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Abatement of volatile organic sulfur compounds in odorous emissions from the bio-industry

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Abstract

Compounds of interest in this work are methanethiol (MeSH), dimethyl sulfide (Me2S), dimethyl polysulfides (Me2Sx) and carbon disulfide (CS2) since these volatiles have been identified as predominant odorants in the emission of a wide range of activities in the bio-industry (e.g. aerobic waste water treatment plants, composting plants, rendering plants). In these processes, the occurrence of volatile organic sulfur compounds is mainly related to the presence of anaerobic microsites with consecutive fermentation of sulfur containing organic material and/or to the breakdown of the latter due to thermal heating. Due to the chemical complexity of these low-concentrated waste gas streams and the high flow rates to be handled, mainly biotechnological techniques and scrubbers can be used to control the odour emission. When using biofilters or trickling filters, inoculation with specific micro-organisms and pH-control strategies should be implemented to optimise the removal of volatile organic sulfur compounds. In scrubbers, chemical oxidation of the volatile organic sulfur compounds can be obtained by dosing hypochlorite, ozone or hydrogen peroxide to the scrubbing liquid. However, optimal operational conditions for each of these abatement techniques requires a further research in order to guarantee a long-term and efficient overall odour abatement.

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References

  • Adewuyl YG & Carmichael GR (1986) Kinetics of oxidation of dimethyl sulfide by hydrogen peroxide in acidic and alkaline medium. Environ. Sci. Technol. 20: 1017–1022

    Google Scholar 

  • Anderson R (1984) Sewage treatment processes: the solution to the odour problem. In: Vigneron S, Hermia J & Chaouki J (Eds) Characterization and control of odoriferous pollutants in process industries, (pp 471–496). Elsevier Science B.V., Amsterdam

    Google Scholar 

  • Berzaczy L, Niedermayer E, Kloimstein L & Windsperger A (1988) Biological exhaust gas purification in the rayon fiber manufacture. Chem. Biochem. Eng. Q. 2: 201–204

    Google Scholar 

  • Bonnin C, Coriton G & Martin G (1994) Biodeodorization processes: from organic media filters to mineral beds. VDI Berichte 1104: 217–230

    Google Scholar 

  • Bonnin C, Laborie A & Paillard H (1990) Odor nuisances created by sludge treatment: problems and solutions. Wat. Sci. Tech. 22: 65–74

    Google Scholar 

  • Bonnin C & Sudry G (1992) Elimination des nuisances olfactives sur la station d'épuration de Reims. L'eau, l'industrie, les nuisances 156: 41–46

    Google Scholar 

  • Bremner JM & Bundy LG (1974) Inhibition of nitrification in soils by volatile sulfur compounds. Soil Biol. Biochem. 6: 161–165

    Google Scholar 

  • Brennan BM, Donlon M & Bolton E (1996) Peat biofiltration as an odour control technology for sulphur-based odours. Journal of the Chartered Institution of Water and Environmental Management 10: 190–198

    Google Scholar 

  • Chélu G & Nominé M (1984) Air pollution abatement in the rendering industry: investigation of various methods. In: Vigneron S, Hermia J & Chaouki J (Eds) Characterization and control of odoriferous pollutants in process industries, (pp 397–405). Elsevier Science B.V., Amsterdam

    Google Scholar 

  • Cho K-S, Hirai M & Shoda M (1991a) Removal of dimethyl disulfide by the peat seeded with night soil sludge. J. Ferment. Bioeng. 71: 289–291

    Google Scholar 

  • ____ (1991b) Degradation characteristics of hydrogen sulfide, methanethiol, dimethyl sulfide and dimethyl disulfide by Thiobacillus thioparus DW44 isolated from peat biofilter. J. Ferment. Bioeng. 71: 384–389

    Google Scholar 

  • ____ (1992) Enhanced removal efficiency of malodorous gases in a pilot-scale biofilter inoculated with Thiobacillus thioparus DW44. J. Ferment. Bioeng. 73: 46–50

    Google Scholar 

  • De Guardia A, Bouzaza A, Martin G, Laplanche A, Wolbert D (1996) Treatment of gas containing volatile organic compounds by using a silicon oil. Odours & VOC's J. 1: 277–285

    Google Scholar 

  • Derikx PJL, Op Den Camp HJM, Van Der Drift C, Van Griensven LJLD & Vogels GD (1990) Odorous sulfur compounds emitted during production of compost used as a substrate in mushroom cultivation. Appl. Environ. Microbiol. 56: 176–180

    Google Scholar 

  • Derikx PJL, Simons FHM, Op Den Camp HJM, Van Der Drift C, Van Griensven LJLD & Vogels GD (1991) Evolution of volatile sulfur compounds during laboratory-scale incubations and indoor preparation of compost used as a substrate in mushroom cultivation. Appl. Environ. Microbiol. 57: 563–567

    Google Scholar 

  • Devai I & Delaune RD (1995) Formation of volatile sulfur compounds in salt marsh sediment as influenced by soil redox condition. Organic Geochemistry 23: 283–287

    Google Scholar 

  • De Vos M, Patte F, Rouault J, Laffort P & Van Gemert LJ (1990) Standardized human olfactory thresholds. IRL Press at Oxford University Press, Oxford.

    Google Scholar 

  • De Zwart JMM & Kuenen JG (1992) C1-cycle of sulfur compounds. Biodegradation 3: 37–59

    Google Scholar 

  • De Zwart JMM, Sluis JMR & Kuenen JG (1997) Competition for dimethyl sulfide and hydrogen sulfide by Methylophaga sulfidovorans and Thiobacillus thioparus T5 in continuous cultures. Appl. Environ. Microbiol. 63: 3318–3322

    Google Scholar 

  • Dolfing J, Van den Wijngaard AJ & Janssen DB (1993) Microbiological aspects of the removal of chlorinated hydrocarbons from air. Biodegradation 4: 261–282

    Google Scholar 

  • Dorling TA (1980) Carbon adsorption. In: (Valentin FHH & North AA (Eds) Odour Control-a concise guide, (pp 85–92). Hertfordshire, Warren Spring Laboratory.

    Google Scholar 

  • Frechen F-B (1994) Odour emissions of wastewater treatment plants-recent German experiences. Wat. Sci. Tech. 30: 35–46

    Google Scholar 

  • Gerards R, Gevaert D & Vriens L (1996) Biotreatment of waste gases with full-scale Seghobioclean-systems. Odours & VOC's J. 1: 315–317

    Google Scholar 

  • Hamon C (1995) Development of hydrophobic zeolites. Odours & VOC's J. 1: 104

    Google Scholar 

  • Hentz LH, Murray CM, Thompson JL, Gasner LL & Dunson JB (1990) Odor control research at the Montgomery county regional compost facility. Presented at: The water pollution control specialty conference series-the status of municipal sludge management for the 1990's, New Orleans, Louisiana

  • Hinokiyama K, Nishida K, Osaka M & Muto N (1991) Adsorbent characteristics of hydrogen sulfide and methyl mercaptan in single and mixed systems. Intern. J. Environmental Studies 38: 25–40

    Google Scholar 

  • Hirai M, Ohtake M & Shoda M (1990) Removal kinetics of hydrogen sulfide, methanethiol and dimethyl sulfide by peat biofilters. J. Ferment. Bioeng. 70: 334–339

    Google Scholar 

  • Hobbs PJ, Misselbrook TH & Pain BF (1997) Characterisation of odorous compounds and emissions from slurries produced from weaner pigs fed dry feed and liquid diets. J. Sci. Food Agric. 73: 437–445

    Google Scholar 

  • Hwang Y, Matsuo T, Hanaki K & Suzuki N (1994) Removal of odorous compounds in wastewater by using activated carbon, ozonation and aerated biofilter. Wat. Res. 28: 2309–2319

    Google Scholar 

  • Juliette LY, Hyman MR & Arp DJ (1993) Inhibition of ammonia oxidation in Nitrosomonas europaea by sulfur compounds: thioethers are oxidized to sulfoxides by ammonia monooxygenase. Appl. Environ. Microbiol. 59: 3718–3727

    Google Scholar 

  • Kasakura TK & Tatsukawa K (1995) On the scent of a good idea for odour removal. W.Q.I. 2: 24–27

    Google Scholar 

  • Kelly K & Butcher J (1997) Catalytic processes for environmental use. Filtration and Separation 34: 445–457

    Google Scholar 

  • Koe LCC & Tan YG (1987) GC-MS analysis of odorous emissions from the dissolved air flotation units treating surplus activated sludge at a wastewater treatment works. Int. J. Environmental Studies 30: 37–44

    Google Scholar 

  • Laffort P (1994) The application of synergy and inhibition phenomena to odor reduction. In: Vigneron S, Hermia J & Chaouki J (Eds) Characterization and control of odoriferous pollutants in process industries, (pp. 105–117). Elsevier Science B.V., Amsterdam

    Google Scholar 

  • Laplanche A, Bonnin C & Darmon D (1994) Comparative study of odors removal in a wastewater treatment plant by wet scrubbing and oxidation by chlorine or ozone. In: Vigneron S, Hermia J & Chaouki J (Eds) Characterization and control of odoriferous pollutants in process industries (pp. 277–294). Elsevier Science B.V., Amsterdam

    Google Scholar 

  • Le Bec R, Lefievre V & Pavie R (1995) Solutions to VOC and odor emissions by adsorption processes. Odours & VOC's J. 1: 96–97

    Google Scholar 

  • Lecomte I, Martin G, Laplanche A, Lemasle M & Bloquel M (1995) Odour pollution in carcass processing plants. Identification and characterization of malodorous flux. Odours & VOC's J. 1: 39–40

    Google Scholar 

  • Lee SK & Shoda M (1989) Biological deodorization using activated carbon fabric as carrier of microorganisms. J. Ferment. Bioeng. 68: 437–442

    Google Scholar 

  • Maes K (1997) Interactieve effecten bij de biofiltratie van vluchtige verbindingen voorkomend in afvalgassen van composteringsinstallaties. Thesis, Faculty of Agricultural and Applied Biological Sciences, University of Ghent

  • Mansfield LA, Melnyk PB & Richardson GC (1992) Selection and full-scale use of a chelated iron adsorbent for odor control. Wat. Env. Res. 64: 120–127

    Google Scholar 

  • McNeillie A (1984) The use of hydrogen peroxide for odour control. In: Vigneron S, Hermia J & Chaouki J (Eds) Characterization and control of odoriferous pollutants in process industries, (pp. 455–469). Elsevier Science B.V., Amsterdam

    Google Scholar 

  • Mehmood-ul-Hassan (1997) VOC destruction by advanced oxidation and other physical chemical processes. Thesis, Faculty of Agricultural and Applied Biological Sciences, University of Ghent

  • Miller FC & Macauley BJ (1988) Odours arising from mushroom composting: a review. Austr. J. Exp. Agric. 28: 553–560

    Google Scholar 

  • Mocho P, Reboux J & Le Cloirec P (1995) Heating activated carbon by electromagnetic induction: application to the regeneration of carbon loaded with volatile organic compounds. Odours & VOC's J. 1: 107–108

    Google Scholar 

  • Muirhead T, LaFond P & Dennis D (1993) Air handling and scrubber retrofits optimize odor control. Biocycle 3: 68–75

    Google Scholar 

  • Oberthür RC (1992) Geruchsminderung in der Fleishmehlindustrie-Suche nach optimalen Lösungen und Kontrollen. In: Dragt AJ & Van Ham J (Eds) Biotechniques for air pollution abatement and odour control policies, (pp. 167–175). Elsevier, Maastricht

    Google Scholar 

  • Paillard H & Blondeau F (1988) Les nuisances olfactives en assainissement: causes et remèdes. T.S.M.-L'EAU 2: 79–88

    Google Scholar 

  • Phae C-G & Shoda M (1991) A new fungus which degrades hydrogen sulfide, methanethiol, dimethyl sulfide and dimethyl disulfide. Biotech. Letters 13: 375–380

    Google Scholar 

  • Pincince AB (1992) Concepts for minimizing emissions at activated sludge plants. Wat. Sci. Tech. 26: 2417–2420

    Google Scholar 

  • Plas C, Wimmer K, Holubar P, Mattanovich D, Danner H, Jelinek E, Harant H & Braun R (1993) Degradation of carbondisulphide by a Thiobacillus isolate. Appl. Microbiol. Biotechnol. 38: 820–823

    Google Scholar 

  • Poels J, Van Langenhove H, Van Der Biest W & Neukermans G (1987) Evaluation of a rotary drum drier processing pre-dried chicken manure. Biological Waste 19: 3–23

    Google Scholar 

  • Pöhle H & Kliche R (1996) Geruchsstoffemissionen bei der Kompostierung von Bioabfall. Zbl. Hyg. 99: 38–50

    Google Scholar 

  • Pol A, Op den Camp HJM, Mees SGM, Kersten ASH & Van Der Drift C (1994) Isolation of a dimethylsulfide-utilising Hyphomicrobium species and its application in biofiltration of polluted air. Biodegradation 5: 105–112

    Google Scholar 

  • Prokop WH & Bohn HL (1985) Soil bed system for control of rendering plant odors. J.A.P.C.A. 35: 1332–1338

    Google Scholar 

  • Przyjazny A, Janicki W, Chrzanowski W & Staszewski R (1983) Headspace gas chromatographic determination of distribution coefficients of selected organosulphur compounds and their dependence on some parameters. J. Chromatogr. 280: 249–260

    Google Scholar 

  • Revah S, Hinojosa A & Morales V (1994) Air biodesulfurization in process plants. Presented at: Meeting on bioremediation. Organisation for economic co-operation and development (OECD), November 1994.

  • Schamp N & Van Langenhove H (1986) Volatile organic compounds in air. In: Hodgson E (Ed) Reviews in Environmental Toxicology 2, (pp. 251–301). Elsevier, Amsterdam

    Google Scholar 

  • Sereno JD, McGinley CM, Harrison DS & Haug RT (1993) Dewatered sludge storage emissions control using multistage wet scrubbing. Wat. Env. Res. 65: 66–72

    Google Scholar 

  • Smet E, Chasaya G, Van Langenhove H & Verstraete W(1996a) The effect of inoculation and the type of carrier material used on the biofiltration of methyl sulphides. Appl. Microbiol. Biotechnol. 45: 293–298

    Google Scholar 

  • Smet E, Van Langenhove H & Verstraete W (1996b) Long term stability of a biofilter treating dimethyl sulphide. Appl. Microbiol. Biotechnol. 46: 191–196

    Google Scholar 

  • ____ (1997) Isobutyraldehyde as a competitor of the dimethyl sulfide degrading activity in biofilters. Biodegradation 8: 53–59

    Google Scholar 

  • Smet E, Lens P & Van Langenhove H (1998a) Treatment of waste gases contaminated with odorous sulfur compounds. Crit. Rev. Environ. Sci. Technol. 28: 89–117

    Google Scholar 

  • Smet E, Van Langenhove H & De Bo I (1998b) The emission of volatile compounds during the aerobic and the combined anaerobic/aerobic composting of biowaste. Submitted to Atmospheric Environment

  • Smet E, Van Langenhove H & Philips G (1998c) Dolomite as a new microbial carrier material for biofilters degrading dimethyl sulphide. Submitted to Appl. Microbiol. Biotechnol.

  • Smith NA & Kelly DP (1988) Oxidation of carbon disulphide as the sole source of energy for the autotrophic growth of Thiobacillus thioparus TK-m. J. Gen. Microbiol. 134: 3041–3048

    Google Scholar 

  • Tanji Y, Kanagawa T & Mikami E (1989) Removal of dimethyl sulfide, methyl mercaptan, and hydrogen sulfide by immobilized Thiobacillus thioparus TK-m. J. Ferment. Bioeng. 67: 280–285

    Google Scholar 

  • Termonia M, Guns M & Gillard F (1985) Characterization of malodorous volatiles in air using olfactometry and computer assisted capillary-gas chromatography-mass spectrometry. Intern. J. Environ. Anal. Chem. 20: 69–84

    Google Scholar 

  • Thompson JL, Murray CM & Grimes DK (1995) Improving compost odor scrubbing performance. Biocycle 2: 80–86

    Google Scholar 

  • Tichy R., Grotenhuis JTC, Bos P & Lens P (1998) Solid-state reduced sulfur compounds: environmental aspects and bioremediation. Crit. Rev. Environ. Sci. Technol. 28: 1–40

    Google Scholar 

  • Turk A, Mahmood K & Mozaffari J (1993) Activated carbon for air purification in New York city's sewage treatment plants. Wat. Sci. Tech. 27: 121–126

    Google Scholar 

  • Turk A, Sakalis E, Lessuck J, Karamitsos H & Rago O (1989) Ammonia injection enhances capacity of activated carbon for hydrogen sulfide and methyl mercaptan. Environ. Sci. Technol. 23: 1242–1245

    Google Scholar 

  • Valentin FHH (1993) Odour control-recent advances and practical experience. In: Effluent treatment and waste minimisation, (pp 197–208) Symposium Series no 132. Symposium organised by the Yorkshire Branch of the Institution of Chemical Engineers and the Environmental Protection Subject Group, Leeds, UK

  • Van Durme GP, McNamara BF & McGinley CM (1992) Benchscale removal of odor and volatile organic compounds at a composting facility. Wat. Env. Res. 64: 19–27

    Google Scholar 

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Smet, E., Langenhove, H.V. Abatement of volatile organic sulfur compounds in odorous emissions from the bio-industry. Biodegradation 9, 273–284 (1998). https://doi.org/10.1023/A:1008281609966

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