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Transcript of References - INFLIBNETshodhganga.inflibnet.ac.in/bitstream/10603/34137/15/15... · concentrations...

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References:

• (Source: For 1996 Results, NEERI 1996: For 2005 Results, http://www.cpcb.nic.in.

• (Source: http://globalis.gvu.unu.edu/.)

• Abreu Angela A, Karakashev Dimitar, Angelidaki Irini, Sousa Diana Z and Alves M Madalena

(2012). Biohydrogen production from arabinose and glucose using extreme thermophilic

anaerobic mixed cultures. Biotechnology for Biofuels 5:6. doi: 10.1186/1754-6834-5-6.

• Afsar N., Ozgur E., Gurgan M., Akkose S, Yucel M., Gunduz U et al. (2011). Hydrogen

productivity of photosynthetic bacteria on dark fermenter effluent of potato steam peels

hydrolysate. Int. J. Hydrogen Energy 36, 432-8.

• Agdag ON, Sponza DT (2007). Co digestion of mixed industrial sludge with municipal solid

wastes in anaerobic simulated landfilling bioreactors. J. Hazardous Material 140, 75-85.

• Ahammad S. Z, Gomes J, Sreekrishnan TR (2008). Wastewater treatment for production of H2S-

free biogas. J Chem Technol Biotechnol 83(8), 1163-1169.

• Akutsu Y, Lee DY, Chi YZ, Li YY, Harada H, Yu HQ (2009). Thermophilic fermentative

hydrogen production from starch wastewater with bio granules. Int. J. of Hydrogen Energy 34,

5061-5071.

• Alalayah WM., Kalil MS., Kadhum AA., H., Jahin IM., Alanj NM (2008). Hydrogen production

using clostridium saccharoperbutyl acetonicum N 1-4(ATCC 13564). Int. J. Hydrogen Energy

33, 7392-96.

• Alkaya E, Demire Goksel N (2011). Anaerobic acidification of sugar beet processing wastes:

Effect of operational parameters. Biomass and Bioenergy 35(1), 32-39.

• Alvarez JA., Otero L., Lema JM (2010). A methodology for optimizing feed composition for

anaerobic co-digestion of agro-industrial wastes. Bioresource Technology 101, 1153-58.

• Alvira, P., Tomas Pejo, E., Ballesteros, M. and Negro, M. (2010). Pretreatment technologies for

an efficient bioethanol production process based on enzymatic hydrolysis: A review.

Bioresource Technology 101(13), 4851-4861.

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dissimilarities between mesophilic and thermophilic anaerobic digestion of waste activated

sludge. Int. J. Environment Resources 5(2), 333-342.

• Amorim De ELC, Sarder LT, Silva EL (2102). Effect of substrate concentration on dark

fermentation hydrogen production using an anaerobic fluidized bed reactor. Appl Biochem

Biotechnol 166(5), 1248-63.

• Amutha KB., Murugesan AG(2013). Biohydrogen production using corn stalk employing

Bacillus Licheniformis MSU AGM 2 Strain. Renewable Energy 50, 621–27.

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hazard to environment everyman’s science, The Indian Science Congress Association and

Management in Allahabad, India. Journal of Waste Management 27 (4), 490–496.

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fermentation of ground wheat solution .Int. J. Hydrogen Energy 34, 4305-11.

• Armor JN. (2005). Catalysis and the hydrogen economy. Catalysis Letters 101(3-4), 131-135

• Arooj MF., Han SK., Kim SH., Kim DH., Shin HS (2008). Continuous biohydrogen production

in a CSTR using starch as a substrate. Int. J. Hydrogen Energy 33, 3289-94.

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