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74. Sarma S, Dubey VK, Moholkar VS (2016) Kinetic and thermodynamic analysis (with
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genetically engineered Escherichia coli HW2 strain. J Chem Eng Chin Univ 5:1133–1137
77. Zhang D, Xiao N, Mahbubani KT, del Rio-Chanona EA, Slater NKH, Vassiliadis VS (2015)
Bioprocess modelling of biohydrogen production by rhodopseudomonas palustris: model
development and effects of operating conditions on hydrogen yield and glycerol conversion
efficiency. Chem Eng Sci 130:68–78
78. Li YF, Qiu YQ, Zhang X, Zhu ML, Tan WS (2019) Strain screening and optimization of
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Water Poll Control Fed 39:178–192
58. McHugh S, Carton M, Mahony T, O’Flaherty V (2003) Methanogenic population structure in
a variety of anaerobic bioreactors. FEMS Microbiol Lett 219(2):297–304
59. Hallenbeck PC, Benemann JR (2002) Biological hydrogen production; fundamentals and
limiting processes. Int J Hydrog Energy 27(11–12):1185–1193
60. Xu KW, Liu H, Li XF, Chen JA, Wang AJ (2010) Typical methanogenic inhibitors can
considerably alter bacterial populations and affect the interaction between fatty acid degraders
and homoacetogens. Appl Microbiol Biotechnol 87(6):2267–2279
61. Lyberatos G, Skiadas I (1999) Modelling of anaerobic digestion–a review. Global Nest Int J 1
(2):63–76
62. Das D, Veziroglu TN (2001) Hydrogen production by biological processes: a survey of
literature. Int J Hydrog Energy 26(1):13–28
63. Nandi R, Sengupta S (1998) Microbial production of hydrogen: an overview. Crit Rev
Microbiol 24(1):61–84
64. Levin DB, Pitt L, Love M (2004) Biohydrogen production: prospects and limitations to
practical application. Int J Hydrog Energy 29(2):173–185
65. Ueno Y, Kawai T, Sato S, Otsuka S, Morimoto M (1995) Biological production of hydrogen
from cellulose by natural anaerobic microflora. J Ferment Bioeng 79(4):395–397
66. Brosseau JD, Zajic JE (1982) Hydrogen-gas production with citrobacter-intermedius and
clostridium-pasteurianum. J Chem Technol Biotechnol 32(3):496–502
67. Lay JJ, Lee YJ, Noike T (1999) Feasibility of biological hydrogen production from organic
fraction of municipal solid waste. Water Res 33(11):2579–2586
68. Fang HHP, Zhang T, Liu H (2002) Microbial diversity of a mesophilic hydrogen-producing
sludge. Appl Microbiol Biotechnol 58(1):112–118
69. Kapdan IK, Kargi F (2006) Bio-hydrogen production from waste materials. Enzyme Microb
Technol 38(5):569–582
70. Kumar N, Das D (2001) Continuous hydrogen production by immobilized enterobacter
cloacae iit-bt 08 using lignocellulosic materials as solid matrices. Enzyme Microb Technol
29(4–5):280–287
71. Oh SE, Van Ginkel S, Logan BE (2003) The relative effectiveness of pH control and heat
treatment for enhancing biohydrogen gas production. Environ Sci Technol 37(22):5186–5190
72. Yu HQ, Fang HHP (2001) Acidification of mid- and high-strength dairy wastewaters. Water
Res 35(15):3697–3705
73. Chookaew T, O-Thong S, Prasertsan P (2014) Biohydrogen production from crude glycerol by
immobilized klebsiella sp tr17 in a UASB reactor and bacterial quantification under non-sterile
conditions. Int J Hydrog Energy 39(18):9580–9587
74. Sarma S, Dubey VK, Moholkar VS (2016) Kinetic and thermodynamic analysis (with
statistical optimization) of hydrogen production from crude glycerol using clostridium
pasteurianum. Int J Hydrog Energy 41(44):19972–19989
75. Maru BT, Bielen AAM, Kengen SWM, Constanti M, Medina F, International, J.P (2012)
Biohydrogen production from glycerol using thermotoga spp. In: Whec 2012 conference
proceedings - 19th world hydrogen energy conference 2012
76. Liu Q, Xiong D, Hong-Bo H, Zhang X (2015) Hydrogen production from glycerol using a
genetically engineered Escherichia coli HW2 strain. J Chem Eng Chin Univ 5:1133–1137
77. Zhang D, Xiao N, Mahbubani KT, del Rio-Chanona EA, Slater NKH, Vassiliadis VS (2015)
Bioprocess modelling of biohydrogen production by rhodopseudomonas palustris: model
development and effects of operating conditions on hydrogen yield and glycerol conversion
efficiency. Chem Eng Sci 130:68–78
78. Li YF, Qiu YQ, Zhang X, Zhu ML, Tan WS (2019) Strain screening and optimization of
biohydrogen production by Enterobacter aerogenes EB-06 from glycerol fermentation.
Bioresour Bioprocess 6:15
360
A. Hajizadeh et al.
