High Strength Wastewater Reclamation Capacity of Vetiver Grass in Tropics: The Case of Ethiopia

1. WWAP (United Nations World Water Assessment Programme) . The United Nations World Water Development Report 2017. Wastewater: The Untapped Resource. UNESCO; 2017.
Google Scholar2. Md Kawser, A, Monika, D, Md Monirul, I, Mosammat Salma, A, Shahidul, I, Abdullah Al-Mansur, M. Physicochemical properties of tannery and textile effluents and surface water of river Buriganga and Karnatoli, Bangladesh. World Appl Sci J. 2011;12:152-159.
Google Scholar3. Shu, L, Waite, TD, Bliss, PJ, Fane, A, Jegatheesan, V. Nanofiltration for the possible reuse of water and recovery of sodium chloride salt from textile effluent. Desalination. 2005;172:235-243.
Google Scholar | Crossref4. Demirezen, D, Aksoy, A, Uruç, K. Effect of population density on growth, heavy metal by the aquatic plants Potamogeton pectinatus L. and Potarnogeton biomass and nickel accumulation capacity of Lemna gibba (Lemnaceae). Chemosphere. 2007;66:553-557.
Google Scholar | Crossref | Medline5. Gebre Mariam, Z, Desta, Z. The chemical composition of the effluent from Awassa textile factory and its effects on aquatic biota. Sinet Ethiop J Sci. 2002;25:263-274.
Google Scholar | Crossref6. Marks, S . Quantifying Transverse Dispersion in a Subsurface Flow Constructed Wetland. MSc thesis. Department of Chemical Engineering, University of Queensland; 1999.
Google Scholar7. Njau, KN, Renalda, M. Performance of horizontal subsurface flow constructed wetland in the removal of tannins. Can J Civ Eng. 2010;37:496-501.
Google Scholar | Crossref8. Vymazal, J . Removal of nutrients in various types of constructed wetlands, science direct. Sci Total Environ. 2007;380:48-65.
Google Scholar | Crossref | Medline9. Belmont, MA, Zurita, F, De Anda, J. Treatment of domestic wastewater and production of commercial flowers in vertical and horizontal subsurface-flow constructed wetlands. Ecol Eng. 2009;35:861-869.
Google Scholar | Crossref10. Chen, Z, Wu, S, Braeckevelt, M, et al. Effect of vegetation in pilot-scale horizontal subsurface flow constructed wetlands treating sulphate rich groundwater contaminated with a low and high chlorinated hydrocarbon. Chemosphere. 2012;89:724-731.
Google Scholar | Crossref | Medline11. Chazarenc, F, Gagnon, V, Comeau, Y, Brisson, J. Effect of plant and artificial aeration on solids accumulation and biological activities in constructed wetlands. Ecol Eng. 2009;35:1005-1010.
Google Scholar | Crossref12. Ballesteros, F, Vuong, TH, Secondes, MF, Tuan, PD. Removal efficiencies of constructed wetland and efficacy of plant on treating benzene. Sustain Environ Res. 2016;26:93-96.
Google Scholar | Crossref13. Langergraber, G . Are constructed treatment wetlands sustainable sanitation solutions? Water Sci Technol. 2013;67:2133-2140.
Google Scholar | Crossref | Medline14. Prasad, R, Rangari, PJ, Jasutkar, D. Performance evaluation of constructed wetland in treating domestic wastewater. Int J Latest Res Eng Technol. 2016;2:28-33.
Google Scholar15. Calderon, IM . 2010) Green Movement Against Green Water. Honors thesis. College of Agriculture and Life Sciences, Landscape Architecture of Cornell University, USA
Google Scholar16. Gupta, P, Roy, S, Mahindrakar, AB. Treatment of water using water hyacinth, water lettuce and vetiver grass – a review. Resour Environ. 2012;2:202-215.
Google Scholar | Crossref17. Alemu, T, Lemma, E, Mekonnen, A, Leta, S. Performance of pilot scale anaerobic-SBR system integrated with constructed wetlands for the treatment of tannery wastewater. Environ Process. 2016;3:815-827.
Google Scholar | Crossref18. APHA . Standard Methods for the Examination of Water and Wastewater. 21st ed. American Public Health Association; 2005.
Google Scholar19. Baker, AJM, Mcgranth, RRD, Smith, JAC. Metal hyper accumulator plants: a review of the ecology and physiology of biochemical resource for phytoremediation of metal-polluted soils. In: Phytoremediation of Contaminated Soil and Water. University of Oxford; 2000:85-107.
Google Scholar20. Shanker, AK, Djanaguiraman, M, Sudhagar, R, Chandrashekar, CN, Pathmanabhan, G. Differential antioxidative response of ascorbate glutathione pathway enzymes and metabolites to chromium speciation stress in green gram (Vigna radiata (L.) R. Wilczek. cv CO4) roots. Plant Sci. 2004;166:1035-1043.
Google Scholar | Crossref21. Truong, PN . Vetiver Grass Technology for mine tailings rehabilitation. Paper presented at: Proceedings of Ground and Water Bioengineering for Erosion Control and Slope Stabilisation; 1999; Manila. Accessed May 22, 2021.
Google Scholar22. WHO . Guidelines for Drinking Water Quality. 4th ed. WHO; 2011:678.
Google Scholar23. EEPA (Ethiopian Environmental Protection Authority) . Standards for Industrial Pollution Control in Ethiopia, Part Three: Standards for Industrial Effluents. ESIS Project-US/ETH/99/068/ETHIOPIA, EPA/UNIDO; 2003.
Google Scholar24. Otieno, AO, Karuku, GN, Raude, JM, Koech, O. Effectiveness of the horizontal, vertical and hybrid subsurface flow constructed wetland systems in polishing municipal wastewater. Environ Manag Sustain Dev. 2017;6:158-173.
Google Scholar | Crossref25. Ewemoje, OE, Sangodoyin, AY, Adegoke, AT. On the effect of hydraulic retention time and loading rates on pollutant removal in a pilot scale wetland. J Sustain Dev Stud. 2015;8:342-355.
Google Scholar26. Mathew, M, Rosary, SC, Sebastian, M, Cherian, SM. Effectiveness of vetiver system for the treatment of wastewater from an institutional kitchen. Procedia Technol. 2016;24:203-209.
Google Scholar | Crossref27. García-Valero, A, Martínez-Martínez, S, Faz, Á, et al. Treatment of wastewater from the tannery industry in a constructed wetland planted with Phragmites australis. Agronomy. 2020;10:176.
Google Scholar | Crossref28. Sivakumar, D, Shankar, D, Vijaya, PA, Valarmathi, M. Constructed wetland treatment of textile industry wastewater using aquatic macrophytes. Int J Environ Sci. 2013;3:1223-1232.
Google Scholar29. Kadlec, RH, Wallace, S. Treatment Wetlands. 2nd ed. CRC Press; 2009.
Google Scholar30. Amenu, D . Evaluation of selected wetland plants for the removal efficiency of pollutants from wastewater. Int J Adv Multidiscip Res. 2015;2:63-66.
Google Scholar31. Papaevangelou, V, Gikas, GD, Tsihrintzis, VA. Effect of operational and design parameters on performance of pilot-scale vertical flow constructed wetlands treating university campus wastewater. Water Resour Manag. 2016;30:5875-5899.
Google Scholar | Crossref32. Mini, M, Claramma, R, Mathukutty, S, Sandra, MC. Effectiveness of vetiver system for the treatment of wastewater from an institutional kitchen, international conference on emerging trends in engineering, science and technology (ICETEST-2015). Procedia Technol. 2016;24:203-209.
Google Scholar | Crossref33. Zhai, J, Xiao, J, Rahaman, M, John, Y, Xiao, J. Seasonal variation of nutrient removal in a full-scale artificial aerated hybrid constructed wetland. Water. 2016;8:551.
Google Scholar | Crossref34. Steer, D, Fraser, L, Boddy, J, Seibert, B. Efficiency of small constructed wetlands for subsurface treatment of single-family domestic effluent. Ecol Eng. 2002;18:429-440.
Google Scholar | Crossref35. Mesquita, MC, Albuquerque, A, Amaral, L, Nogueira, R. Seasonal variation of nutrient removal in a full-scale horizontal constructed wetland. Energy Proc. 2017;136:225-232.
Google Scholar | Crossref36. Sultana, MY . 2014) Treatment of Industrial and Agro-Industrial Wastewater Using Constructed Wetlands. PhD dissertation. Laboratory of Environmental Systems, Department of Environmental and Natural Resources Management, School of Engineering, University of Patras, Agrinio, Greece.
Google Scholar37. Skeffington, RA, Shewry, PR, Peterson, PJ. Chromium uptake and transport in barley seedlings (Hordeum vulgare L.). Planta. 1976;132:209-214.
Google Scholar | Crossref | Medline38. Perk, MV . Soil and Water Contamination: From Molecular to Catchments Scale. Routledge; 2006.
Google Scholar

留言 (0)

沒有登入
gif