Environmental Engineering Reference
In-Depth Information
57. Hubbard, R.K., Newton, G.L., and Ruter, J.M. (2007) A farm-scale test of nitrogen assimi-
lation by vegetated buffer systems receiving swine lagoon effluent by overland flow. Trans.
ASABE , 50(1): 53-64.
58. Cole, S. (1998) The emergence of the treatment wetlands. Environ. Sci. Technol. , 32: 218A.
59. International Water Association (IWA) (2000) Constructed Wetlands for Pollution Control.
Processes, Performance, Design and Operation . IWA Publishing, London.
60. Breen, P.F. (1990) A mass balance method for assessing the potential of artificial wetlands for
wastewater treatment. Wa t e r R e s . , 24(6): 689-697.
61. Kadlec, R.H. and Knight, R.L. (1996) Treatment Wetlands . CRC Press, Boca Raton, FL.
62. Reddy, K., Patrick, W., and Lindau, C. (1989) Nitrification-denitrification at the plant root-
sediment interface in wetlands. Limnol. Oceanogr. , 34: 1004-1013.
63. Surrency, D. (1993) Evaluation of aquatic plants for constructed wetlands. In Constructed
Wetlands for Water Quality Improvement . Moshiri, G. (ed.), CRC Press, Lewis Publishers,
Boca Raton, FL, pp. 349-386.
64. Maine, M.A., Sune, N., Hadad, H., Sanchez, G, and Bonetto, C. (2007) Removal effi-
ciency of a constructed wetland for wastewater treatment according to vegetation dominance.
Chemosphere , 68: 1105-1113.
65. D'Angelo, E., and Reddy, K. (1993) Ammonium oxidation and nitrate reduction in sediment
of a hypereutrophic lake. Soil Sci. Soc. Am. J. , 57: 1156-1163.
66. Matheson, F., Nguyen, M., Cooper, A., Burt, T., and Bull, E. (2002) Fate of 15 N-nitrate
in unplanted, planted and harvested riparian wetland soil microcosms. Ecol. Eng. , 19:
249-264.
67. Bodelier, P., Libochant, A.J., Blom, C., and Laanbrock, H. (1996) Dynamics of nitri-
fication and denitrification in root-oxygenated sediments and adaptation of ammonia
oxidizing bacteria to low-oxygen or anoxic habitats.
Appl.
Environ.
Microbiol , 62:
4100-4107.
68. Sliekers, A., Derwort, N., Campos-Gomez, J., Strous, M., Kuenen, J., and Jetten, M. (2002)
Completely autotrophic nitrogen removal over nitrite in one single reactor. Wa t e r R e s . , 36:
2475-2482.
69. Hubbard, R.K., Ruter, J.M., Newton, G.L., and Davis, J.G. (1999) Nutrient uptake and growth
response of six wetland/riparian plant species receiving swine lagoon effluent. Trans. ASAE ,
42(5): 1331-1341.
70. Snow, A.M. and Ghaley, A.E. (2008a) Assessment of hydroponically grown macrophytes for
their suitability as fish feed. Am. J. Biochem. Biotechnol. , 4(1): 43-56.
71. Snow, A.M. and Ghaly, A.E. (2008b) Use of barley for the purification of aquaculture
wastewater in a hydroponics system. Am. J. Biochem. Biotechnol. , 4(2): 89-102.
72. Snow, A.M. and Ghaly, A.E. (2008c) A comparative study of the purification of aquacul-
ture wastewater using water hyacinth, water lettuce and parrot's feather. Am.J.Biochem.
Biotechnol. , 5(4): 440-453.
73. Jo, J.Y., Ma, J.S., and Kim, I.B. (2002) Comparisons of four commonly used aquatic plants
for removing nitrogen nutrients in the intensive bioproduction Korean (IBK) recirculat-
ing aquaculture system. Proceedings of the 3rd International Conference on Recirculating
Aquaculture , Roanoke, VA, 20-23 Jul 2000.
74. Wen, L. and Recknagel, F. (2002) In situ removal of dissolved phosphorus in irrigation
drainage water by planted floats: preliminary results from growth chamber experiment. Agric.
Ecosyst. Environ. , 90(1): 9-15.
75. DeBusk, T.A., Williams, L.D., and Ryther, J.H. (1984) Removal of nitrogen and phospho-
rus from wastewater in a water hyacinth based treatment system. J. Environ. Qual. , 12(2):
257-262.
76. Nuttall, P.M. (1985) Uptake of phosphorus and nitrogen by Myriophyllum aquaticum
(Velloza) Verd. Growing in a wastewater treatment system. Aust.J.Mar.FreshwaterRes. ,
36(4): 493-507.
77. John, C.K. (1985) Treatment of Agro-industrial wastes using water hyacinth. Water Sci. Tech. ,
17(4-5): 781-790.
Search WWH ::




Custom Search