Development of a model for assessing methane formation in rising main sewers.
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Jurg Keller | Zhiguo Yuan | Albert Guisasola | Keshab R Sharma | Zhiguo Yuan | J. Keller | K. Sharma | A. Guisasola
[1] Oriol Gutierrez,et al. Evaluation of oxygen injection as a means of controlling sulfide production in a sewer system. , 2008, Water research.
[2] Jurg Keller,et al. Dynamics and dynamic modelling of H2S production in sewer systems. , 2008, Water research.
[3] Jurg Keller,et al. Methane formation in sewer systems. , 2008, Water research.
[4] Irini Angelidaki,et al. Acetate Oxidation Is the Dominant Methanogenic Pathway from Acetate in the Absence of Methanosaetaceae , 2006, Applied and Environmental Microbiology.
[5] Thorkild Hvitved-Jacobsen,et al. Kinetics and Stoichiometry of Aerobic Sulfide Oxidation in Wastewater from Sewers—Effects of pH and Temperature , 2006, Water environment research : a research publication of the Water Environment Federation.
[6] Robbert Kleerebezem,et al. Modeling product formation in anaerobic mixed culture fermentations , 2006, Biotechnology and bioengineering.
[7] Juan A. Baeza,et al. The Influence of Experimental Data Quality and Quantity on Parameter Estimation Accuracy , 2006 .
[8] Zhiguo Yuan,et al. Preservation and simultaneous analysis of relevant soluble sulfur species in sewage samples , 2006 .
[9] S. Khanal,et al. Effect of High Influent Sulfate on Anaerobic Wastewater Treatment , 2005, Water environment research : a research publication of the Water Environment Federation.
[10] Thorkild Hvitved-Jacobsen,et al. Kinetics and stoichiometry of sulfide oxidation by sewer biofilms. , 2005, Water research.
[11] J Vollertsen,et al. Simulation of sulfide buildup in wastewater and atmosphere of sewer networks. , 2005, Water science and technology : a journal of the International Association on Water Pollution Research.
[12] T. Hvitved-Jacobsen,et al. Model concept for nitrate and nitrite utilization during anoxic transformation in the bulk water phase of municipal wastewater under sewer conditions. , 2005, Water Science and Technology.
[13] K. Sahrawat,et al. Terminal Electron Acceptors for Controlling Methane Emissions from Submerged Rice Soils , 2004 .
[14] James M. Tiedje,et al. Competition between sulfate-reducing and methanogenic bacteria for H2 under resting and growing conditions , 2004, Archives of Microbiology.
[15] P Krebs,et al. Integral and unified model for the sewer and wastewater treatment plant focusing on transformations. , 2003, Water science and technology : a journal of the International Association on Water Pollution Research.
[16] J Vollertsen,et al. Introducing the emission process of hydrogen sulfide to a sewer process model (WATS). , 2003, Water science and technology : a journal of the International Association on Water Pollution Research.
[17] J Matos,et al. Modelling in-sewer pollutant degradation processes in the Costa do Estoril sewer system. , 2003, Water science and technology : a journal of the International Association on Water Pollution Research.
[18] Mogens Henze,et al. Activated sludge models ASM1, ASM2, ASM2d and ASM3 , 2015 .
[19] G. Gudjonsson,et al. Dissolved oxygen in gravity sewers--measurement and simulation. , 2002, Water science and technology : a journal of the International Association on Water Pollution Research.
[20] T. Hvitved-Jacobsen,et al. Sewer Processes: Microbial and Chemical Process Engineering of Sewer Networks , 2001 .
[21] A. Stams,et al. Denitrification with methane as electron donor in oxygen-limited bioreactors , 2000, Applied Microbiology and Biotechnology.
[22] Thorkild Hvitved-Jacobsen,et al. An integrated aerobic/anaerobic approach for prediction of sulfide formation in sewers , 2000 .
[23] K. Bronson,et al. A sampling technique for the determination of dissolved methane in soil solution , 2000 .
[24] Sergey Kalyuzhnyi,et al. Mathematical modelling of competition between sulphate reduction and methanogenesis in anaerobic reactors , 1998 .
[25] F. Omil,et al. Long-term competition between sulfate reducing and methanogenic bacteria in UASB reactors treating volatile fatty acids. , 1998, Biotechnology and bioengineering.
[26] K. Takata,et al. Atmospheric methane: Sources, sinks, and strategies for reducing agricultural emissions , 1997 .
[27] Sanjoy K. Bhattacharya,et al. Interaction between acetate fed sulfate reducers and methanogens , 1996 .
[28] D A Stahl,et al. Competition and coexistence of sulfate-reducing and methanogenic populations in anaerobic biofilms , 1996, Applied and environmental microbiology.
[29] F. Brockman,et al. Isolation and characterization of RNA from low-biomass deep-subsurface sediments , 1995, Applied and environmental microbiology.
[30] Joseph R. V. Flora,et al. Methanogenesis and sulfate reduction in chemostats—I. Kinetic studies and experiments , 1994 .
[31] Arthur G. Boon,et al. Septicity in sewers: causes, consequences and containment , 1992 .
[32] Mustafa Öztürk. Conversion of acetate, propionate and butyrate to methane under thermophilic conditions in batch reactors , 1991 .
[33] Thorkild Hvitved-Jacobsen,et al. Effect of Sulfate and Organic Matter on the Hydrogen Sulfide Formation in Biofilms of Filled Sanitary Sewers , 1988 .
[34] A. Rinzema,et al. Anaerobic treatment of sulfate containing wastewater. , 1988 .
[35] A. E. Greenberg,et al. Standard methods for the examination of water and wastewater : supplement to the sixteenth edition , 1988 .
[36] Motoyuki Yoda,et al. Long term competition between sulfate-reducing and methane-producing bacteria for acetate in anaerobic biofilm , 1987 .
[37] Willy Verstraete,et al. Sulfate Reduction Relative to Methane Production in High-Rate Anaerobic Digestion: Technical Aspects , 1986, Applied and environmental microbiology.
[38] Ronald S. Oremland,et al. Methanogenesis and Sulfate Reduction: Competitive and Noncompetitive Substrates in Estuarine Sediments , 1982 .
[39] B. B. J�rgensen,et al. Volatile Fatty Acids and Hydrogen as Substrates for Sulfate-Reducing Bacteria in Anaerobic Marine Sediment , 1981, Applied and environmental microbiology.