Biomedical Engineering Reference
In-Depth Information
[12]
Tokumura, M., Sekine, M., Yoshinari, M., Znad, H.T. and Kawase, Y. (2007) Photo-
Fenton process for excess sludge disintegration. Process Biochem 42 (4), 627-633.
[13]
Guellil, A., Boualam, M., Quiquampoix, H., Ginestet, P., Audic, J.M. and Block, J.C.
(2001) Hydrolysis of wastewater colloidal organic matter by extra-cellular enzymes
extracted from activated sludge flocs. Water Sci Technol 43 (6), 33-40.
[14]
Rosenberger, S., Witzig, R., Manz, W., Szewzyk, U. and Kraume, M. (1999) Operation
of different membrane bioreactors: experimental results and physiological state of the
micro-organisms. Water Sci Technol 41 (10-11), 269-277.
[15]
Ghyoot, W. and Verstraete, W. (2000) Reduced sludge production in a two-stage
membrane-assisted bioreactor. Water Res 34 (1), 205-215.
[16]
Lee, N.M. and Welander, T. (1996) Use of protozoa and metazoa for decreasing sludge
production in aerobic wastewater treatment. Biotechnol Lett 18 (4), 429-434.
[17]
Lee, N.M. and Welander, T. (1996) Reducing sludge production in aerobic wastewater
treatment through manipulation of the ecosystem. Water Res 30 (8), 1781-1790.
[18]
Ye, F.X. and Li, Y. (2005) Uncoupled metabolism stimulated by chemical uncoupler
and oxic-settling-anaerobic combined process to reduce excess sludge production. Appl
Biochem Biotechnol 127 (3), 187-199.
[19]
Chen, G.H., An, K.J., Saby, S., Brois, E. and Djafer, M. (2003) Possible cause of
excess sludge reduction in an oxic-settling-anaerobic activated sludge process (OSA
process). Water Res 37 (16), 3855-3866.
[20]
Liu, Y. (2000) Effect of chemical uncoupler on the observed growth yield in batch
culture of activated sludge. Water Res 34 (7), 2025-2030.
[21]
Chen, G.H., Mo, H.K. and Liu, Y. (2002) Utilization of a metabolic uncoupler,
3,3',4',5-tetrachlorosalicylanilide (TCS) to reduce sludge growth in activated sludge
culture. Water Res 36 (8), 2077-2083.
[22]
Mason, C.A., Hamer, G. and Bryers, J.D. (1986) The death and lysis of microorganism
in environmental process. FEMS Microbiol Rev 39 (4), 373-401.
[23]
Ye, F.X. and Li, Y. (2005) Reduction of excess sludge production by 3,3',4',5-
tetrachlorosalicylanilide in an activated sludge process. Appl Microbiol Biotechnol
67 (2), 267-274.
[24]
http://www.molecularstation.com/cell/cell-lysis/
[25]
http://www.piercenet.com/Proteomics/browse.cfm?fldID=72F377CD-2581-438C-
9B27-5360226EA128
[26]
Zhao, Y.X., Yin, J., Yu, H.L., Han, N. and Tian, F.J. (2007) Observations on ozone
treatment of excess sludge. Water Sci Technol 56 (9), 167-175.
[27]
Paul, E. and Debellefontaine, H. (2007) Reduction of excess sludge produced by
biological treatment processes: Effect of ozonation on biomass and on sludge. Ozone
Sci Eng 29 (6), 415-427.
[28]
Paul, E., Camacho, P., Sperandio, M. and Ginestet, P. (2006) Technical and
economical evaluation of a thermal, and two oxidative techniques for the reduction of
excess sludge production. Trans IChemE, Part B, Process Saf Environ Protect 84 (B4):
247-252.
[29]
Nagare, H., Tsuno, H., Saktaywin, W. and Soyama, T. (2008) Sludge ozonation and its
application to a new advanced wastewater treatment process with sludge disintegration.
Ozone-Sci Eng 30 (2), 136-144.
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