227
Anaerobic Digestion of Aqueous Waste for Methane and Hydrogen
38. Schink, B., “Energetics of syntrophic cooperation in methanogenic degradation,”
Microbiology Molecular Biology Review, 61, 262–280 (1997).
39. Angelidaki, I., Ellegard, L., and Ahring, B., “A comprehensive model of anaerobic bioconversion of complex substrates to biogas,” Biotechnology Bioengineering, 63, 363–
372 (1999).
40. Angelidaki, I., Ellegaard, L., and Ahring, B.K., “A mathematical model for dynamic
simulation of anaerobic digestion of complex substrates: Focusing on ammonia inhibition,” Biotechnology Bioengineering, 42, 159–166 (1993).
41. Elferink, S., van Lis, R., Heilig, H., Akkermans, A., and Stams, A., “Detection and
quantification of microorganisms in anaerobic bioreactors,” Biodegradation, 9, 169–177
(1998).
42. Karakashev, D., Bastone, D., and Angelidaki, I., “Influence of environmental conditions on methanogenic compositions in anaerobic biogas reactors,” Applied and
Environmental Microbiology, 71, 331–338 (2005).
43. Klocke, M., Nettman, E., Bergmann, I., Mundt, K., Souidiu K., Mumme, I., and
Linke, B., “Characterization of the methanogenic archaea within two-phase biogas reactor systems operated with plant biomass,” Systematic and Applied Microbiology, 31,
190–205 (2008).
44. Yu, Y., Lee, C., Kim, J., and Hwangs, S., “group specific primer and probe sets to detect
methanogenic communities using quantitative real time polymerase chain reaction,”
Biotechnology Bioengineering, 89, 670–679 (2005).
45. Leven, L., Eriksson, A., and Schnurer, A., “Effect of process temperature on bacterial
and archaeal communities in two methanogenic bioreactors treating organic household
waste,” FEMS Microbiology Ecology, 59, 683–693 (2007).
46. Chen, Y., Cheng, J., and Creamer, K., “Inhibition of anaerobic digestion process:
A review,” Bioresource Technology, 99 (10), 4044–4064 (2008).
47. Nielsen, H. and Angelidaki, I., “Strategies for optimizing recovery of biogas process
following ammonia inhibition,” Bioresource Technology, 99, 7995–8001 (2008).
48. Wang, Q., Kuninobu, M., Ogawa, H., and Kato, Y., “Degradation of volatile fatty in
highly efficient anaerobic digestion,” Biomass & Bioenergy, 16, 407–416 (1999).
49. Mosche, M. and Jordening, H., “Comparison of different models of substrate and product inhibition in ammonia digestion,” Water Research, 33, 2545–2554 (1999).
50. Bischoff, M., “Erkenntnisse beim Einsatz von Zusatz-und Hilfsstoffen sowie von
Spurene lementen in Biogasanalangen,” VDI-Ber, 2057, 111–123 (2009).
51. Friedmann, H. and Kobe, J., “Optimierung der Biogasproduktionaus nachwachsenden Rohstoffen durch den Einsatz von Mikronahrstoffen-ein Erfahrungsbericht,” in
Tagungsband 17, Jahrestagung des Fachverbandes Biogas, Nuremberg, Germany,
125–130 (2008).
52. Braun, R., Weiland, P., and Wellinger, A., “Biogas from energy crop digestion,” IEA
Bioenergy Task 37 Energy from Biogas and Landfill Gas IEA, Paris, France (2011).
53. Braun, R., “Potential of co-digestion,” (2002), http://www.novaenergie.ch/iea-bioenergytask37/Dokumente/final.PDF.
54. Braun, R. and Wellinger, A., “Potential for co-digestion,” IEA Bioenergy Task 37 Energy
from Biogas and Landfill Gas (2002).
55. Chen, Y.S., Zuckerman, G.J., and Zering, K., “Applying target costing in the development of marketable and environmentally friendly products from swine waste,” The
Engineering Economics, 53, 156–170 (2008).
56. Kunchikannan, L.K.N.V., Mande, S.P., Kishore, V.V.N., and Jain, K.L., “Coir pith: A potential agro residue for anaerobic digestion,” Energy Sources, Part A, 29, 293–301 (2007).
57. Weichgrebe, D., Urban, I., and Friedrich, K., “Energy and CO 2 reduction potentials
by  anaerobic treatment of wastewater and organic kitchen wastes in consideration of
different climate conditions,” Water Science and Technology, 58, 2, 379–384 (2008).
Précédent

- 265/440

Suivant