Treatment of spent metalworking fluids.
暂无分享,去创建一个
[1] Christopher J. Knowles,et al. Identification and characterisation of bacterial populations of an in-use metal-working fluid by phenotypic and genotypic methodology , 2001 .
[2] C. Kaplan,et al. Bacterial Succession in a Petroleum Land Treatment Unit , 2004, Applied and Environmental Microbiology.
[3] Mark Dunham. Öffshore solution for corrosion management , 2001 .
[4] James E. Alleman,et al. Thermophilic aerobic biological wastewater treatment , 1999 .
[5] T. Viraraghavan,et al. Treatment of Oily Waters Using Peat , 1990 .
[6] C. Nakatsu,et al. Stability of the bacterial communities supported by a seven-stage biological process treating pharmaceutical wastewater as revealed by PCR-DGGE. , 2002, Water research.
[7] A. Konopka,et al. Thermophilic Aerobic Wastewater Treatment in Continuous-Flow Bioreactors , 2000 .
[8] A. Konopka,et al. Bacterial function and community structure in reactors treating biopolymers and surfactants at mesophilic and thermophilic temperatures , 1999, Journal of Industrial Microbiology and Biotechnology.
[9] Rossmoore Hw. Antimicrobial agents for water-based metalworking fluids. , 1981 .
[10] I. Thompson,et al. Effects of pH amendment on metal working fluid wastewater biological treatment using a defined bacterial consortium. , 2005, Biotechnology and bioengineering.
[11] A. Konopka,et al. Thermophilic aerobic treatment of a synthetic wastewater in a membrane-coupled bioreactor , 2001, Journal of Industrial Microbiology and Biotechnology.
[12] B. Kim,et al. Aerobic treatment of metal-cutting-fluid wastewater , 1992 .
[13] H. S. Fogler,et al. Elements of Chemical Reaction Engineering , 1986 .
[14] T Sun,et al. Phytodegradation of extra heavy oil-based drill cuttings using mature reed wetland: an in situ pilot study. , 2004, Environment international.
[15] Nandakishore Rajagopalan,et al. Impact of environmental contaminants on machining properties of metalworking fluids , 2004 .
[16] J. M. Burke,et al. Waste treatment of metalworking fluids, a comparison of three common methods , 1991 .
[17] B. Ahring,et al. Formation of metabolites during biodegradation of linear alkylbenzene sulfonate in an upflow anaerobic sludge bed reactor under thermophilic conditions. , 2002, Biotechnology and bioengineering.
[18] R. H. Olsen,et al. Common Components of Industrial Metal-Working Fluids as Sources of Carbon for Bacterial Growth , 1986, Applied and environmental microbiology.
[19] C. Nakatsu,et al. Aerobic biological treatment of a pharmaceutical wastewater: effect of temperature on cod removal and bacterial community development. , 2001, Water research.
[20] K. Schleifer,et al. Phylogenetic identification and in situ detection of individual microbial cells without cultivation. , 1995, Microbiological reviews.
[21] Anhuai Lu,et al. Crude-oil-degrading thermophilic bacterium isolated from an oil field. , 2004, Canadian journal of microbiology.
[22] R. Wallace,,et al. Mycobacterial contamination of metalworking fluids: involvement of a possible new taxon of rapidly growing mycobacteria. , 2000, AIHAJ : a journal for the science of occupational and environmental health and safety.
[23] R. Park. Mortality at an Automotive Engine Foundry and Machining Complex , 2001, Journal of occupational and environmental medicine.
[24] P. J. Large,et al. The degradation of sodium O,O‐diethyl dithiophosphate by bacteria from metalworking fluids , 1999, Letters in applied microbiology.
[25] J. Yadav,et al. Real-time PCR assays for genus-specific detection and quantification of culturable and non-culturable mycobacteria and pseudomonads in metalworking fluids. , 2004, Molecular and cellular probes.
[26] C. A. Baker,et al. Predominant Bacteria in an Activated Sludge Reactor for the Degradation of Cutting Fluids , 1983, Applied and environmental microbiology.
[27] J. Rintala,et al. Comparison of laboratory-scale thermophilic biofilm and activated sludge processes integrated with a mesophilic activated sludge process. , 2003, Bioresource technology.
[28] L. Edebo,et al. Selective toxicity of alkanolamines , 1990, Antimicrobial Agents and Chemotherapy.
[29] T. E. Cloete,et al. Microbial community analysis : the key to the design of biological wastewater treatment systems , 1997 .
[30] M. Abraham,et al. An economic evaluation of catalytic supercritical water oxidation: Comparison with alternative waste treatment technologies , 1998 .
[31] L J Fine,et al. Cancer risks among workers exposed to metalworking fluids: a systematic review. , 1998, American journal of industrial medicine.
[32] A. Konopka,et al. Effects of elevated temperature on bacterial community structure and function in bioreactors treating a synthetic wastewater , 2000, Journal of Industrial Microbiology and Biotechnology.
[33] J. R. Portela,et al. Elimination of cutting oil wastes by promoted hydrothermal oxidation. , 2001, Journal of hazardous materials.
[34] B. Kim,et al. Anaerobic removal of COD in metal-cutting-fluid wastewater , 1992 .
[35] Wilbert J. Olds. Lubricants, cutting fluids, and coolants , 1973 .
[36] Philippe M. Chazal. Pollution of modern metalworking fluids containing biocides by pathogenic bacteria in France , 2005, European Journal of Epidemiology.
[37] C. Nakatsu,et al. Phylogenetic Analysis of Bacterial Communities in Mesophilic and Thermophilic Bioreactors Treating Pharmaceutical Wastewater , 2000, Applied and Environmental Microbiology.
[38] A. Whiteley,et al. Bacterial community structure and function in a metal-working fluid. , 2003, Environmental microbiology.
[39] D. Deepak,et al. Biodegradation kinetics of metal cutting oil: evaluation of kinetic parameters , 1994 .
[40] I. Thompson,et al. Selection of microbial consortia for treating metal-working fluids , 2002, Journal of Industrial Microbiology and Biotechnology.
[41] A. Whiteley,et al. Temporal dynamics and degradation activity of an bacterial inoculum for treating waste metal-working fluid. , 2004, Environmental microbiology.
[42] David L. Johnson,et al. UV disinfection of soluble oil metalworking fluids. , 2002, AIHA journal : a journal for the science of occupational and environmental health and safety.
[43] F. Lipari,et al. Biological removal of organic nitrogen and fatty acids from metal-cutting-fluid wastewater , 1994 .
[44] A. Whiteley,et al. Bioaugmentation Strategies for Remediating Mixed Chemical Effluents , 2008, Biotechnology progress.
[45] Schreyer,et al. Effects of stratification in a fluidized bed bioreactor during treatment of metalworking wastewater , 1999, Biotechnology and bioengineering.
[46] R. Findlay,et al. A pilot study for monitoring changes in the microbiological component of metalworking fluids as a function of time and use in the system. , 1999, American Industrial Hygiene Association journal.
[47] J. Geier,et al. Patch testing with components of water‐based metalworking fluids , 2003, Contact dermatitis.
[48] D. Couillard,et al. Slaughterhouse effluent treatment by thermophilic aerobic process , 1989 .
[49] B. Gruvberger,et al. Occupational allergic contact dermatitis from alkanolamineborates in metalworking fluids , 1995, Contact dermatitis.
[50] E. Falsen,et al. Microbial growth and accumulation in industrial metal-working fluids , 1989, Applied and environmental microbiology.