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Removal of nitrates from wastewater using pond bottom soil

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The possibility of the final treatment of mine water from chemical leaching has been investigated. Despite water purification, high nitrate levels remain in these waters and must be removed. The main requirements are the lowest economic, operating and staffing levels. These requirements are best achieved by the removal of nitrates using biological methods, in our case using the pond bottom soil. Experiments were carried out in a batch mode. The effect of the environment on the denitrification process, the influence of the type and amount of the organic substrate and basic parameters of the denitrification such as redox potential, pH and dissolved oxygen were studied.
Rocznik
Strony
145—154
Opis fizyczny
Bibliogr. 25 poz., tab., rys.
Twórcy
autor
  • Department of Environmental and Chemical Engineering, Faculty of Chemical Technology, University of Pardubice, Studentská 95, Pardubice; 532 10, Czech Republic
autor
Bibliografia
  • [1] RADOJEVIĆ M., BASHKIN V.N., Practical Environmental Analysis, 2nd Ed., Royal Society of Chemistry, London 2006.
  • [2] DAVIDSON E.A., SEITZINGER S., The enigma of progress in denitrification research, Ecol. Appl., 2006, 16 (6), 2057.
  • [3] SCRAGG A., Environmental biotechnology, 2nd Ed., Oxford University Press, Oxford 2005.
  • [4] GRADY C.P.L., DAIGGER G.T., LOVE N.G., FILIPE C.D.M., Biological wastewater treatment, 3rd Ed., Taylor and Francis Group, Boca Raton 2011.
  • [5] ROZKOŠNÝ M., KRIŠKA M., ŠÁLEK J., Possibilities of using natural methods of wastewater treatment and assessment of the impact of pre-treatment, Water Management, 2010, 5, 116 (in Czech).
  • [6] POLPRASERT C., KITTIPONGVISES S., Constructed wetlands and waste stabilization ponds, [in:] P. Wilderer (Ed.), Treatise on Water Science, Elsevier, UK, 2011, 277–299.
  • [7] RIJN J., The potential for integrated biological treatment systems in recirculating fish culture. A re-view, Aquaculture, 1996, 139, 181.
  • [8] CRAB R., AVNIMELECH Y., DEFOIRDT T., BOSSIER P., VERSTRAETE W., Nitrogen removal techniques in aquaculture for a sustainable production, Aquaculture, 2007, 270, 1.
  • [9] EFFENBERGER M., DUROŇ R., Stabilization ponds for treatment and secondary treatment of waste- water, Water Research Institute, Praha 1984 (in Czech).
  • [10] AMENGUAL-MORRO C., NIELL G.M., MARTÍNEZ-TABERNER A., Phytoplankton as bioindicator for waste stabilization ponds, J. Environ. Manage., 2012, 95, S71.
  • [11] MORIARTY D.J.W., The role of microorganisms in aquaculture ponds, Aquaculture, 1997, 151, 333.
  • [12] HALLING-SØRENSEN B., JØRGENSEN S.E., The removal of nitrogen compounds from wastewater, Elsevier, Amsterdam 1993.
  • [13] LAI P.C.C., LAM P.K.S., Major pathways for nitrogen removal in waste water stabilization ponds, Water, Air, Soil Pollut., 1997, 94, 125.
  • [14] HILL M.J., Nitrates and Nitrites in Food and Water, Woodhead Publishing, 1996.
  • [15] HARGREAVES J.A., Nitrogen biogeochemistry of aquaculture ponds, Aquaculture, 1998, 166, 181.
  • [16] MLEJNSKÁ J., ROZKOŠNÝ M., BAUDIŠOVÁ D., VÁŇA M., WANNER F., KUČERA J., Extensive types of wastewater treatment, T.G. Masaryk Water Research Institute, Praha 2009 (in Czech).
  • [17] ERBANOVÁ E., PALARČÍK J., SLEZÁK M., MIKULÁŠEK P., Removing of nitrates from waste water by using pond culture, Procedia Eng., 2012, 42, 1552.
  • [18] GERARDI M.H., Nitrification and denitrification in the activated sludge process, Wiley, New York 2002.
  • [19] ADAV S.S., LEE D.J., LAI J.Y., Enhanced biological denitrification of high concentration of nitrite with supplementary carbon source, Appl. Microbiol. Biotechnol., 2010, 85, 773.
  • [20] YANG X., WANG S., ZHOU L., Effect of carbon source, C/N ratio, nitrate and dissolved oxygen concentration on nitrite and ammonium production from denitrification process by Pseudomonas stutzeri D6, Bioresour. Technol., 2012, 104, 65.
  • [21] GE S., PENG Y., WANG S., LU C., CAO X., ZHU Y., Nitrite accumulation under constant temperature in anoxic denitrification process: The effects of carbon sources and COD/NO3-N, Bioresour. Technol., 2012, 114, 137.
  • [22] CHIU Y., CHUNG M., Determination of optimal COD/nitrate ratio for biological denitrification, Int. Biodeterior. Biodegrad., 2003, 51, 43.
  • [23] NANCHARAIAH Y.V., VENUGOPALAN V.P., Denitrification of synthetic concentrated nitrate wastes by aerobic granular sludge under anoxic conditions, Chemosphere, 2011, 85, 638.
  • [24] ZHOU A., TAO T., WEI X., LIAO Z., ZHANG T.C., Effects of operating conditions on performance of a decentralized MBR system for wastewater reclamation, [in:] T.C. Zhang, R.Y. Surampalli, S. Vigneswaran, R.D. Tyagi, S.L. Ong, C.M. Kao (Eds.), Membrane technology and environmental applications, ASCE, 2012, 413–435.
  • [25] GERARDI M.H., Wastewater bacteria, Wiley, New Jersey 2006
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e7fead05-fd6c-48b3-81dd-81a610c77ae1
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