Page 485 - Fundamentals of Enhanced Oil and Gas Recovery
P. 485
Microbial Enhanced Oil Recovery: Microbiology and Fundamentals 473
[137] H. Kobayashi, et al., Phylogenetic diversity of microbial communities associated with the crude-
oil, large-insoluble-particle and formation-water components of the reservoir fluid from a non-
flooded high-temperature petroleum reservoir, J. Biosci. Bioeng. 113 (2012) 204 210.
[138] K.M. Kaster, et al., Effect of nitrate and nitrite on sulfide production by two thermophilic, sulfate-
reducing enrichments from an oil field in the North Sea, Appl. Microbiol. Biotechnol. 75 (2007)
195 203.
[139] K.M. Kaster, et al., Characterisation of culture-independent and-dependent microbial communities
in a high-temperature offshore chalk petroleum reservoir, Antonie van Leeuwenhoek 96 (2009)
423 439.
[140] M.R. Bonfa ´, et al., Biodegradation of aromatic hydrocarbons by Haloarchaea and their use for the
reduction of the chemical oxygen demand of hypersaline petroleum produced water,
Chemosphere 84 (2011) 1671 1676.
[141] H.-Y. Ren, et al., Comparison of microbial community compositions of injection and production
well samples in a long-term water-flooded petroleum reservoir, PLoS One 6 (2011) e23258.
[142] T. Nazina, et al., Phylogenetic diversity and activity of anaerobic microorganisms of high-
temperature horizons of the Dagang Oilfield (China), Mikrobiologiia 75 (2006) 70 81.
[143] H. Li, et al., Molecular phylogenetic diversity of the microbial community associated with a high-
temperature petroleum reservoir at an offshore oilfield, FEMS Microbiol. Ecol. 60 (2007) 74 84.
[144] H. Kobayashi, et al., Analysis of methane production by microorganisms indigenous to a depleted
oil reservoir for application in microbial enhanced oil recovery, J. Biosci. Bioeng. 113 (2012)
84 87.
[145] C.M. Callbeck, et al., Microbial community succession in a bioreactor modeling a souring low-
temperature oil reservoir subjected to nitrate injection, Appl. Microbiol. Biotechnol. 91 (2011)
799 810.
[146] V.D. Pham, et al., Characterizing microbial diversity in production water from an Alaskan
mesothermic petroleum reservoir with two independent molecular methods, Environ. Microbiol.
11 (2009) 176 187.
[147] A. Grabowski, et al., Microbial diversity in production waters of a low-temperature biodegraded
oil reservoir, FEMS Microbiol. Ecol. 54 (2005) 427 443.
[148] L. Cheng, et al., Methermicoccus shengliensis gen. nov., sp. nov., a thermophilic, methylotrophic
methanogen isolated from oil-production water, and proposal of Methermicoccaceae fam. nov,
Int. J. Syst. Evol. Microbiol. 57 (2007) 2964 2969.
[149] M.L. Miroshnichenko, et al., Isolation and characterization of Thermococcus sibiricus sp.nov.from a
Western Siberia high-temperature oil reservoir, Extremophiles 5 (2001) 85 91.
[150] Y. Takahata, et al., Distribution and physiological characteristics of hyperthermophiles in the
Kubiki oil reservoir in Niigata, Japan, Appl. Environ. Microbiol. 66 (2000) 73 79.
[151] S. Yousaf, et al., Phylogenetic and functional diversity of alkane degrading bacteria associated with
Italian ryegrass (Lolium multiflorum) and Birdsfoot trefoil (Lotus corniculatus) in a petroleum oil-
contaminated environment, J. Hazard. Mater. 184 (2010) 523 532.
[152] L. Cheng, et al., Enrichment and dynamics of novel syntrophs in a methanogenic hexadecane-
degrading culture from a Chinese oilfield, FEMS Microbiol. Ecol. 83 (2013) 757 766.
[153] F. Zhang, et al., Molecular biologic techniques applied to the microbial prospecting of oil and gas
in the Ban 876 gas and oil field in China, Appl. Microbiol. Biotechnol. 86 (2010) 1183 1194.
[154] I. Yumoto, et al., Dietzia psychralcaliphila sp. nov., a novel, facultatively psychrophilic alkaliphile
that grows on hydrocarbons, Int. J. Syst. Evol. Microbiol. 52 (2002) 85 90.
[155] X.-B. Wang, et al., Degradation of petroleum hydrocarbons (C6 C40) and crude oil by a novel
Dietzia strain, Bioresour. Technol. 102 (2011) 7755 7761.
[156] T. Nunoura, et al., Vertical distribution of the subsurface microorganisms in Sagara oil reservoir,
in: AGU 2002 Fall Meeting, American Geophysical Union, San Francisco, California, 2002.
[157] C.T. Hennessee, et al., Polycyclic aromatic hydrocarbon-degrading species isolated from Hawaiian
soils: Mycobacterium crocinum sp. nov., Mycobacterium pallens sp. nov., Mycobacterium rutilum sp. nov.,
Mycobacterium rufum sp. nov. and Mycobacterium aromaticivorans sp. nov, Int. J. Syst. Evol. Microbiol.
59 (2009) 378 387.

