390
Views
14
CrossRef citations to date
0
Altmetric
Review Article

Mesophilic anaerobic digestion: first option for waste treatment in tropical regions

, &
Pages 259-282 | Received 07 Apr 2009, Accepted 27 Mar 2010, Published online: 01 Jun 2010

References

  • Abraham ER, Ramachandran S, Ramalingam V. 2007. Biogas: can it be an important source of energy? Env Sci Pollut Res 14: 67–71.
  • Acharya BK, Mohana S, Madamwar D. 2008. Anaerobic treatment of distillery spent wash—a study on up-flow anaerobic fixed film bioreactor. Biores Technol 99: 4621–4626.
  • Al-Masri MR. 2001. Changes in biogas production due to different ratios of some animal and agricultural wastes. Biores Technol 77: 97–100.
  • Alvarez R, Liden G. 2008. The effect of temperature variation on bio-methanation at high altitude. Biores Technol 99: 7278–7284.
  • Alvarez R, Villca S, Linden G. 2006. Biogas production from Ilama and cow manure at high altitude. Biomass Bioener 30: 66–75.
  • Antonopoulou G, Gavala HN, Skiadas IV, Angelopoulos K, Lyberatos G. 2008. Bio-fuels generation from sweet sorghum: fermentative hydrogen production and anaerobic digestion of the remaining biomass. Biores Technol 99: 110–119.
  • Anunputtikul W, Rodtong S. 2004. Laboratory Scale Experiments for Biogas Production from Cassava Tubers. The Joint International Conf. on “Sustainable Energy and Environment (SEE)” (pp. 238–243). Hua Hin, Thailand.
  • Appels L, Baeyens J, Degreve J, Dewil R. 2008. Principles and potential of the anaerobic digestion of waste-activated sludge. Prog Energy Combust Sci 34: 755–781.
  • Atuanya EI, Aigbirior M. 2002. Mesophilic biomethanation and treatment of poultry waste-water using pilot scale UASB reactor. Environ Monit Assess 77: 139–147.
  • Bagi Z, Acs N, Balint B, Horvath L, Dobo K, Perei KR, Rakhely G, Kovacs KL. 2007. Biotechnological intensification of biogas production. Appl Microbiol Biotechnol 76: 473–482.
  • Balch WE, Fox GE, Magrum LJ, Woese CR, Wolfe RS. 1979. Methanogens: reevaluation of a unique biological group. Microbiol Rev 43: 260–296.
  • Banu JR, Kaliappan S. 2007. Treatment of tannery wastewater using hybrid up-flow anaerobic sludge blanket reactor. J Environ Eng Sci 6: 415–421.
  • Basri MF, Yacob S, Hassan MA, Shirai Y, Wakisaka M, Zakaria MR, Phang LY. 2010. Improved biogas production from palm oil mill effluent by a called-down anaerobic treatment process. World J Microbiol Biotechnol 26: 505–514.
  • Biavati B, Vasta M, Ferry JG. 1988. Isolation and characterization of Methanosphaera cuniculi sp. nov. Appl Environ Microbiol 54: 768–771.
  • Biogas Promotion—India. 2006. http://www.hedon.info/docs/20060406_Biogas_promotion_India.pdf. Accessed March 15, 2009.
  • Bisaria R, Vasudevan P, Bisaria VS. 1990. Utilization of spent agro-residues from mushroom cultivation for biogas production. Appl Microbiol Biotechnol 33: 607–609.
  • Bojra R, Martin A, Rincon B, Raposa F. 2003. Kinetics for substrate utilization and methane production during the mesophilic anaerobic digestion of two phases olive pomace (TPOP). J Agric Food Chem 51: 3390–3395.
  • Boone DR. 2001. Genus V. Methanolobus Konig and Stetter 1983, 439VP. In Boone DR, Castenholz RW, Garrity GM, eds. Bergey’s Manual of Systematic Bacteriology, 2nd edn, Vol. 1 ( pp. 283–287). New York: Springer-Verlag.
  • Boone DR. 1987. Replacement of the type strain of Methanobacterium formicicum and reinstatement of Methanobacterium bryantii sp. nov., nom. rev. (ex Balch and Wolfe, 1981) with M.o.H. (DSM 863) as the type strain. Int J Syst Bacteriol 37: 172–173.
  • Boone DR, Baker CC. 2001. Genus VI. Methanosalsum gen. nov. In Boone DR, Castenholz RW, Garrity GM, eds. Bergey’s Manual of Systematic Bacteriology, 2nd edn, Vol. 1 ( pp. 287–289). New York: Springer-Verlag.
  • Boone DR, Mathrani IM, Liu Y, Menaia JAGF, Mah RA, Boone JE. 1993. Isolation and characterization of Methanohalophilus portucalensis sp. nov. and DNA re-association study of the genus Methanohalophilus. Int J Syst Bacteriol 43: 430–437.
  • Bouallagui H, Cheikh RB, Marouani L, Hamdi M. 2003. Mesophilic biogas production from fruit and vegetable waste in a tubular digester. Biores Technol 86: 85–89.
  • Bouallagui H, Rachdi B, Gannoun H, Hamdi M. 2009. Mesophilic and thermophilic anaerobic co-digestion of abattoir wastewater and fruit and vegetable waste in anaerobic sequencing batch reactors. Biodegradation 20: 401–409.
  • Bouallagui H, Torrijos M, Godon JJ, Moletta R, Cheikh RB, Touhamii Y, Delgenes JP, Hamdi M. 2004. Microbial monitoring by molecular tods of a two-phase anaerobic bioreactor treating fruit and vegetable wastes. Biotechnol Lett 26: 857–862.
  • Bouskova A, Dohanyos M, Schmidt JE, Angelidaki I. 2005. Strategies for changing temperature from mesophilic to thermophilic conditions in anaerobic CSTR reactors treating sewage sludge. Water Res 39: 1481–1488.
  • Braun RB, Grasmug M. 2003. Co-digestion of proteinaceous industrial waste. Appl Biochem Biotechnol 109: 139–153.
  • British BioGen. 2003. Anaerobic Digestion of Farm and Food Processing Residues (Good Practice Guidelines). http://www.britishbiogen.co.uk/gpg/adgpg/adgpg.pdf
  • Brown DS, Mehrotra S, Petrasek AC, Eralp AE, Bishop DF, Springer AM. 1985. Proc. Sem. Anaerobic Treatment of Sewage (p. 205). Report No. Env. E. 88-85-5, Dept. Civil Engg. U. Mass/Amherst.
  • Bryant MP, Boone DR. 1987a. Isolation and characterization of Methanobacterium formicicum MF. Int J Syst Bacteriol 37: 171–172.
  • Bryant MP, Boone DR. 1987b. Amended description of strain MST (DSM 800T), the type strain of Methanosarcina barkeri. Int J Syst Bacteriol 37: 169–170.
  • Burke D. 2001. Producing Exceptional Quality Bio-Solids through Digestion Pasteurization and Re-Digestion. Proceedings WEF/AWWA/CWEA Joint Residuals and Bio-solids Management Conference, Bio-solids: Building Public Support.
  • Chae KJ, Jang A, Yim SK, Kim IS. 2008. The effects of digestion temperature and temperature shock on the biogas yields from the mesophilic anaerobic digestion of swine manure. Biores Technol 99: 1–6.
  • Chaudhari AB, Kothari RM. 2009. Soil conditioners as a pivotal biotech input for integrated farming and contingency income. In Chauhan AK, Varma A, eds. A Text book of Molecular Biotechnology ( pp. 483–505). New Delhi: I.K. International Publishing House Pvt. Ltd.
  • Choorit W, Wisarnwan P. 2007. Effect of temperature on the anaerobic digestion of palm oil mill effluent. Electron J Biotechnol 10: 376–385.
  • Cuzin N, Ouattara AS, Labat M, Garcia JL. 2001. Methanobacterium congolense sp. nov., from a methanogenic fermentation of cassava peel. Int J Syst Microbiol 51: 489–493.
  • de la Rubia MA, Perez M, Romero LI, Sales D. 2002. Anaerobic mesophilic and thermophilic municipal sludge digestion. Chem Biochem Eng Q 16: 119–124.
  • Demirel B, Scherer P. 2008. The role of acetotrophic and hydrogenotrophic methanogens during anaerobic conversion of biomass to methane: a review. Rev Environ Sci Biotechnol 7: 173–190.
  • Demirer GN, Chen S. 2005. Anaerobic digestion of dairy manure in a hybrid reactor with biogas recirculation. World J Microbiol Biotechnol 21: 1509–1514.
  • Dhouib A, Ellouz M, Aloui F, Sayadi S. 2006. Effect of bio-augmentation of activated sludge with white-rot fungi on olive mill wastewater detoxification. Lett Appl Microbiol 42: 405–411.
  • Dianou D, Miyaki T, Asakawa S, Morii H, Nagaoka K, Oyaizu H, Matsumoto S. 2001. Methanoculleus chikugoensis sp. nov., a novel methanogenic archae isolated from paddy field soil in Japan and DNA–DNA hybridization among Methanoculleus species. Int J Syst Microbiol 51: 1663–1669.
  • Dornack C. 2009. Stickstoff in biobasanlagen. VDI-Ber 2075: 155–171.
  • Elango D, Pulikesi M, Baskaralingam P, Ramamurthi V, Sivanesan S. 2007. Production of biogas from municipal solid waste with domestic sewage. J Hazard Mater 141: 301–304.
  • El-Mashad HM, Zeeman G, van Loon WKP, Gerard PAB, Lettinga G. 2004. Effect of temperature and temperature fluctuation on thermophilic anaerobic digestion of cattle manure. Biores Technol 95: 191–201.
  • Ferrari A, Brusa T, Rutili A, Canzi E, Biavati B. 1994. Isolation and characterization of Methanobrevibacter oralis sp. nov. Curr Microbiol 29: 7–12.
  • Ferry JG. 1993. Methanogenesis: Ecology, Physiology, Biochemistry and Genetics. New York: Chapmann & Hall.
  • Ferry JG, Smith PH, Wolfe RS. 1974. Methanospirillum, a new genus of methanogenic bacteria and characterization of Methanospirillum hungatii sp. nov. Int J Syst Bacteriol 24: 465–469.
  • Florencio L, Kato MT, Morais JC. 2001. Sewage treatment in Mangueira full-scale UASB plant at Recife, Pernambuco. Water Sci Tech 44: 71–78.
  • Francese AP, Aboagye-Mathiesen G, Olesen T, Cordoba PR, Sineriz F. 2000. Feeding approaches for biogas production from animal wastes and industrial effluents. World J Microbiol Biotechnol 16: 147–150.
  • Gannoun H, Othman NB, Bouallagui H, Moktav H. 2007. Mesophilic and thermophilic anaerobic co-digestion of olive mill wastewaters and abattoir wastewaters in an up-flow anaerobic filters. Ind Eng Chem Res 46: 6737–6743.
  • Ghaly AE. 1996. A comparative study of anaerobic digestion of acid cheese whey and dairy manure in a two stage reactor. Biores Technol 58: 61–72.
  • Gomez X, Cuetos MJ, Tortokovsky B, Moartinez-Nunez NF, Moran A. 2010. A comparison of analytical technique for evaluating food waste degradation by anaerobic degradation. Bioproc Biosys Eng 33: 427–438.
  • Gunnerson CG, Stuckey DC. 1986. Anaerobic Digestion: Principles and Practice of Biogas Systems (World Bank Technical Paper No. 49). Washington, DC.
  • GVRD. 2000. The Bio-Solids Report (Report No. 1). http://www.gvrd.bc.ca/ and http://www.nutrifor.com/pdfs/BR_pathogens.pdf
  • He Y, Pang Y, Li X, Liu Y, Li R, Zheng M. 2009. Investigation on the changes of main compositions and extractives of rice straw pretreated with sodium hydroxide for biogas production. Energy Fuel 23: 2220–2223.
  • Heo NH, Park SC, Lee JS, Kang H, Park DH. 2003. Single-stage anaerobic co-digestion for mixture wastes of simulated Korean food waste and waste activated sludge. Appl Biochem Biotechnol 105–108: 567–579.
  • Hickey RF, Switzenbaum SM. 1988. In Tilche A, Rossi A, eds. Posters from 5th International Symposium on Anaerobic Digestion (pp. 43–47 ). Italy: Bologna.
  • Hungate RE. 1967. A roll tube method for cultivation of strict anaerobes. In Norris JR, Ribbons QW, eds. Methods in Microbiology, Vol. 2B (pp. 117–132 ). New York: Academic Press.
  • Ilori MO, Adebusoye SA, Lawal AK, Awotiwon OA. 2007. Production of biogas from banana and plantain peels. Adv Environ Biol 1: 33–38.
  • Jain MK, Thompson TE, Conway de Macario E, Zeikus JG. 1987. Speciation of Methanobacterium strain ivanov as Methanobacterium ivanovii sp. nov. Syst Appl Microbiol 9: 77–82.
  • Jones WJ, Nagle DP, Jr, Whitman WB. 1987. Methanogens and the diversity of archaebacteria. Microbiol Rev 51: 135–177.
  • Jones WJ, Paynter MJB, Gupta R. 1983. Characterization of Methanococcus maripaludis sp. nov., a new methanogen isolated from salt marsh sediment. Arch Microbiol 135: 91–97.
  • Joulian C, Patel BKC, Ollivier B, Garcia JL, Roger PA. 2000. Methanobacterium oryzae sp. nov., a novel methanogenic rod isolated from a Philippines rice field. Int J Syst Microbiol 50: 525–528.
  • Kadam PC, Boone DR. 1995. Genus II. Methanolobus (König and Stetter 1983, 439VP) (eff. pub.: König and Stetter 1982, 488). Stetter, K. O., König, H. 2205–2207 and Physiological characterization and amended description of Methanolobus vulcani. Int J Syst Bacteriol 45: 400–402.
  • Kadam PC, Ranade DR, Mandelco L, Boone DR. 1994. Isolation and characterization of Methanolobus bombayensis sp. nov., a methylotrophic methanogen that requires high concentrations of divalent cations. Int J Syst Bacteriol 44: 603–607.
  • Karakashev D, Batstone DJ, Angelidaki I. 2005. Influence of environmental conditions on methanogenic compositions in anaerobic biogas reactors. Appl Environ Microbiol 71: 331–338.
  • Karim K, Hoffmann R, Klasson T, Al-Dahhan MH. 2005. Anaerobic digestion of animal waste: waste strength versus impact of mixing. Biores Technol 96: 1771–1781.
  • Karim K, Klasson KT, Drescher SR, Ridenour W, Borole AP, Al-Dahhan MH. 2007. Mesophilic digestion kinetics of manure slurry. Appl Biochem Biotechnol 142: 231–242.
  • Kendall MM, Liu Y, Sieprawska-Lupa M, Stetter KO, Whitman WB, Boone DR. 2006. Methanococcus aeolicus sp. nov., a mesophilic, methanogenic archaeon from shallow and deep marine sediments. Int J Syst Evol Microbiol 56: 1525–1529.
  • Kirtane RD, Suryawanshi PC, Patil MR, Chaudhari AB, Kothari RM. 2009. Optimization of organic loading rate for different fruit wastes during biomethanization. J Sci Ind Res 68: 252–255.
  • Konig H. 1984. Isolation and characterization of Methanobacterium uliginosum sp. nov. from a marshy soil. Can J Microbiol 30: 1477–1481.
  • Konig H, Stetter KO. 1982. Isolation and characterization of Methanolobus tindarius sp. nov., a coccoid methanogen growing only on methanol and methyl-amines. Zentralbl. Bakteriol. Parasitenkd. Infektionskr. Hyg. Abt. 1 Orig. Reihe C 3: 478–480.
  • Kuang Y, Lepesteur M, Pullammanappallil P, Ho GE. 2002. Influence of co-substrates on structure of microbial aggregates in long-chain fatty acid-fed anaerobic digesters. Lett Appl Microbiol 35: 190–194.
  • Kujawa-Roeleveld K, Zeeman G. 2006. Anaerobic treatment in decentralized and source-separation-based sanitation concepts. Rev Environ Sci Biotechnol 5: 115–139.
  • Lai MC, Chen SC. 2001. Methanofollis aquaemaris sp. nov., a methanogen isolated from an aquaculture fish pond. Int J Syst Microbiol 51: 1873–1880.
  • Lai MC, Chen SC, Shu CM, Chiou MS, Wang CC, Chuang MJ, Hong TY, Liu CC, Lai LJ, Hua JJ. 2002. Methanocalculus taiwanensis sp. nov., isolated from an estuarine environment. Int J Syst Microbiol 52: 1799–1806.
  • Lai MC, Lin CC, Yu PH, Huang YF, Chen SC. 2004. Methanocalculus chunghsingensis sp. nov., isolated from an estuary and a marine fishpond in Taiwan. Int J Syst Microbiol 54: 183–189.
  • Lee JP, Lee JS, Park SC. 1999. Two-phase methanization of food wastes in pilot scale. Appl Biochem Biotechnol 77–79: 585–593.
  • Leven L, ErikssonA, Schnurer A. 2007. Effect of process temperature on bacterial and archaeal communities in two methanogenic bioreactors treating organic household waste. FEMS Microbiol 59: 683–693.
  • Li R, Chen S, Li X. 2010. Biogas production from anaerobic co-digestion with food waste dairy manure in a 2-phase digestion system. Appl Biochem Biotechnol 160: 643–654.
  • Li R, Chen S, Li X, Lar JS, He Y, Zhu B. 2009a. Anaerobic co-digestion of kitchen waste with cattle manure for biogas production. Energy Fuels 23: 2225–2228.
  • Li X, Li L, Zheng M, Fu G, Lar J. 2009c. Anaerobic co-digestion of cattle manure with corn stover pretreated by sodium hydroxide for biogas production. Energy Fuel 23: 4635–4639.
  • Liu Y, Boone DR, Choy C. 1990. Methanohalophilus oregonense sp. nov., a methylotrophic methanogen from an alkaline, saline aquifer. Int J Syst Bacteriol 40: 111–116.
  • Lomans BP, Maas R, Luderer R, Opden Camp HJM, van der Drift C, Vogels GD. 1999. Isolation and characterization of Methanomethylovorans hollandica gen. nov., sp. nov., isolated from freshwater sediment, a methylotrophic methanogen able to grow on dimethyl sulfide and methanethiol. Appl Environ Microbiol 65: 3641–3650.
  • Lopes WS, Leite VD, Prasad S. 2004. Influence of inoculum on performance of anaerobic reactors for treating municipal solid waste. Biores Technol 94: 261–266.
  • Lyimo TJ, Pol A, Opden Camp HJM, Harhangi HR, Vogels GD. 2000. Methanosarcina semesiae sp. nov., a dimethylsulfide-utilizing methanogen from mangrove sediment. Int J Syst Microbiol 50: 171–178.
  • Ma K, Liu X, Dong X. 2005. Methanobacterium beijingense sp. nov., a novel methanogen isolated from anaerobic digesters. Int J Syst Microbiol 55: 325–329.
  • Ma K, Liu X, Dong X. 2006. Methanosaeta harundinacea sp. nov., a novel acetate-scavenging methanogen isolated from a UASB reactor. Int J Syst Microbiol 56: 127–131.
  • Maestrojuan GM, Boone DR, Xun L, Mah RA, Zhang L. 1990. Transfer of Methanogenium bourgense, Methanogenium marisnigri, Methanogenium olentangyi, and Methanogenium thermophilicum to the genus Methanoculleus gen. nov., emendation of Methanoculleus. Int J Syst Bacteriol 40: 117–122.
  • Mah RA, Kuhn DA. 1984. Transfer of the type species of the genus Methanococcus to the genus Methanosarcina, naming it Methanosarcina mazei (Barker 1936) comb. nov. et emend. and conservation of the genus Methanococcus (Approved lists 1980) with Methanococcus uannielii (Approved lists 1980) as the type species. Int J Syst Bacteriol 34: 263–265.
  • Marchaim U. 1992. Biogas Processes for Sustainable Development. FAO document.
  • Mata-Alvarez J, Mace S, Llabres P. 2000. Anaerobic digestion of organic solid wastes. An overview of research achievements and perspectives. Biores Technol 74: 3–16.
  • Mathrani IM, Boone DR, Mah RA, Fox GE, Lau PP. 1988. Methanohalophilus zhilinae sp. nov., an alkaliphilic, halophilic, methylotrophic methanogen. Int J Syst Bacteriol 38: 139–142.
  • McCarty PL. 1964. Anaerobic waste treatment fundamentals. I. Chemistry and microbiology. Public Works 95: 107–112.
  • McCarty PL. 2001. The development of anaerobic treatment and its future. Water Sci Technol 44: 149–156.
  • Mikucki JA, Liu Y, Delwiche M, Colwell FS, Boone DR. 2003. Isolation of a methanogen from deep marine sediments that contain methane hydrates, and description of Methanoculleus submarinus sp. nov. Appl Environ Microbiol 69: 3311–3316.
  • Miller TL, Lin C. 2002. Description of Methanobrevibacter gottschalkii sp. nov., Methanobrevibacter thaueri sp. nov., Methanobrevibacter woesei sp. nov. and Methanobrevibacter wolinii sp. nov. Int J Syst Microbiol 52: 819–822.
  • Miller TL, Wolin MJ. 1985. Methanosphaera stadtmaniae gen. nov., sp. nov.: a species that forms methane by reducing methanol with hydrogen. Arch Microbiol 141: 116–122.
  • MNRE—Ministry of New and Renewable Energy. 2006. Energy from Waste. http://mnes.nic.in/annualreport/2004_2005_English/ch9_pg1.htm. Government of India, New Delhi.
  • Mohan S, Sunny N. 2008. Study on biomethanization of waste water from jam industries. Biores Technol 99: 210–213.
  • Mori K, Yamamoto H, Kamagata Y, Hatsu M, Takamizawa K. 2000. Methanocalculus pumilus sp. nov., a heavy-metal-tolerant methanogen isolated from a waste-disposal site. Int J Syst Microbiol 50: 1723–1729.
  • Mshandete A, Bjornsson L, Kivaisia AK, Rubindamayugi MST, Mattiasson B. 2006. Effect of particle size on biogas yield from sisal fiber waste. Renew Energy 31: 2385–2392.
  • Ni S, Boone DR. 1991. Isolation and characterization of dimethyl sulfide-degrading methanogen, Methanolobus siciliae HI350, from an oil well, characterization of M. siciliae T4/MT, and emendation of M. siciliae. Int J Syst Bacteriol 41: 410–416.
  • Nordberg A, Jarvis A, Stenberg B, Mathisen B, Svensson BH. 2007. Anaerobic digestion of alfalfa silage with recirculation of process liquid. Biores Technol 98: 104–111.
  • Ollivier B, Cayol JL, Patel BKC, Magot M, Fardeau ML, Garcia JL. 1997. Methanoplanus petrolearius sp. nov., a novel methanogenic bacterium from an oil-producing well. FEMS Microbiol Lett 147: 51–56.
  • Ollivier B, Fardeau ML, Cayol JL, Magot M, Patel BKC, Prensier G, Garcia JL. 1998. Methanocalculus halotolerans gen. nov., sp. nov., isolated from an oil-producing well. Int J Syst Bacteriol 48: 821–828.
  • Ollivier B, Mah RA, Garcia JL, Robinson R. 1985. Isolation and characterization of Methanogenium aggregans sp. nov. Int J Syst Bacteriol 35: 127–130.
  • Oremland RS, Boone DR. 1994. Methanolobus taylorii sp. nov., a new species of methylotrophic, estuarine methanogen. Int J Syst Bacteriol 44: 573–575.
  • Parawira W, Read JS, Mattiasson B, Bjornsson L. 2008. Energy production from agricultural residues: high methane yields in pilot-scale two-stage anaerobic digestion. Biomass Bioenergy 32: 44–50.
  • Patel GB. 1984. Characterization and nutritional properties of Methanothrix concilii sp. nov., a mesophilic, aceticlastic methanogen. Can J Microbiol 30: 1383–1396.
  • Patel GB, Sprott GD. 1990. Methanosaeta concilii gen. nov., sp. nov. (“Methanothrix concilii”) and Methanosaeta thermoacetophila nom. rev., comb. nov. Int J Syst Bacteriol 40: 79–82.
  • Patel GB, Sprott GD, Fein JE. 1990. Isolation and characterization of Methanobacterium espanolae sp. nov., a mesophilic, moderately acidiphilic methanogen. Int J Syst Bacteriol 40: 12–18.
  • Patel H, Madamwar D. 2000. Biomethanation of low pH petrochemical wastewater using up-flow fixed-film anaerobic bioreactors. World J Microbiol Biotechnol 16: 69–75.
  • Paterek JR, Smith PH. 1988. Methanohalophilus mahii gen. nov. sp. nov., a methylotrophic halophilic methanogen. Int J Syst Bacteriol 38: 122–123.
  • Paynter MJB, Hungate RE. 1968. Characterization of Methanomicrobium mobilis, sp. nov., isolated from the bovine rumen. J Bacteriol 95: 1943–1951.
  • Raju NR, Sumithra Devi S, Nand K. 1991. Influence of trace elements on biogas production from mango processing waste in 1.5 m3 KVIC digesters. Biotechnol Lett 13: 461–464.
  • Rea SM, Bowman JP, Popovski S, Pimm C, Wright ADG. 2007. Methanobrevibacter millerae sp. nov. and Methanobrevibacter olleyae sp. nov., methanogens from the ovine and bovine rumen that can utilize formate for growth. Int J Syst Microbiol 57: 450–456.
  • Rivard CJ, Henson MV, Smith PH. 1983. Isolation and characterization of Methanomicrobium paynteri sp. nov., a mesophilic methanogen isolated from marine sediments. Appl Environ Microbiol 46: 484–490.
  • Romano RT, Zhang R. 2008. Co-digestion of onion juice and wastewater sludge using an anaerobic mixed biofilm reactor. Biores Technol 99: 631–637.
  • Saev M, Koumanovan B, Simeonov IV. 2009. Anaerobic co-digestion of wasted tomato’s and cattle dung for biogas production. J Univ Chem Technol Metall 44: 55–60.
  • Sakai S, Imachi H, Hanada S, Ohashi A, Harada H, Kamagata Y. 2008. Methanocella paludicola gen. nov., sp. nov., a methane-producing archaeon, the first isolate of the lineage ‘Rice Cluster I’ and proposal of the new archaeal order Methanocellales ord. nov. Int J Syst Evol Microbiol 58: 929–936.
  • Santana A, Pound B. 1980. The production of biogas from cattle slurry, the effects of concentration of total solids and animal diet. Trop Anim Prod 5: 130–135.
  • Satyanarayana S, Murkute P, Ramakant L. 2008. Biogas production enhancement by Brassica compestries amendment in cattle dung digesters. Biomass Bioenergy 32: 210–215.
  • Savant DV, Shouche YS, Prakash S, Ranade DR. 2002. Methanobrevibacter acididurans sp. nov., a novel methanogen from a sour anaerobic digester. Int J Syst Microbiol 52: 1081–1087.
  • Schafer PL, Farrell JB, Newman G, Vandenburg S. 2003. Advanced anaerobic digestion processes. Water Environ Technol 15: 38–45.
  • Shastry S, Nandy T, Wate SR, Kaul SN. 2010. Hydrogenated vegetable oil industry wastewater treatment using UASB reactor system with resource to energy recovery. Water Air Soil Pollut 208: 323–333.
  • Shilpkar P, Shah M, Chaudhary DR. 2007. An alternate use of Calotropis gigantea: biomethanation. Curr Sci 92: 435–437.
  • Shlimon AG, Friedrich MW, Niemann H, Ramsing NB, Finster K. 2004. Methanobacterium aarhusense sp. nov., a novel methanogen isolated from a marine sediment (Aarhus Bay, Denmark). Int J Syst Microbiol 54: 759–763.
  • Smith PH, Hungate RE. 1958. Isolation and characterization of Methanobacterium ruminantium n. sp. J Bacteriol 75: 713–718.
  • Sowers KR, Baron SF, Ferry JG. 1984. Methanosarcina acetivorans sp. nov., an acetotrophic methane-producing bacterium isolated from marine sediments. Appl Environ Microbiol 47: 971–978.
  • Sowers KR, Ferry JG. 1983. Isolation and characterization of a methylotrophic marine methanogen, Methanococcoides methylutens gen. nov., sp. nov. Appl Environ Microbiol 45: 684–690.
  • Speece R. 1996. Anaerobic Biotechnology for Industrial Wastewaters. Nashville, TN: Archae Press.
  • Sprenger WW, van Belzen MC, Rosenberg J, Hackstein JHP, Keltjens JT. 2000. Methanomicrococcus blatticola gen. nov., sp. nov., a methanol- and methylamine-reducing methanogen from the hindgut of the cockroach Periplaneta americana. Int J Syst Microbiol 50: 1989–1999.
  • Stadtman TC, Barker HA. 1951. Studies on the methane fermentation X. A new formate-decomposing bacterium, Methanococcus vannielii. J Bacteriol 62: 269–280.
  • Staubmann R, Foidl G, Foidl N, Gosrrz GM, Lafferry RM, Arbizu VMV, Steiner W. 1997. Biogas production from Jatropha curcas press cake. Appl Biochem Biotechnol 63–65: 457–467.
  • Suryawanshi PC, Chaudhari AB, Kothari RM. Psychrophilic anaerobic digestion: most desired option for waste treatment in cold regions. (Revised manuscript submitted to Crit Rev Biotechnol)
  • Suryawanshi PC, Chaudhari AB, Kothari RM. 2010. Thermophilic anaerobic digestion: the best option for waste treatment. Critical Rev Biotechnol 30: 31–40.
  • Suryawanshi PC, Kirtane RD, Chaudhari AB, Kothari RM. 2009. Conservation and recycling of pomegranate seeds and shells for value addition. J Renew Sustainable Energy 1: 013107.
  • Svensson LM, Björnsson L, Mattiasson B. 2007. Enhancing performance in anaerobic high-solids stratified bed digesters by straw bed implementation. Biores Technol 98: 46–52.
  • Taconi KA, Zappi ME, French WT, Brown LR. 2007. Feasibility of methanogenic digestion applied to a low pH acetic acid solution. Biores Technol 98: 1579–1585.
  • Trnovec W, Britz TJ. 1998. Influence of organic loading rate and hydraulic retention time on the efficiency of a UASB bioreactor treating a canning factory effluent. Water SA 24: 1147–1152.
  • Vandeviviere P, de Baere L, Verstraete W. 2002. Types of anaerobic digesters for solid wastes. In Mata-Alvarez J, ed. Biomethanization of the Organic Fraction of Municipal Solid Wastes (pp. 111–137 ). London: IWA Publishing.
  • Veeken A, de Wilde V, Woelders H, Hamelers B. 2004. Advanced bioconversion of bio-waste for production of a peat substitute and renewable energy. Biores Technol 92: 121–131.
  • Wang H, Tolvanen K, Lehtomaki A, Puhakka J, Rintala J. 2010. Microbial community structure in anaerobic co-digestion of grass silage and cow manure in a laboratory continuously stirred tank reactor. Biodegrad 21: 135–146.
  • Weiland P. 2010. Biogas production: current state and perspective. Appl Microbiol Biotechnol. 85: 849–860.
  • Wellinger AL. 2006. Biogas Upgrading and Utilisation—Energy from Biological Conversion of Organic Waste. IEA, Bioenergy Task 24: http://www.recyclenow.org/Report_IEA_Bioenergy_1MB.pdf. Accessed August 17, 2006.
  • Widdel F, Rouviere PE, Wolfe RS. 1988. Classification of secondary alcohol-utilizing methanogens, including a new thermophilic isolate. Arch Microbiol 150: 477–481.
  • Woese CR. 1987. Bacterial evolution. Microbial Rev 51: 221–271.
  • Worakit S, Boone DR, Mah RA, Abdel-Samie ME, El-Halwagi MM. 1986. Methanobacterium alcaliphilum sp. nov., an H2-utilizing ·methanogen that grows at high pH values. Int J Syst Bacteriol 36: 380–382.
  • Wu SY, Chen SC, Lai MC. 2005. Methanofollis formosanus sp. nov., isolated from a fish pond. Int J Syst Microbiol 55: 837–842.
  • Xun L, Boone DR, Mah RA. 1989. De-oxyribonucleic acid hybridization study of Methanogenium and Methanocorpusculum species. Emendation of the genus Methanocorpusculum and transfer of Methanogenium aggregans to the genus Methanocorpusculum as Methanocorpusculum aggregans comb. nov. Int J Syst Bacteriol 39: 109–111.
  • Yang Y, Zhang Z, Lu J, Maekawa T. 2004. Continuous methane fermentation and the production of vitamin B12 in a fixed-bed reactor packed with loofah. Biores Technol 92: 285–290.
  • Yen HW, Brune DE. 2007. Anaerobic co-digestion of algal sludge and waste paper to produce methane. Biores Technol 98: 130–134.
  • Yilmaz T, Yuceer A, Basibuyuk M. 2008. A comparison of the performance of mesophilic and thermophilic anaerobic filters treating paper mill wastewater. Biores Technol 99: 156–163.
  • Zeeman G, Vens TJM, Koster-Treffers ME, Lettinga G. 1988. Start-up of low temperature digestion of manure. In Hall ER, Hobson PN, eds. Anaerobic Digestion (pp. 397–406 ). Oxford, England: Pergamon Press.
  • Zeikus JG, Henning DL. 1975. Methanobacterium arboriphilus sp. nov., an obligate anaerobe isolated from wet-wood of living trees. Anton Leeuwenhoek J Microbiol Serol 41: 543–552.
  • Zellner G, Alten C, Stackebrandt E, Conway de Macario E, Winter J. 1987. Isolation and characterization of Methanocorpusculum parvum, gen. nov., sp. nov., a new tungsten requiring, coccoid methanogen. Arch Microbiol 147: 13–20.
  • Zellner G, Bleicher K, Kneifel H, Conway de Macario E, Tindall BJ, Winter J. 1989a. Isolation and characterization of a new mesophilic, secondary alcohol utilizing methanogen, Methanobacterium palustre sp. nov., from a peat bog. Arch Microbiol 151: 1–9.
  • Zellner G, Messner P, Kneifel H, Tindall BJ, Winter J, Stackebrandt E. 1989b. Methanolacinia gen. nov., incorporating Methanomicrobium paynteri as Methanolacinia paynteri comb. nov. J Gen Appl Microbiol 35: 185–202.
  • Zellner G, Messner P, Winter J, Stackebrandt E. 1998. Methanoculleus palmolei sp. nov., an irregularly coccoid methanogen from an anaerobic digester treating wastewater of a palm oil plant in North-Sumatra, Indonesia. Int J Syst Bacteriol 48: 1111–1117.
  • Zhao Y, Boone DR, Mah RA, Boone JE, Xun L. 1989. Isolation and characterization of Methanocorpusculum labreanum sp. nov. from the La Brea Tar Pits. Int J Syst Bacteriol 39: 10–13.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.