.V., Igodt, W., Depuydt, V., Desloover, J., Rousseau, D.P.L., Hulle, S.W.H. 2020. Water treatment and re-use at temporary events using a mobile constructed wetland and drinking water production system. Science of the Total Environment, 737, 139630.
  • 12. Li, X., Zhu, W., Meng, G., Zhang, C., Guo, R. 2020. Efficiency and kinetics of conventional pollutants and tetracyclines removal in integrated vertical-flow constructed wetlands enhanced by aeration. Journal of Environmental Management, 273, 111120.
  • 13. Lyu, T., Zhang, L., Xu, X., Arias, C.A., Brix, H., Carvalho, P.N. 2018. Removal of the pesticide tebuconazole in constructed wetlands: Design comparison, influencing factors and modelling. Environmental Pollution, 233, 71–80.
  • 14. Marzec, M., Jóźwiakowski, K., Dębska, A., Gizińska-Górna, M., Pytka-Woszczyło, A., Kowalczyk-Juśko, A., Listosz, A. 2018. The Efficiency and Reliability of Pollutant Removal in a Hybrid Constructed Wetland with Common Reed, Manna Grass, and Virginia Mallow. Water, 10(10), 1445.
  • 15. Meng, P., Pei, H., Hu, W., Shao, Y., Li, Z. 2014. How to increase microbial degradation in constructed wetlands: Influencing factors and improvement measures. Bioresource Technology, 157, 316–326.
  • 16. Puchlik, M. 2016. Application of Constructed Wetlands for Treatment of Wastewater from Fruit and Vegetable Industry. Journal of Ecological Engineering, 17(1), 131–135.
  • 17. de Rozari, P., Krisnayati, D.S., Refli., Yordanis, K.V., Atie, M.R.R. 2021. The use of pumice amended with sand media for domestic wastewater treatment in vertical flow constructed wetlands planted with lemongrass (Cymbopogon citratus). Heliyon, 7(7), e07423.
  • 18. Saeed, T., Sun, G. 2011. The removal of nitrogen and organics in vertical flow wetland reactors: Predictive models. Bioresource Technology, 102(2), 1205–1213.
  • 19. Scott, M.J., Jones, M.N. 2000. The biodegradation of surfactants in the environment. Biochimica et Biophysica Acta (BBA) - Biomembranes, 1508(1–2), 235–251.
  • 20. Stefanakis, A.I. 2015. Constructed wetlands: Description and benefits of an eco-tech water treatment system. in Impact of Water Pollution on Human Health and Environmental Sustainability. IGI Global.
  • 21. Sun, G., Saeed, T. 2009. Kinetic modelling of organic matter removal in 80 horizontal flow reed beds for domestic sewage treatment. Process Biochemistry, 44(7), 717–722.
  • 22. Va, V., Setiyawan, A.S., Soewondo, P., Putri, D.W. 2018. The Characteristics of Domestic Wastewater from Office Buildings in Bandung, West Java, Indonesia. Indonesian Journal of Urban and Environmental Technology, 1(2), 199–214.
  • 23. Vymazal, J., Kröpfelová, L. 2008. Wastewater Treatment in Constructed Wetlands with Horizontal Sub-Surface Flow. Dordrecht: Springer Netherlands (Environmental Pollution).
  • 24. Wahyudianto, F.E., Oktavitri, N.I., Hariyanto, S. 2019. Kinetics of phosporus removal from laundry wastewater in constructed wetlands with Equisetum hymale. Journal of Ecological Engineering, 20(6), 60–65.
  • 25. Wijaya, I.M.W., Soedjono, E.S. 2018. Domestic Wastewater in Indonesia: Challenge in the Future Related to Nitrogen Content. International Journal of GEOMATE, 15(47), 32–41.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ea790fb0-3c4a-4566-b124-d931e29dd668
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.