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Articles

Nutrient and organic matter removal from low strength sewage treated with constructed wetlands

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Pages 11-18 | Received 10 Oct 2016, Accepted 19 Aug 2017, Published online: 20 Sep 2017

References

  • Sousa JT, Van Haandel AC, Constantino PRS, et al. After treatment UASB reactor effluent using wetlands systems built. JAgri Environ Eng. 2000;4:87–91. doi: 10.1590/S1415-43662000000100016
  • Lin YF, Jing SR, Lee DY, et al. Performance of a constructed wetland treating intensive shrimp aquaculture wastewater under high hydraulic loading rate. Environ Pollut. 2005;134:411–421. doi:10.1016/j.envpol.2004.09.015.
  • Korkusuz AE, Beklioğlu M, Demirer GN. Treatment efficiencies of the vertical flow pilot-scale constructed wetlands for domestic wastewater treatment. Turkish J Eng Env Sci. 2004;28:333–344.
  • Borges AC, Zaparoli BR, Matos AT, et al. Potential for denitrification in sequencing batch constructed wetlands cultivated with T. latifolia and C. zizanioides. Desalin Water Treat. 2016;57(12):5464–5472. doi: 10.1080/19443994.2014.1003335
  • Sarmento A, Borges AC, Matos AT. Evaluation of vertical-flow constructed wetlands for swine wastewater treatment. Water Air Soil Poll. 2012;223(3):1065–1071. doi: 10.1007/s11270-011-0924-4
  • Chang J-J, Wu S-G, Dai Y-R, et al. Treatment performance of integrated vertical-flow constructed wetland plots for domestic wastewater. Ecol Eng. 2012;44:152–159. doi:10.1007/s11356-012-1307-0 doi: 10.1016/j.ecoleng.2012.03.019
  • Kadlec RH, Wallace SD. Treatment wetlands. 2nd ed. Boca Raton (FL): CRC Press; 2009.
  • Prochaska CA, Zouboulis AI, Eskridge KM. Performance of pilot-scale vertical-flow constructed wetlands, as affected by season, substrate, hydraulic load and frequency of application of simulated urban sewage. Ecol Eng. 2007;31(1):57–66. doi: 10.1016/j.ecoleng.2007.05.007
  • Zacarkim CE, Oliveira LC, Welter RA, et al. Analysis of a wetland system in the post-treatment of wastewater. Revista Brasileira de Energias Renováveis. 2014;3(1):1–12.
  • Henry-Silva GG, Camargo AFM. Efficiency of aquatic macrophytes to treat Nile tilapia pond effluents. Sci Agricola. 2006;63:417–513. doi: 10.1590/S0103-90162006000500003
  • American Public Health Association. Standard methods for the examination of water and wastewater. 22nd ed. Washington (DC): American Water Works Association; Water Environment Federation; 2012.
  • Pompêo MLM, Moschini-Carlos V. Macrófitas aquáticas e perifíton: aspectos ecológicos e metodológicos. São Carlos, SP: RiMa. 2003.
  • Vymazal J, Švehla J. Iron and manganese in sediments of constructed wetlands with horizontal subsurface flow treating municipal sewage. Ecol Eng. 2013;50:69–75. doi: 10.1016/j.ecoleng.2012.04.027
  • Sindilariu PD, Wolter C, Reiter R. Constructed wetlands as a treatment method for effluents from intensive trout farms. Aquaculture. 2008;277(3–4):179–184. doi: 10.1016/j.aquaculture.2008.02.026
  • Peng L, Hua Y, Cai J, et al. Effects of plants and temperature on nitrogen removal and microbiology in a pilot-scale integrated vertical-flow wetlands treating primary domestic wastewater. Ecol Eng. 2014;64(1):285–290. doi: 10.1016/j.ecoleng.2013.12.036
  • Beebe DA, Castle JW, Molz FJ, et al. Effects of evapotranspiration on treatment performance in constructed wetlands: experimental studies and modeling. Ecol Eng. 2014;71:394–400. doi: 10.1016/j.ecoleng.2014.07.052
  • Bialowiec A, Albuquerque A, Randerson PF. The influence of evapotranspiration on vertical flow subsurface constructed wetland performance. Ecol Eng. 2014;67:89–94. doi: 10.1016/j.ecoleng.2014.03.032
  • Brasil MS, Matos AT. Evaluating hydrological and hydraulic aspects in subsurface-flow constructed wetland systems. Eng Sanit Ambient. 2008;13(3):323–328. doi: 10.1590/S1413-41522008000300012
  • Lim PE, Wong TF, Lim DV. Oxygen demand, nitrogen and copper removal by free-water-surface and subsurface-flow constructed wetlands under tropical conditions. Environ Int. 2001;26(5–6):425–431. doi: 10.1016/S0160-4120(01)00023-X
  • Iapar. Evapotranspiration - Annual. Curitiba, 2004. Available at <http://200.201.27.14/Site/Sma/Cartas_Climaticas/Evapotranspiracao.htm>
  • Zhao YJ, Liu B, Zhang WG, et al. Performance of pilot-scale vertical-flow constructed wetlands in responding to variation in affluent C/N ratios of simulated urban sewage. Bioresource Technol. 2010;101(6):1693–1700. doi: 10.1016/j.biortech.2009.10.002
  • Calijuri ML, Bastos RKX, Magalhães TB, et al. Domestic wastewater treatment in UASB-horizontal flow constructed wetlands systems: organic matter, solids, nutrients and coliforms removal. Eng Sanit Amb. 2009;14(3):421–430. doi: 10.1590/S1413-41522009000300016
  • Mazzola M, Roston DM, Valentine MAA. Use of beds cultivated vertical flow by bacteria in the post-treatment effluent anaerobic reactor compartmented. J Agric Environ Eng. 2005;9(2):276–283. doi: 10.1590/S1415-43662005000200020
  • Henry-Silva GG, Camargo AFM. Treatment of shrimp effluents by free-floating aquatic macrophytes. Rev BrasZoo. 2008;37(2):181–188. doi:10.1590/S1516-35982008000200002 doi: 10.1590/S1413-24782008000100018
  • Henry-Silva GG, Camargo AFM. Nutritive value of floating aquatic macrophytes (Eichhornia crassipes, Pistia stratiotes and Salvinia molesta) used to treat aquaculture effluents. Acta Scientiarum. Biol Sci. 2002;24(2):519–526. doi: 10.4025/actascibiolsci.v24i0.2353
  • Borges AC. Avaliação da remoção e transporte do herbicida ametrina em sistemas alagados construídos. 2007.164 f. Tese (Doutorado em Engenharia Hidráulica e Saneamento). Programa de Pós-Graduação em Hidráulica e Saneamento. Escola de Engenharia de São Carlos da Universidade de São Paulo, São Carlos.
  • Fia FRL, Matos AT, Fia R, et al. Nutrients removal by Typha latifolia and Cynodon spp. grown in constructed wetlands. Ambiente & Água – An interdisciplinary. J.Appl Sci. 2011;6(1):77–89. doi: 10.4136/ambi-agua.469
  • Li C, Dong Y, Lei Y, et al. Removal of low concentration nutrients in hydroponic wetlands integrated with zeolite and calcium silicate hydrate functional substrates. Ecol Eng. 2015;82:442–450. doi: 10.1016/j.ecoleng.2015.05.003

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