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Original Articles

Emissions and Control of Hydrogen Sulfide at Landfills: A Review

, &
Pages 2043-2083 | Published online: 06 Jul 2015

REFERENCES

  • Abatzoglou, N., and Boivin, S. (2009). A review of biogas purification processes. Biofuels, Bioproducts and Biorefining 45, 42–71.
  • Agency for Toxic Substances and Disease Registry. (2006). Toxicological profile for hydrogen sulfide. Atlanta, GA: ATSDR.
  • Agency for Toxic Substances and Disease Registry. (2008). Health consultation, exposure investigation report for airborne exposures to hydrogen sulfide. Atlanta, GA: ATSDR.
  • Almy, L.H. (1925). A method for the estimation of hydrogen sulfide in proteinaceous food products. Journal of the American Chemical Society 47, 1381–1390.
  • Asakura, H., Matsuto, T., and Inoue, Y. (2010). Adopted technologies and basis for selection at municipal solid waste landfill facilities constructed in recent years in Japan. Waste Management & Research 28, 685–694.
  • Barry, D.L., Smith, R., Gregory, R.G., and Harries, C. (2003). Methane production, emission and control during MSW landfilling. Proceedings of the Ninth International Landfill Symposium, Cagliari, Sardinia, 6-10 October 2003. Paper No. 417.
  • Barton, L.L., and Plunkett, R.M. (2002). Sulfate-reducing bacteria: Environmental and technological aspects. In G. Bitton (Ed.), Encyclopedia of environmental microbiology. New York: Wiley.
  • Baspinar, A.B., Turker, M., Hocalar, A., and Ozturk, I. (2011). Biogas desulphurization at technical scale by lithotrophic denitrification: Integration of sulphide and nitrogen removal. Process Biochemistry 46, 916–922.
  • Bergersen, O., and Haarstad, K. (2008). Metal oxides remove hydrogen sulfide from landfill gas produced from waste mixed with plaster board under wet conditions. Journal of the Air and Waste Management Association 58, 1014–1021.
  • Bergersen, O., and Haarstad, K. (2014). Treating landfill gas hydrogen sulphide with mineral wool waste (MWW) and rod mill waste (RMW). Waste Management 34, 141–147.
  • Bibbero, R.J., and Young, I.G. (1974). Systems approach to air pollution control. New York: Wiley.
  • Boon, A.G. (1995). Septicity in sewers: causes, consequences and containment. Water Science and Technology 31, 237–253.
  • Campagna, D., Kathman, S.J., Pierson, R., Inserra, S.G., Phifer, B.L., Middleton, D.C., Zarus, G.M., and White, M.C. (2003). Ambient hydrogen sulfide, total reduced sulfur, and hopital visits for respiratory diseases in northeast Nebraska, 1998–2000. Journal of Exposure Analysis and Environmental Epidemiology 14, 180–187.
  • Chalvatzaki, E., and Lazaridis, M. (2010). Assessment of air pollutant emissions from the Akrotiri landfill site (Chania, Greece). Waste Management Research 28, 778–788.
  • Chen, J., Chen, T.B., Gao, D., Lei, M., Zheng, G.D., Liu, H.T., Guo, S.L., and Cai, L. (2011). Reducing H2S production by O2 feedback control during large-scale sewage sludge composting. Waste Management 31, 65–70.
  • Christophersen, M., Kjeldsen, P., Holst, H., and Chanton, J. (2001). Lateral gas transport in soil adjacent to an old landfill: Factors governing emissions and methane oxidation. Waste Management & Research 19, 595–612.
  • Çinar, S., Onay, T.T., and Erdinçler, A. (2004). Co-disposal alternatives of various municipal wastewater treatment-plant sludges with refuse. Advances in Environmental Research 8, 477–482.
  • Colledge, M. (2008). Estimating impacts of hydrogen sulfide gas emissions from a construction and demolition debris landfill. Chicago: University of Illinois at Chicago.
  • D’Imporzano, G., Crivelli, F., and Adani, F. (2008). Biological compost stability influences odor molecules production measured by electronic nose during food-waste high-rate composting. Science of the Total Environment 402, 278–284.
  • de la Rosa, D.A., Velasco, A., Rosas, A., and Volke-Sepulveda, T. (2006). Total gaseous mercury and volatile organic compounds measurements at five municipal solid waste disposal sites surrounding the Mexico City Metropolitan Area. Atmospheric Environment 40, 2079–2088.
  • Dewil, R., Baeyens, J., Roels, J., and Van De Steene, B. (2009). Evolution of the total sulphur content in full-scale wastewater sludge treatment. Environmental Engineering Science 26, 867–872.
  • Dincer, F., and Muezzinoglu, A. (2006). Chemical characterization of odors due to some industrial and urban facilities in Izmir, Turkey. Atmospheric Environment 40, 4210–4219.
  • Du, Y., Feng, H., Zhang, K., Hu, L.F., Fang, C.R., Shen, D.S., and Long, Y.Y. (2014). Role of iron in H2S emission behavior during the decomposition of biodegradable substrates in landfill. Journal of Hazardous Materials 272, 36–41.
  • Duangmanee, T. (2009). Micro-aeration for hydrogen sulfide removal from biogas. Iowa State University. Doctor of Philosophy. Paper 10748.
  • Ducom, G., Radu-Tirnoveanu, D., Pascual, C., Benadda, B., and Germain, P. (2009). Biogas–municipal solid waste incinerator bottom ash interactions: Sulphur compounds removal. Journal of Hazardous Materials 166, 1102–1108.
  • Dzaman, K., Vojdas, A., Rapiejko, P., and Jurkiewicz, D. (2009). Taste and smell perception among sewage treatment and landfill workers. International Journal of Occupational Medicine and Environmental Health 22, 227–234.
  • Eckford, R.E., and Fedorak, P.M. (2002). Planktonic nitrate-reducing bacteria and sulfate-reducing bacteria in some Western Canadian oil field waters. Journal of Industrial Microbiology and Biotechnology 29, 83–92.
  • Edwards, S., Alharthi, R., and Ghaly, A.E. (2011). Removal of hydrogen sulfide from water. American Journal of Environmental Sciences 7, 295–305.
  • ElFadel, M., Findikakis, A.N., and Leckie, J.O. (1997). Environmental impacts of solid waste landfilling. Journal of Environmental Management 50, 1–25.
  • Elsayed, Y., Seredych, M., Dallas, A., and Bandosz, T.J. (2009). Desulfurization of air at high and low H2S concentrations. Chemical Engineering Journal 155, 594–602.
  • Estrada, J.M., Kraakman, N.J. R. B., Munoz, R., and Lebrero, R. (2011). A comparative analysis of odour treatment technologies in wastewater treatment plants. Environmental Science & Technology 45, 1100–1106.
  • Eun, S., Reinhart, D.R., Cooper, C.D., Townsend, T.G., and Faour, A. (2007). Hydrogen sulfide flux measurements from construction and demolition debris (C&D) landfills. Waste Management 27, 220–227.
  • Fairweather, R.J., and Barlaz, M.A. (1998). Hydrogen sulfide production during decomposition of landfill inputs. Journal of Environmental Engineering Asce 124, 353–361.
  • Fang, J.J., Yang, N., Cen, D.Y., Shao, L.M., and He, P.J. (2012). Odor compounds from different sources of landfill: Characterization and source identification. Waste Management 32, 1401–1410.
  • Fielder, H.M. P., Poon-King, C.M., Palmer, S.R., Moss, N., and Coleman, G. (2000). Assessment of impact on health of residents living near the Nant-y-Gwyddon landfill site: Retrospective analysis. British Medical Journal 320, 19–22.
  • Flynn, B. (1998). Invisible threat: Odors & landfill gas from C&D Waste. Waste Age 91–97.
  • Font, R., Carratala, A., Edo, M., and Munoz, M. (2010). Distribution of hydrogen sulfide, ammonia and volatile compounds in the ambient air surrounding a landfill facility. Chemical Engineering Transactions, Vol. 23, pp. 225–230. DOI: 10.3303/CET1023038.
  • Gómez, J., and Cantero, D. (2007). Hydrogen sulfide removal from gaseous effluents. In E. Donati and W. Sand (Eds.), Microbial processing of metal sulfides. Amsterdam: Springer.
  • Gurijala, K.R., and Suflita, J.M. (1993). Environmental factors influencing methanogenesis from refuse in landfill samples. Environmental Science and Technology 27, 1176–1181.
  • Hao, O.J. (2003). 28 - Sulphate-reducing bacteria. In Handbook of water and wastewater microbiology(Eds. Mara, D. and Horan, N. J.) (pp. 459–469). London: Academic Press.
  • Hao, O.J., Chen, J.M., Huang, L., and Buglass, R.L. (1996). Sulfate reducing bacteria. Critical Reviews in Environmental Science and Technology 26, 155–187.
  • He, R., Xia, F.-F., Bai, Y., Wang, J., and Shen, D.-S. (2012). Mechanism of H2S removal during landfill stabilization in waste biocover soil, an alterative landfill cover. Journal of Hazardous Materials 217–218, 67–75.
  • He, R., Xia, F.-F., Wang, J., Pan, C.-L., and Fang, C.-R. (2011). Characterization of adsorption removal of hydrogen sulfide by waste biocover soil, an alternative landfill cover. Journal of Hazardous Materials 186, 773–778.
  • Heaney, C.D., Wing, S., Campbell, R.L., Caldwell, D., Hopkins, B., Richardson, D., and Yeatts, K. (2011). Relation between malodor, ambient hydrogen sulfide, and health in a community bordering a landfill. Environmental Research 111, 847–852.
  • Hirano, T., Kurosawa, H., Nakamura, K., and Amano, Y. (1996). Simultaneous removal of hydrogen sulfide and trimethylamine by a bacterial deodorant. Journal of Fermentation and Bioengineering 81, 337–342.
  • Hurst, C., Longhurst, P., Pollard, S., Smith, R., Jefferson, B., and Gronow, J. (2005). Assessment of municipal waste compost as a daily cover material for odour control at landfill sites. Environmental Pollution 135, 171–177.
  • Jacobs, J., Scharff, H., van Arkel, F., and de Gier, C.W. (2003). Odourreduction by aeration prior to excavation. The Ninth Sardinia International Waste Management and Landfill Symposium.
  • Jensen, A.B., and Webb, C. (1995). Treatment of H2S-containing gases: A review of microbiological alternatives. Enzyme and Microbial Technology 17, 2–10.
  • Johnson, B. (1986). Gypsum wallboard creates landfill odor problem. World Wastes 53–54.
  • Kansas Department of Health & Environment. (2010). Hydrogen sulfide exposure summary for Overland Park. Salina, KS: Kansas Department of Health & Environment.
  • Kenton, Y., Xu, Q., Townsend, T.G., Chadik, P., Bitton, G., and Booth, M. (2006). Hydrogen sulfide generation in simulated construction and demolition debris landfills: Impact of waste composition. Journal of the Air and Waste Management Association 56, 1130–1138.
  • Kim, K.-H. (2006). Emissions of reduced sulfur compounds (RSC) as a landfill gas (LFG): A comparative study of young and old landfill facilities. Atmospheric Environment 40, 6567–6578.
  • Kim, K.-H., Choi, Y.J., Jeon, E.C., and Sunwoo, Y. (2005). Characterization of malodorous sulfur compounds in landfill gas. Atmospheric Environment 39, 1103–1112.
  • Kim, K.-H., Choi, Y.J., Oh, S.I., Sa, J.H., Jeon, E.C., and Koo, Y.S. (2006a). Short-term distributions of reduced sulfur compounds in the ambient air surrounding a large landfill facility. Environmental Monitoring and Assessment 121, 343–354.
  • Kim, K.-H., Jeon, E.-C., Choi, Y.-J., and Koo, Y.-S. (2006b). The emission characteristics and the related malodor intensities of gaseous reduced sulfur compounds (RSC) in a large industrial complex. Atmospheric Environment 40, 4478–4490.
  • Kurosawa, H., Endo, S., Hirano, T., Nakamura, K., and Amano, Y. (1997). Stabilization of freeze-dried Thiobacillus thiooxidans cells as a bacterial deodorant for removal of hydrogen sulfide. Journal of Fermentation and Bioengineering 83, 213–215.
  • Lambert, T.W., Goodwin, V.M., Stefani, D., and Strosher, L. (2006). Hydrogen sulfide (H2S) and sour gas effects on the eye: A historical perspective. Science of the Total Environment 367, 1–22.
  • Landaud, S., Helinck, S., and Bonnarme, P. (2008). Formation of volatile sulfur compounds and metabolism of methionine and other sulfur compounds in fermented food. Applied Microbiology and Biotechnology 77, 1191–1205.
  • Lee, S., Xu, Q., Booth, M., Townsend, T.G., Chadik, P., and Bitton, G. (2006). Reduced sulfur compounds in gas from construction and demolition debris landfills. Waste Management 26, 526–533.
  • Li, C.P., Li, G.X., Luo, Y.M., and Li, Y.F. (2008). Ambient air monitoring of Beijing MSW logistics facilities in 2006. Environmental Monitoring and Assessment 146, 243–251.
  • Liamleam, W., and Annachhatre, A.P. (2007). Electron donors for biological sulfate reduction. Biotechnology Advances 25, 452–463.
  • Lin, C.Y., Hesu, P.H., and Yang, D.H. (2001). Removal of hydrogen sulfide gas and landfill leachate treatment using coal bottom ash. Journal of Air and Waste Management Association 51, 939–945.
  • Liu, F., Xu, Q., and Townsend, T.G. (2011). Research on adsorption characteristics of several materials to H2S emitted from landfill. 2011 International Conference on Remote Sensing, Environment and Transportation Engineering (RSETE 2011). Nanjing, China: IEEE.
  • Liu, H., Luo, G.Q., Hu, H.Y., Zhang, Q., Yang, J.K., and Yao, H. (2012). Emission characteristics of nitrogen- and sulfur-containing odorous compounds during different sewage sludge chemical conditioning processes. Journal of Hazardous Materials 235–236, 298–306.
  • Lovley, D.R. (1991). Dissimilatory Fe (III) and Mn (IV) Reduction. Microbiological Reviews 55, 259–287.
  • Lovley, D.R., and Phillips, E.P. (1986). Organic matter mineralization with reduction of ferric iron in anaerobic sediments. Applied and Environmental Microbiology 51, 683–689.
  • McBain, M.C., Warland, J.S., McBride, R.A., and Wagner-Riddle, C. (2005). Micrometeorological measurements of N2O and CH4 emissions from a municipal solid waste landfill. Waste Management & Research 23, 409–419.
  • Mostbauer, P., Lenz, S., and Lechner, P. (2008). MSWI bottom ash for upgrading of biogas and landfill gas. Environmental Technology 29, 757–764.
  • Musson, S.E., Xu, Q., and Townsend, T.G. (2008). Measuring the gypsum content of C&D debris fines. Waste Management 28, 2091–2096.
  • Nam, S., Hur, K.B., and Lee, N.H. (2011). Effects of hydrogen sulfide and siloxane on landfill gas utility facilities. Environmental Engineering Research 16, 159–164.
  • Panza, D., and Belgiorno, V. (2010). Hydrogen sulphide removal from landfill gas. Process Safety and Environmental Protection 88, 420–424.
  • Parker, T., Dottridge, J., and Kelly, S. (2002). Investigation of the composition and emissions of trace components in landfill gas(P1-438/TR). Technical Report. Environment Agency, Bristol, UK.
  • Patidar, S.K., and Tare, V. (2005). Effect of molybdate on methanogenic and sulfidogenic activity of biomass. Bioresource Technology 96, 1215–1222.
  • Peu, P., Picard, S., Diara, A., Girault, R., Béline, F., Bridoux, G., and Dabert, P. (2012). Prediction of hydrogen sulphide production during anaerobic digestion of organic substrates. Bioresource Technology 121, 419–424.
  • Plaza, C., Xu, Q.Y., Townsend, T., Bitton, G., and Booth, M. (2007). Evaluation of alternative landfill cover soils for attenuating hydrogen sulfide from construction and demolition (C&D) debris landfills. Journal of Environmental Management 84, 314–322.
  • Postgate, J.R. (1984). The sulphate reducing bacteria. Cambridge, England: Cambridge University Press.
  • Poulsen, T.G., Christophersen, M., Moldrup, P., and Kjeldsen, P. (2003). Relating landfill gas emissions to atmospheric pressure using numerical modelling and state-space analysis. Waste Management & Research 21, 356–366.
  • Powell, J., Jain, P., Kim, H.D., Townsend, T., and Reinhart, D. (2006). Changes in landfill gas quality as a result of controlled air injection. Environmental Science & Technology 40, 1029–1034.
  • Roychowdhury, S. (1989). Deodorant composition for abating the odor of organic refuse, United States Patent 4816220.
  • Ruth, J.H. (1986). Odor thresholds and irritation levels of several chemical substances: A review. American Industrial Hygiene Association Journal 47, 142–151.
  • Ryckebosch, E., Drouillon, M., and Veruaeren, H. (2011). Techniques for transformation of biogas to biomethane. Biomass Bioenergy 35, 1633–1645.
  • Sadowska-Rociek, A., Kurdziel, M., Szczepaniec-Cieciak, E., Riesenmey, C., Vaillant, H., Batton-Hubert, M., and Piejko, K. (2009). Analysis of odorous compounds at municipal landfill sites. Waste Management & Research 27, 966–975.
  • Saleh, A.M., Macpherson, R., and Miller, J.D. A. (1964). The effect of inhibitors on sulphate reducing bacteria: A compilation. Journal of Applied Microbiology 27, 281–293.
  • Schieder, D., Quicker, P., Schneider, R., Winter, H., Prechtl, S., and Faulstich, M. (2003). Microbiological removal of hydrogen sulfide from biogas by means of a separate biofilter system: experience with technical operation. Water Science and Technology 48, 209–212.
  • Seinfeld, J. (1975). Air pollution: Physical and chemical fundamentals. New York: McGraw-Hill.
  • Selene, C.H., and Chou, J. (2003). Hydrogen sulfide: Human health aspects. Geneva, Switzerland: WHO.
  • Shin, H.-C., Park, J.-W., Park, K., and Song, H.-C. (2002). Removal characteristics of trace compounds of landfill gas by activated carbon adsorption. Environmental Pollution 119, 227–236.
  • Shon, Z.-H., Kim, K.-H., Jeon, E.-C., Kim, M.-Y., Kim, Y.-K., and Song, S.-K. (2005). Photochemistry of reduced sulfur compounds in a landfill environment. Atmospheric Environment 39, 4803–4814.
  • Sironi, S., Capelli, L., Centola, P., Del Rosso, R., and Grande, M.I. (2005). Odour emission factors for assessment and prediction of Italian MSW landfills odour impact. Atmospheric Environment 39, 5387–5394.
  • Smet, E., Lens, P., and Langenhove, H.V. (1998). Treatment of waste gases contaminated with odorous sulfur compounds. Critical Reviews in Environmental Science and Technology 28, 89–117.
  • Snyder, A. (2009). Bacillus amyloliquefaciens strain. Novozymes A/S, Bagsvaerd (DK).
  • Solan, P.J., Dodd, V.A., and Curran, T.P. (2010). Evaluation of the odour reduction potential of alternative cover materials at a commercial landfill. Bioresource Technology 101, 1115–1119.
  • Song, S.K., Shon, Z.H., Kim, K.H., Kim, S.C., Kim, Y.K., and Kim, J.K. (2007). Monitoring of atmospheric reduced sulfur compounds and their oxidation in two coastal landfill areas. Atmospheric Environment 41, 974–988.
  • Syed, M., Soreanu, G., Falletta, P., and Béland, M. (2006). Removal of hydrogen sulfide from gas streams using biological processes - a review. Canadian Biosystems Engineering 18, 2.1–2.14.
  • Tchobanoglous, G., Theisen, H., and Vigil, S. (1993). Integrated solid waste management: Engineering principles and management. New York: McGraw-Hill
  • Termonia, A., and Termonia, M. (1999). Characterisation and on-site monitoring of odorous organic compounds in the environment of a landfill site. International Journal of Environmental Analytical Chemistry 73, 43–57.
  • Theakston, F. (2000). Air quality guidelines for Europe. Copenhagen, Denmark: WHO.
  • Thomas, D., and Surdin-Kerjan, Y. (1997). Metabolism of sulfur amino acids in Saccharomyces cerevisiae. Microbiology and Molecular Biology Reviews 61, 503–532.
  • Thompson, M.A., Kelkar, U.G., and Vickers, J.C. (1995). The treatment of groundwater containing hydrogen sulfide using microfiltration. Desalination 102, 287–291.
  • Tichý, R., Lens, P., Grotenhuis, J.T. C., and Bos, P. (1998). Solid-state reduced sulfur compounds: Environmental aspects and bio-remediation. Critical Reviews in Environmental Science and Technology 28, 1–40.
  • UK Environment Agency. (2010). Guidance on gas treatment technologies for landfill gas engines. Report No. LFTGN06 v2 2010.
  • UK Health Protection Agency. (2011). Impact on health of emissions from landfill sites: Advice from the health protection agency. London: UK Health Protection Agency.
  • U.S. Environmental Protection Agency. (1995). Determination of landfill gas composition and pollutant emission rates at Fresh Kills Landfill. Report No. EPA902-R-95-001a.
  • Varel, V.H. (2002). Livestock manure odor abatement with plant-derived oils and nitrogen conservation with urease inhibitors: A review. Journal of Animal Science 80, E1–E7.
  • Vasarevicius, S.V., S. (2011). Investigation and evaluation of H(2)S emissions from a municipal landfill. Journal of Environmental Engineering and Landscape Management 19, 12–20.
  • Wang, Q., Yamabe, K., Narita, J., Morishita, M., Ohsumi, Y., Kusano, K., Shirai, Y., and Ogawa, H.I. (2001). Suppression of growth of putrefactive and food poisoning bacteria by lactic acid fermentation of kitchen waste. Process Biochemistry 37, 351–357.
  • Watanabe, N., Yamamoto, O., Sakai, M., and Fukuyama, J. (2004). Combustible and incombustible speciation of Cl and S in various components of municipal solid waste. Waste Management 24, 623–632.
  • Widdle, F. (1988). Microbiology and ecology of sulphate- and sulphur-reducing bacteria. In A.J. B. Zehnder (Ed.), Biology of anaerobic microorganisms. New York: Wiley.
  • Winter, G., and Curtin, C. (2012). In situ high throughput method for H2S detection during micro-scale wine fermentation. Journal of Microbiological Methods 91, 165–170.
  • Wu, T., Wang, X., Li, D., and Yi, Z. (2010). Emission of volatile organic sulfur compounds (VOSCs) during aerobic decomposition of food wastes. Atmospheric Environment 44, 5065–5071.
  • Xiao, Y., Wang, S., Wu, D., and Yuan, Q. (2008). Experimental and simulation study of hydrogen sulfide adsorption on impregnated activated carbon under anaerobic conditions. Journal of Hazardous Materials 153, 1193–1200.
  • Xiaoli, C., Xin, Z., Ziyang, L., Shimaoka, T., Nakayama, H., Xianyan, C., and Youcai, Z. (2011). Characteristics of vegetation and its relationship with landfill gas in closed landfill. Biomass and Bioenergy 35, 1295–1301.
  • Xu, Q., Liu, F., Townsend, T.G., Abichou, T., and Chanton, J. (2010a). Tire-derived steel for hydrogen dulfide removal in landfill cover. Practice Periodical of Hazardous, Toxic, and Radioactive Waste Management 14, 211–214.
  • Xu, Q., Townsend, T., and Bitton, G. (2011). Inhibition of hydrogen sulfide generation from disposed gypsum drywall using chemical inhibitors. Journal of Hazardous Materials 191, 204–211.
  • Xu, Q.Y., Townsend, T., and Reinhart, D. (2010b). Attenuation of hydrogen sulfide at construction and demolition debris landfills using alternative cover materials. Waste Management 30, 660–666.
  • Ying, D., Chuanyu, C., Bin, H., Yueen, X., Xuejuan, Z., Yingxu, C., and Weixiang, W. (2012). Characterization and control of odorous gases at a landfill site: A case study in Hangzhou, China. Waste Management 32, 317–326.
  • Zdeb, M., and Pawlowska, M. (2009). An influence of temperature on microbial removal of hydrogen sulphide from biogas. Rocznik Ochrona Srodowiska 11, 1235–1243.
  • Zhang, L., Mendoza, L., Marzorati, M., and Verstraete, W. (2008). Inhibition of sulfide generation by dosing formaldehyde and its derivatives in sewage under anaerobic conditions. Water Science and Technology 57, 915–919.

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