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High rate biological treatment of sulfate-rich wastewater in an acetate-fed EGSB reactor

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Abstract

An expanded granular sludge bed reactor, inoculated with acclimated sulfidogenic granular sludge, was operated at 33 °C and fed with acetic acid as COD source and sulfate as electron acceptor. The bioreactor had a sulfate conversion efficiency of 80–90% at a high sulfate loading rate of 10.4 g SO4 2--S/l.d after only 60 days of start-up. This was achieved by implementing a dual operational strategy. Firstly acetic acid was dosed near stoichiometry (COD over sulfur ratio = 2.0 to 2.2) which allowed almost complete sulfate removal. Secondly the pH in the bioreactor was kept slightly alkaline (7.9 ± 0.1) which limited the concentration of the inhibitory undissociated hydrogen sulfide H2S (pKa = 7). This allowed the acetotrophic sulfate reducing bacteria to predominate throughout the long term experiment. The limitations of the EGSB technology with respect to the sulfate conversion rate appeared to be related to the biomass wash-out and granule deterioration occurring at superficial upflow velocities above 10 m/h. Increasing the recirculation flow caused a drop in the sulfate reduction rate and efficiency, an increase of the suspended sludge fraction and a considerable loss of biomass into the effluent, yielding bare mainly inorganic granules. Elemental analysis revealed that a considerable amount of the granular sludge dry matter at the end of the experiment, at an upflow velocity of 20 m/h, consisted of calcium (32%), mainly in the form of carbonate deposits, while organic matter only represented 7%.

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References

  • Alphenaar A (1994) Anaerobic granular sludge: characterization, and factors affecting its functioning. PhD-thesis Agricultural University Wageningen, The Netherlands

  • American Public Health Association (APHA) (1992) Standard methods for the determination of water and wastewater, 18th edition. Greenberg AE, Clesceri LS & Eaton AD (Eds)

  • Bhattacharya SK, Uberoi V & Dronamraju MM (1996) Interaction between acetate fed sulfate reducers and methanogens. Water Research 30: 2239- 2246

    Google Scholar 

  • Buisman C (1989) Biotechnological sulfide removal with oxygen. PhD-thesis Agricultural University Wageningen, The Netherlands

  • Colleran E, Finnegan S & Lens P (1995) Anaerobic treatment of sulphate-containing waste streams. Antonie van Leeuwenhoek 67: 29- 46

    Google Scholar 

  • De Beer D, Huisman JW, Van Den Heuvel JC & Ottengraf PP (1992) The effect of pH profiles in methanogenic aggregates on the kinetics of acetate conversion. Water Research 26: 1329- 1336

    Google Scholar 

  • De Smul A, Dries J, Goethals L, Grootaerd H & Verstraete W (1997) High loading rates in a mesophilic sulfidogenic ethanolfed EGSB reactor. Applied Microbiology and Biotechnology 48: 297- 303

    Google Scholar 

  • Gabriels R, Engels H & Van Keirsbulck W (1985) Analyse van water, grond en planten, laboratoriumonderzoek. Ministerie van Landbouw, Bestuur voor Landbouwkundig Onderzoek, Rijkscentrum voor Landbouwkundig Onderzoek Gent: p. 35

  • Gupta A, Flora JRV, Gupta M, Sayles GD & Suidan MT (1994) Methanogenesis and sulfate reduction in chemostats-I. Kinetic studies and experiments. Water Research 28: 781- 793

    Google Scholar 

  • Harada H, Uemura S & Momonoi K (1994) Interaction between sulfate reducing bacteria and methane producing bacteria in UASB reactors fed with low strength wastes containing different levels of sulfate. Water Research 28: 355- 367

    Google Scholar 

  • Isa Z, Grusenmeyer S & Verstraete W (1986a) Sulfate reduction relative to methane production in high rate anaerobic digestion: microbiological aspects. Applied and Environmental Microbiology 51: 580- 587

    Google Scholar 

  • ____ (1986b) Sulfate reduction relative to methane production in high rate anaerobic digestion: technical aspects. Applied and Environmental Microbiology 51: 552- 579

    Google Scholar 

  • Janssen AJH (1996) Formation and colloidal behaviour of elemental sulphur produced from the biological oxidation of hydrogensulphide. PhD-thesis Agricultural University Wageningen, The Netherlands

  • Karhadkar PP, Audic JM, Faup GM & Khana P (1987) Sulfide and sulfate inhibition of methanogenesis. Water Research 21: 1061- 1066

    Google Scholar 

  • Kato MT (1994) The anaerobic treatment of low strength soluble wastewaters. PhD-thesis Agricultural University Wageningen, The Netherlands

  • Maillachervu KY & Parkin GF (1996) Kinetics of growth, substrate utilization and sulfide toxicity for propionate, acetate and hydrogen utilizers in anaerobic systems. Water Environment Research 68: 1099- 1106

    Google Scholar 

  • Maillachervu KY, Parkin GF, Peng CY, Kuo WC, Oonge ZI & Lebdushka V (1993) Sulfide toxicity in anaerobic systems fed sulfate and various organics. Water Environment Research 65: 100- 109

    Google Scholar 

  • McCartney DM & Oleszkiewicz JA (1993) Competition between methanogens and sulfate reducers: effect of COD:sulfate ratio and acclimation. Water Environmental Research 65: 655- 664

    Google Scholar 

  • ____ (1991) Sulfide inhibition of anaerobic degradation of lactate and acetate. Water Research 25: 203- 209

    Google Scholar 

  • Okabe S, Nielsen PH, Jones WL & Characklis WG (1995) Sulfide product inhibition of Desulfovibrio desulfuricans in batch and continuous cultures. Water Research 29: 571- 578

    Google Scholar 

  • Omil F, Bakker CD, Hulshoff Pol LW & Lettinga G (1997) Effect of pH and low temperature shocks on the competition between sulphate reducing bacteria and methane producing bacteria in UASB reactors. Environmental Technology 18: 255- 264

    Google Scholar 

  • Omil F, Lens P, Hulshoff Pol LW & Lettinga G (1996) Effect of upward velocity and sulphide concentration on volatile fatty acid degradation in a sulphidogenic granular sludge reactor. Process Biochemistry 31: 699- 710

    Google Scholar 

  • Oude Elferink SJWH, Visser A, Hulshoff Pol LW & Stams AJM (1994) Sulfate reduction in methanogenic bioreactors. FEMS Microbiology Reviews 15: 119- 136

    Google Scholar 

  • Overmeire A, Lens P & Verstraete W (1994) Mass transfer limitation of sulfate in methanogenic aggregates. Biotechnology and Bioengineering 44: 387- 391

    Google Scholar 

  • Polprasert C & Haas CN (1995) Effect of sulfate on anaerobic processes fed with dual substrates. Water Science and Technology 31: 101- 107

    Google Scholar 

  • Qatibi AL, Bories A & Garcia JL (1990) Effects of sulfate on lactate and C2-, C3-volatile fatty acid anaerobic degradation by a mixed microbial culture. Antonie van Leeuwenhoek 58: 241- 248

    Google Scholar 

  • Reis MAM, Almeida JS, Lemos PC & Carrondo MJT (1992) Effect of hydrogen sulfide on growth of sulfate reducing bacteria. Biotechnology and Bioengineering 40: 593- 600

    Google Scholar 

  • Stucki G, Hanselmann KW & Hurzeler RA (1993) Biological sulfuric acid transformation: reactor design and process optimization. Biotechnology and Bioengineering 41: 303- 315

    Google Scholar 

  • Thauer RK, Jungermann K & Decker K (1977) Energy conservation in chemotrophic anaerobic bacteria. Bacteriological reviews 41: 100- 180

    Google Scholar 

  • Thaveesri J, Daffonchio D, Liessens B & Verstraete W (1995) Different types of sludge granules in UASB reactors treating acidified wastewaters. Antonie van Leeuwenhoek 68: 329- 337

    Google Scholar 

  • Trüper HG & Schlegel HG (1964) Sulfur metabolism in Thiorhodaceae: 1. Quantitative measurements on growing cells of Chromatium okenii. Antonie van Leeuwenhoek 30: 225- 238

    Google Scholar 

  • Uberoi V & Bhattacharya SK (1995) Interactions among sulfate reducers, acetogens, and methanogens in anaerobic propionate systems. Water Environment Research 67: 330- 339

    Google Scholar 

  • Uemura S & Harada H (1995) Inorganic composition and microbial characteristics of methanogenic granular sludge grown in a thermophilic upflow anaerobic sludge blanket reactor. Applied Microbiology and Biotechnology 43: 358- 364

    Google Scholar 

  • van Houten R (1996) Biological sulfate reduction with synthesis gas. PhD-thesis Agricultural University Wageningen, The Netherlands

  • Visser A (1995) The anaerobic treatment of sulfate containing wastewater. PhD-thesis Agricultural University Wageningen, The Netherlands

  • Yoda M, Kitagawa M & Miyaji (1987) Long term competition between sulfate reducing and methane producing bacteria for acetate in anaerobic biofilm. Water Research 21: 1547- 1556

    Google Scholar 

  • Zellner G, Gereke M, Conway de Macario E & Diekmann H (1991) Population dynamics of biofilm development during start-up of a butyrate-degrading fluidized bed reactor. Applied Microbiology and Biotechnology 36: 404- 409

    Google Scholar 

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Dries, J., De Smul, A., Goethals, L. et al. High rate biological treatment of sulfate-rich wastewater in an acetate-fed EGSB reactor. Biodegradation 9, 103–111 (1998). https://doi.org/10.1023/A:1008334219332

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