Literature DB >> 10620266

Thermophilic sulfate reduction and methanogenesis with methanol in a high rate anaerobic reactor.

J Weijma1, A J Stams, L W Hulshoff Pol, G Lettinga.   

Abstract

Sulfate reduction outcompeted methanogenesis at 65 degrees C and pH 7.5 in methanol and sulfate-fed expanded granular sludge bed reactors operated at hydraulic retention times (HRT) of 14 and 3.5 h, both under methanol-limiting and methanol-overloading conditions. After 100 and 50 days for the reactors operated at 14 and 3.5 h, respectively, sulfide production accounted for 80% of the methanol-COD consumed by the sludge. The specific methanogenic activity on methanol of the sludge from a reactor operated at HRTs of down to 3.5 h for a period of 4 months gradually decreased from 0. 83 gCOD. gVSS(-1). day(-1) at the start to a value of less than 0.05 gCOD. gVSS(-1). day(-1), showing that the relative number of methanogens decreased and eventually became very low. By contrast, the increase of the specific sulfidogenic activity of sludge from 0. 22 gCOD. gVSS(-1). day(-1) to a final value of 1.05 gCOD. gVSS(-1). day(-1) showed that sulfate reducing bacteria were enriched. Methanol degradation by a methanogenic culture obtained from a reactor by serial dilution of the sludge was inhibited in the presence of vancomycin, indicating that methanogenesis directly from methanol was not important. H(2)/CO(2) and formate, but not acetate, were degraded to methane in the presence of vancomycin. These results indicated that methanol degradation to methane occurs via the intermediates H(2)/CO(2) and formate. The high and low specific methanogenic activity of sludge on H(2)/CO(2) and formate, respectively, indicated that the former substrate probably acts as the main electron donor for the methanogens during methanol degradation. As sulfate reduction in the sludge was also strongly supported by hydrogen, competition between sulfate reducing bacteria and methanogens in the sludge seemed to be mainly for this substrate. Sulfate elimination rates of up to 15 gSO(4)(2-)/L per day were achieved in the reactors. Biomass retention limited the sulfate elimination rate. Copyright 2000 John Wiley & Sons, Inc.

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Year:  2000        PMID: 10620266

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  6 in total

1.  Effect of methanogenic substrates on anaerobic oxidation of methane and sulfate reduction by an anaerobic methanotrophic enrichment.

Authors:  Roel J W Meulepas; Christian G Jagersma; Ahmad F Khadem; Alfons J M Stams; Piet N L Lens
Journal:  Appl Microbiol Biotechnol       Date:  2010-05-06       Impact factor: 4.813

2.  Long-term adaptation of methanol-fed thermophilic (55 degrees C) sulfate-reducing reactors to NaCl.

Authors:  M V G Vallero; G Lettinga; P N L Lens
Journal:  J Ind Microbiol Biotechnol       Date:  2003-07-12       Impact factor: 3.346

3.  High rate production of concentrated sulfides from metal bearing wastewater in an expanded bed hydrogenotrophic sulfate reducing bioreactor.

Authors:  Pieter Ostermeyer; Josefien Van Landuyt; Luiza Bonin; Karel Folens; Adam Williamson; Tom Hennebel; Korneel Rabaey
Journal:  Environ Sci Ecotechnol       Date:  2022-04-06

4.  Citric acid wastewater as electron donor for biological sulfate reduction.

Authors:  Alfons J M Stams; Jacco Huisman; Pedro A Garcia Encina; Gerard Muyzer
Journal:  Appl Microbiol Biotechnol       Date:  2009-04-28       Impact factor: 4.813

5.  Key Factors Influencing Rates of Heterotrophic Sulfate Reduction in Active Seafloor Hydrothermal Massive Sulfide Deposits.

Authors:  Kiana L Frank; Karyn L Rogers; Daniel R Rogers; David T Johnston; Peter R Girguis
Journal:  Front Microbiol       Date:  2015-12-22       Impact factor: 5.640

6.  Temperature Effects on Methanogenesis and Sulfidogenesis during Anaerobic Digestion of Sulfur-Rich Macroalgal Biomass in Sequencing Batch Reactors.

Authors:  Heejung Jung; Jaai Kim; Changsoo Lee
Journal:  Microorganisms       Date:  2019-12-11
  6 in total

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