955
Views
3
CrossRef citations to date
0
Altmetric
Review Articles

Bioelimination of low methane concentrations emitted from wastewater treatment plants: a review

ORCID Icon, ORCID Icon, ORCID Icon, &
Pages 450-467 | Received 16 Jul 2020, Accepted 07 May 2021, Published online: 14 Jul 2021

References

  • Szulejko JE, Kumar P, Deep A, et al. Global warming projections to 2100 using simple CO2 greenhouse gas modeling and comments on CO2 climate sensitivity factor. Atmos Pollut Res. 2017;8(1):136–140.
  • Lane JE. Are the COP21 objectives implementable? BMH. 2016;4(1):86–122.
  • Ménard C, Avalos Ramirez A, Nikiema J, et al. Biofiltration of methane and trace gases from landfills: a review. Environ Rev. 2012;20(1):40–53.
  • EPA. Global anthropogenic non-CO2 greenhouse gas emissions: 1990–2030. Washington, DC: Office of Atmospheric Programs, Climate Change Division, U.S. Environmental Protection Agency; 2012. p. 188.
  • MacKay K, Risk D, Atherton E, et al. Fugitive and vented methane emissions surveying on the Weyburn CO2-EOR field in southeastern Saskatchewan, Canada. Int J Greenh Gas Control. 2019;88:118–123.
  • Ghosh A, Patra PK, Ishijima K, et al. Variations in global methane sources and sinks during 1910–2010. Atmos Chem Phys. 2015;15(5):2595–2612.
  • Loulergue L, Schilt A, Spahni R, et al. Orbital and millennial-scale features of atmospheric CH4 over the past 800,000 years. Nature. 2008;453(7193):383–386.
  • Abboud S, Aschim K, Bagdan B, et al. Potential production of methane from Canadian wastes. Renewable Natural Gas Workshop, Vancouver, BC, Canada: Alberta Innovates-Technology Futures (Alberta Research Council) and Canadian Gas Association; 2010. p. 94.
  • WMO. Greenhouse Gas Bulletin (No. 16). The World Meteorological Organization, Atmospheric Environment Research Division, Science and Innovation Department. Geneva, Switzerland. Available from: https://library.wmo.int/doc_num.php?explnum_id=10437.23. November 2020
  • Le Quéré C, Jackson RB, Jones MW, et al. Temporary reduction in daily global CO2 emissions during the COVID-19 forced confinement. Nat Clim Chang. 2020;10(7):647–653.
  • Gupta D, Singh SK. Greenhouse gas emissions from wastewater treatment plants: a case study of Noida. J Water Sustain. 2012;2(2):131–139.
  • Environmental Commissioner of Ontario. Annual energy conservation progress report, reducing the energy and climate footprint of Ontario’s water use. Toronto, ON, Canada; 2017. p. 146.
  • Du M, Zhu Q, Wang X, et al. Estimates and predictions of methane emissions from wastewater in China from 2000 to 2020. Earth’s Future. 2018;6(2):252–263.
  • Daelman MR, Van Eynde T, van Loosdrecht MC, et al. Effect of process design and operating parameters on aerobic methane oxidation in municipal WWTPs. Water Res. 2014;66:308–319.
  • Environment Canada, Greenhouse Gas Division. National Inventory Report 1990–2017: greenhouse gas sources and sinks in Canada. Canada’s submission to the united nations framework convention on climate change, Part I. Ottawa, ON, Canada; 2019. p. 28–61.
  • Yoshida H, Mønster J, Scheutz C. Plant-integrated measurement of greenhouse gas emissions from a municipal wastewater treatment plant. Water Res. 2014;61:108–118.
  • Daelman MRJ, van Voorthuizen EM, van Dongen LGJM, et al. Methane and nitrous oxide emissions from municipal wastewater treatment – results from a long-term study. Water Sci Technol. 2013;67(10):2350–2355.
  • Long JH, Aziz TN, Francis IIL, et al. Anaerobic co-digestion of fat, oil, and grease (FOG): a review of gas production and process limitations. Process Saf Environ Prot. 2012;90(3):231–245.
  • Craig S. Wastewater biogas power system relies on thermal mass flow meters for optimal performance (online multimedia). Environmental Science and Engineering; 2018. Available from: https://esemag.com/wastewater/wastewater-biogas-power-system/
  • Nikiema J, Brzezinski R, Heitz M. Elimination of methane generated from landfills by biofiltration: a review. Rev Environ Sci Biotechnol. 2007;6(4):261–284.
  • Gómez-Cuervo S, Hernández J, Omil F. Identifying the limitations of conventional biofiltration of diffuse methane emissions at long-term operation. Environ Technol. 2016;37(15):1947–1958.
  • Foley J, Yuan Z, Keller J, et al. N2O and CH4 emission from wastewater collection and treatment systems: state of the science report. London, United Kingdom: Global Water Research Coalition; 2011. p. 77.
  • Spencer AU, Noland SS, Gottlieb LJ. Bathtub fire: an extraordinary burn injury. J Burn Care Res. 2006;27(1):97–98.
  • Liu Y, Ni B-J, Sharma KR, et al. Methane emission from sewers. Sci Total Environ. 2015;524–525:40–51.
  • Campos J, Valenzuela-Heredia D, Pedrouso A, et al. Greenhouse gases emissions from wastewater treatment plants: minimization, treatment and prevention. J Chem. 2016;2016:1–12.
  • Yerushalmi L, Ashrafi O, Haghighat F. Reductions in greenhouse gas (GHG) generation and energy consumption in wastewater treatment plants. Water Sci Technol. 2013;67(5):1159–1164.
  • Listowski A, Ngo H, Guo W, et al. Greenhouse gas (GHG) emissions from urban wastewater system: future assessment framework and methodology. J Water Sustain. 2011;1(1):113–125.
  • Guisasola A, de Haas D, Keller J, et al. Methane formation in sewer systems. Water Res. 2008;42(6–7):1421–1430.
  • Ragothaman A, Anderson WA. Air quality impacts of petroleum refining and petrochemical industries. Environments. 2017;4(3):66.
  • Slack RJ, Gronow JR, Voulvoulis N. Household hazardous waste in municipal landfills: contaminants in leachate. Sci Total Environ. 2005;337(1–3):119–137.
  • Chiriac R, Carre J, Perrodin Y, et al. Characterisation of VOCs emitted by open cells receiving municipal solid waste. J Hazard Mater. 2007;149(2):249–263.
  • Malakar S, Saha PD, Baskaran D, et al. Comparative study of biofiltration process for treatment of VOCs emission from petroleum refinery wastewater – a review. Environ Technol Innov. 2017;8:441–461.
  • Mønster J. Quantifying greenhouse gas emissions from waste treatment facilities (PhD thesis). Kongens Lyngby, Denmark: Technical University of Denmark; 2014.
  • López JC, Quijano G, Souza TS, et al. Biotechnologies for greenhouse gases (CH4, N2O, and CO2) abatement: state of the art and challenges. Appl Microbiol Biotechnol. 2013;97(6):2277–2303.
  • Foley J, Lant PA, Donlon P. Fugitive greenhouse gas emissions from wastewater systems. Water. 2008;38(2):18–23.
  • Muñoz R, Daugulis AJ, Hernández M, et al. Recent advances in two-phase partitioning bioreactors for the treatment of volatile organic compounds. Biotechnol Adv. 2012;30(6):1707–1720.
  • Tata P, Witherspoon J, Lue-Hing C. VOC emissions from wastewater treatment plants: characterization, control and compliance. Boca Raton, USA: CRC Press; 2016.
  • Malhautier L, Khammar N, Bayle S, et al. Biofiltration of volatile organic compounds. Appl Microbiol Biotechnol. 2005;68(1):16–22.
  • Girard M, Nikiema J, Brzezinski R, et al. A review of the environmental pollution originating from the piggery industry and of the available mitigation technologies: towards the simultaneous biofiltration of swine slurry and methane. Can J Civ Eng. 2009;36(12):1946–1957.
  • Limbri H, Gunawan C, Rosche B, et al. Challenges to developing methane biofiltration for coal mine ventilation air: a review. Water Air Soil Poll. 2013;224(6):1566.
  • Melse RW, van der Werf AW. Biofiltration for mitigation of methane emission from animal husbandry. Environ Sci Technol. 2005;39(14):5460–5468.
  • La H, Hettiaratchi JPA, Achari G, et al. Biofiltration of methane. Bioresour Technol. 2018;268:759–772.
  • Eijo-Río E, Petit-Boix A, Villalba G, et al. Municipal sewer networks as sources of nitrous oxide, methane and hydrogen sulphide emissions: a review and case studies. J Environ Chem Eng. 2015;3(3):2084–2094.
  • Crone BC, Garland JL, Sorial GA, et al. Significance of dissolved methane in effluents of anaerobically treated low strength wastewater and potential for recovery as an energy product: a review. Water Res. 2016;104:520–531.
  • Daelman MR, van Voorthuizen EM, van Dongen UG, et al. Methane emission during municipal wastewater treatment. Water Res. 2012;46(11):3657–3670.
  • Foley J, Yuan Z, Lant P. Dissolved methane in rising main sewer systems: field measurements and simple model development for estimating greenhouse gas emissions. Water Sci Technol. 2009;60(11):2963–2971.
  • Short MD, Daikeler A, Wallis K, et al. Dissolved methane in the influent of three Australian wastewater treatment plants fed by gravity sewers. Sci Total Environ. 2017;599–600:85–93.
  • Masuda S, Suzuki S, Sano I, et al. The seasonal variation of emission of greenhouse gases from a full-scale sewage treatment plant. Chemosphere. 2015;140:167–173.
  • Maja M. Wastewater treatment plant monitors its greenhouse gas emissions (online multimendia). Helsinki, Finland: Environmental and Science Engineering; 2018. Available from: https://esemag.com/wastewater/wastewater-treatment-plant-monitors-its-ghg-emissions/
  • Wang J, Zhang J, Xie H, et al. Methane emissions from a full-scale A/A/O wastewater treatment plant. Bioresour Technol. 2011;102(9):5479–5485.
  • Czepiel PM, Crill PM, Harriss RC. Methane emissions from municipal wastewater treatment processes. Environ Sci Technol. 1993;27(12):2472–2477.
  • Zhang X, Yan S, Tyagi R, et al. Estimation and reduction of GHG emissions in wastewater/sludge treatment and management. In: Climate change modeling, mitigation, and adaptation. Reston, VA: American Society of Civil Engineers (ASCE). 2013;570–599.
  • Rezakazemi M, Maghami M, Mohammadi T. Wastewaters treatment containing phenol and ammonium using aerobic submerged membrane bioreactor. Chem Cent J. 2018;12(1):79.
  • Rezakazemi M, Shirazian S, Ashrafizadeh SN. Simulation of ammonia removal from industrial wastewater streams by means of a hollow-fiber membrane contactor. Desalination. 2012;285:383–392.
  • Azimi A, Azari A, Rezakazemi M, et al. Removal of heavy metals from industrial wastewaters: a review. ChemBioEng Rev. 2017;4(1):37–59.
  • Battimelli A, Torrijos M, Moletta R, et al. Slaughterhouse fatty waste saponification to increase biogas yield. Bioresour Technol. 2010;101(10):3388–3393.
  • Davidsson Å, Lövstedt C, la Cour Jansen J, et al. Co-digestion of grease trap sludge and sewage sludge. Waste Manag. 2008;28(6):986–992.
  • Prazeres AR, Carvalho F, Rivas J. Cheese whey management: a review. J Environ Manage. 2012;110:48–68.
  • FAO. Climate change and the global dairy cattle sector: The role of the dairy sector in a low-carbon future. Rome, Italy: The Food and Agriculture Organization of the United Nations and Global Dairy Platform Inc.; 2019.
  • Buelna G, Dubé R, Turgeon N. Pig manure treatment by organic bed biofiltration. Desalination. 2008;231(1–3):297–304.
  • Glaz P, Bartosiewicz M, Laurion I, et al. Greenhouse gas emissions from waste stabilisation ponds in Western Australia and Quebec (Canada). Water Res. 2016;101:64–74.
  • Liu Y. Measurement and understanding of methane emission from sewers (PhD thesis). Australia: University of Queensland; 2015.
  • Chaosakul T, Koottatep T, Polprasert C. A model for methane production in sewers. J Environ Sci Health A Tox Hazard Subst Environ Eng. 2014;49(11):1316–1321.
  • Sharma K, Ganigue R, Yuan Z. pH dynamics in sewers and its modeling. Water Res. 2013;47(16):6086–6096.
  • Foley J, Yuan Z, Keller J, et al. N2O and CH4 emission from wastewater collection and treatment systems: state of the science report and technical report. London, United Kingdom: Global Water Research Coalition; 2015. p. 221.
  • Liu Y, Sharma KR, Murthy S, et al. On-line monitoring of methane in sewer air. Sci Rep. 2014;4:6637.
  • Liu Y, Sharma KR, Fluggen M, et al. Online dissolved methane and total dissolved sulfide measurement in sewers. Water Res. 2015;68:109–118.
  • Phillips NG, Ackley R, Crosson ER, et al. Mapping urban pipeline leaks: methane leaks across Boston. Environ Pollut. 2013;173:1–4.
  • Willis J, Fillmore L, Shah A, et al. Quantifying methane evolution from sewers: results from WERF/DeKalb phase 2 – continuous monitoring. 84th Annual Water Environment Federation Technical Exhibition and Conference (WEFTEC 2011). Los Angeles, California, USA. 15–19 October 2011.
  • Kennes C, Rene ER, Veiga MC. Bioprocesses for air pollution control. J Chem Technol Biotechnol. 2009;84(10):1419–1436.
  • Kennes C, Veiga MC. Bioreactors for waste gas treatment. Dordrecht, The Netherlands: Kluwer Academic Publishers; 2001.
  • Rocha-Rios J, Bordel S, Hernández S, et al. Methane degradation in two-phase partition bioreactors. Chem Eng J. 2009;152(1):289–292.
  • Avalos Ramirez A, Jones JP, Heitz M. Methane treatment in biotrickling filters packed with inert materials in presence of a non‐ionic surfactant. J Chem Technol Biotechnol. 2012;87(6):848–853.
  • Cáceres M, Dorado AD, Gentina JC, et al. Oxidation of methane in biotrickling filters inoculated with methanotrophic bacteria. Environ Sci Pollut Res Int. 2017;24(33):25702–25711.
  • Lebrero R, Hernández L, Pérez R, et al. Two-liquid phase partitioning biotrickling filters for methane abatement: exploring the potential of hydrophobic methanotrophs. J Environ Manage. 2015;151:124–131.
  • Canadian Pork Council. Demonstration project on a commercial farm of a technology that capture and oxidize methane from manure storage facilities. Greenhouse gas mitigation program, final project report. 2006.
  • Rene ER, Veiga MC, Kennes C. Combined biological and physicochemical waste-gas cleaning techniques. J Environ Sci Health A Tox Hazard Subst Environ Eng. 2012;47(7):920–939.
  • Zhu HW, Tao XX, Leng YW, et al. Effects of nitrogen and phosphorus on the filtration of coal mine ventilation methane with biotrickling filters. Chem J Chinese U. 2015;29(2):458–464.
  • Kennes C, Thalasso F. Review: waste gas biotreatment technology. J Chem Technol Biotechnol. 1998;72(4):303–319.
  • Burgess JE, Parsons SA, Stuetz RM. Developments in odour control and waste gas treatment biotechnology: a review. Biotechnol Adv. 2001;19(1):35–63.
  • Duan Z, Mao S. A thermodynamic model for calculating methane solubility, density and gas phase composition of methane-bearing aqueous fluids from 273 to 523K and from 1 to 2000bar. Geochim Cosmochim Acta. 2006;70(13):3369–3386.
  • Balasubramanian P, Philip L, Bhallamudi SM. Biotrickling filtration of VOC emissions from pharmaceutical industries. Chem Eng J. 2012;209:102–112.
  • Van Groenestijn JW. Bioscrubbers. Bioreactors for waste gas treatment. Dordrecht, The Netherlands: Kluwer Academic Publishers; 2001. p. 133–162.
  • Muñoz R, Arriaga S, Hernández S, et al. Enhanced hexane biodegradation in a two phase partitioning bioreactor: overcoming pollutant transport limitations. Process Biochem. 2006;41(7):1614–1619.
  • Daugulis AJ, Boudreau NG. Removal and destruction of high concentrations of gaseous toluene in a two-phase partitioning bioreactor by Alcaligenes xylosoxidans. Biotechnol Lett. 2003;25(17):1421–1424.
  • Boojari MA, Zamir SM, Shojaosadati SA. Transient-state strategies for the removal of toluene vapor in a two-liquid phase biotrickling filter: experimental study and neural network analysis. Process Saf Environ Prot. 2019;121:184–193.
  • Davidson CT, Daugulis AJ. The treatment of gaseous benzene by two-phase partitioning bioreactors: a high performance alternative to the use of biofilters. Appl Microbiol Biotechnol. 2003;62(2–3):297–301.
  • Arriaga S, Muñoz R, Hernández S, et al. Gaseous hexane biodegradation by Fusarium solani in two liquid phase packed-bed and stirred-tank bioreactors. Environ Sci Technol. 2006;40(7):2390–2395.
  • Hernández M, Quijano G, Muñoz R. Key role of microbial characteristics on the performance of VOC biodegradation in two-liquid phase bioreactors. Environ Sci Technol. 2012;46(7):4059–4066.
  • Yousefinejad A, Zamir SM, Nosrati M. Fungal elimination of toluene vapor in one-and two-liquid phase biotrickling filters: effects of inlet concentration, operating temperature, and peroxidase enzyme activity. J Environ Manage. 2019;251:109554.
  • Zamir SM, Babatabar S, Shojaosadati SA. Styrene vapor biodegradation in single-and two-liquid phase biotrickling filters using Ralstonia eutropha. Chem Eng J. 2015;268:21–27.
  • Rene ER, Veiga MC, Kennes C. Performance evaluation and neural modeling of gas-phase styrene removal in one- and two-liquid phase suspended-growth bioreactors. Ind Eng Chem Res. 2011;50(10):6485–6495.
  • Djeribi R, Dezenclos T, Pauss A, et al. Removal of styrene from waste gas using a biological trickling filter. Eng Life Sci. 2005;5(5):450–457.
  • Bailón L, Nikolausz M, Kästner M, et al. Removal of dichloromethane from waste gases in one- and two-liquid-phase stirred tank bioreactors and biotrickling filters. Water Res. 2009;43(1):11–20.
  • Veillette M, Avalos Ramirez A, Heitz M. Biofiltration of air polluted with methane at concentration levels similar to swine slurry emissions: influence of ammonium concentration. J Environ Sci Health A Tox Hazard Subst Environ Eng. 2012;47(7):1053–1064.
  • Girard M, Avalos Ramirez A, Buelna G, et al. Biofiltration of methane at low concentrations representative of the piggery industry—influence of the methane and nitrogen concentrations. Chem Eng J. 2011;168(1):151–158.
  • Brandt EMF, Duarte FV, Vieira JPR, et al. The use of novel packing material for improving methane oxidation in biofilters. J Environ Manage. 2016;182:412–420.
  • Berger J, Fornés L, Ott C, et al. Methane oxidation in a landfill cover with capillary barrier. Waste Manag. 2005;25(4):369–373.
  • Gebert J, Groengroeft A. Passive landfill gas emission – influence of atmospheric pressure and implications for the operation of methane-oxidising biofilters. Waste Manag. 2006;26(3):245–251.
  • Gebert J, Gröngröft A. Performance of a passively vented field-scale biofilter for the microbial oxidation of landfill methane. Waste Manag. 2006;26(4):399–407.
  • Menard C, Avalos Ramirez A, Nikiema J, et al. Analysis of the effects of temperature, the amount of nutrient solution and the carbon dioxide concentration on methane biofiltration. Int J Sdp. 2011;6(3):312–324.
  • Limbri H, Gunawan C, Thomas T, et al. Coal-packed methane biofilter for mitigation of green house gas emissions from coal mine ventilation air. PLOS One. 2014;9(4):e94641.
  • Hernández J, Gómez-Cuervo S, Omil F. EPS and SMP as stability indicators during the biofiltration of diffuse methane emissions. Water Air Soil Poll. 2015;226(10):343.
  • Ferdowsi M, Veillette M, Avalos Ramirez A, et al. Performance evaluation of a methane biofilter under steady state, transient state and starvation conditions. Water Air Soil Poll. 2016;227(6):168.
  • Lebrero R, López JC, Lehtinen I, et al. Exploring the potential of fungi for methane abatement: performance evaluation of a fungal-bacterial biofilter. Chemosphere. 2016;144:97–106.
  • Huete A, de Los Cobos-Vasconcelos D, Gómez-Borraz T, et al. Control of dissolved CH4 in a municipal UASB reactor effluent by means of a desorption – biofiltration arrangement. J Environ Manage. 2018;216:383–391.
  • La H, Hettiaratchi JPA, Achari G, et al. Biofiltration of methane using hybrid mixtures of biochar, lava rock and compost. Environ Pollut. 2018;241:45–54.
  • Khabiri B, Ferdowsi M, Buelna G, et al. ‏Methane biofiltration under different strategies of nutrient solution addition. Atmos Pollut Res. 2020;11(1):85–93.
  • Rene ER, Jin Y, Veiga MC, et al. Two‐stage gas‐phase bioreactor for the combined removal of hydrogen sulphide, methanol and α‐pinene. Environ Technol. 2009;30(12):1261–1272.
  • Devinny J, Chitwood D. Two-stage biofiltration of sulfides and VOCs from wastewater treatment plants. Water Sci Technol. 2000;42(5–6):411–418.
  • Hatamoto M, Yamamoto H, Kindaichi T, et al. Biological oxidation of dissolved methane in effluents from anaerobic reactors using a down-flow hanging sponge reactor. Water Res. 2010;44(5):1409–1418.
  • Matsuura N, Hatamoto M, Sumino H, et al. Closed DHS system to prevent dissolved methane emissions as greenhouse gas in anaerobic wastewater treatment by its recovery and biological oxidation. Water Sci Technol. 2010;61(9):2407–2415.
  • Van der Ha D, Bundervoet B, Verstraete W, et al. A sustainable, carbon neutral methane oxidation by a partnership of methane oxidizing communities and microalgae. Water Res. 2011;45(9):2845–2854.
  • Noyola A, Paredes M, Güereca L, et al. Methane correction factors for estimating emissions from aerobic wastewater treatment facilities based on field data in Mexico and on literature review. Sci Total Environ. 2018;639:84–91.
  • Khabiri B, Ferdowsi M, Buelna G, et al. Simultaneous biodegradation of methane and styrene in biofilters packed with inorganic supports: experimental and macrokinetic study. Chemosphere. 2020;252:126492.
  • Ferdowsi M, Avalos Ramirez A, Jones JP, et al. Elimination of mass transfer and kinetic limited organic pollutants in biofilters: a review. Int Biodeterior Biodegrad. 2017;119:336–348.
  • Girard M, Viens P, Avalos Ramirez A, et al. Simultaneous treatment of methane and swine slurry by biofiltration. J Chem Technol Biotechnol. 2012;87(5):697–704.
  • Hanson RS, Hanson TE. Methanotrophic bacteria. Microbiol Rev. 1996;60(2):439–471.
  • Hettiaratchi JPA, Stein VB. Methanobiofilters (MBFs) and landfill cover systems for CH4 emission mitigation. 17th International Conference on Solid Waste Technology and Management; 2001 Oct. 20–24; Philadelphia, PA, USA. 2001.
  • Henckel T, Roslev P, Conrad R. Effects of O2 and CH4 on presence and activity of the indigenous methanotrophic community in rice field soil. Environ Microbiol. 2000;2(6):666–679.
  • Ferdowsi M, Avalos Ramirez A, Jones JP, et al. Steady state and dynamic behaviors of a methane biofilter under periodic addition of ethanol vapors. J Environ Manage. 2017;197:106–113.
  • Sly L, Bryant L, Cox J, et al. Development of a biofilter for the removal of methane from coal mine ventilation atmospheres. Appl Microbiol Biotechnol. 1993;39(3):400–404.
  • Nikiema J, Heitz M. The influence of the gas flow rate during methane biofiltration on an inorganic packing material. Can J Chem Eng. 2009;87(1):136–142.
  • Rene ER, Veiga MC, Kennes C. Air pollution prevention and control: bioreactors and bioenergy. Chichester: John Wiley & Sons; 2013. p. 57–119.
  • Rene ER, Montes M, Veiga MC, et al. Styrene removal from polluted air in one and two-liquid phase biotrickling filter: steady and transient-state performance and pressure drop control. Bioresour Technol. 2011;102(13):6791–6800.
  • Darracq G, Couvert A, Couriol C, et al. Removal of hydrophobic volatile organic compounds in an integrated process coupling absorption and biodegradation-selection of an organic liquid phase. Water Air Soil Pollut. 2012;223(8):4969–4997.
  • Mendoza J, Veiga MC, Kennes C. Biofiltration of waste gases in a reactor with a split‐feed. J Chem Technol Biotechnol. 2003;78(6):703–708.
  • Estrada JM, Quijano G, Lebrero R, et al. Step-feed biofiltration: a low cost alternative configuration for off-gas treatment. Water Res. 2013;47(13):4312–4321.
  • Estrada JM, Lebrero R, Quijano G, et al. Methane abatement in a gas-recycling biotrickling filter: evaluating innovative operational strategies to overcome mass transfer limitations. Chem Eng J. 2014;253:385–393.
  • Nikiema J. Attenuation of greenhouse gas emissions by means of methane biofiltration: optimization of the operating parameters PhD thesis. Sherbrooke (QC) Canada: Université de Sherbrooke; 2008.
  • Le Mer J, Roger P. Production, oxidation, emission and consumption of methane by soils: a review. Eur J Soil Biol. 2001;37(1):25–50.
  • Jin Y, Guo L, Veiga MC, et al. Fungal biofiltration of alpha-pinene: effects of temperature, relative humidity, and transient loads. Biotechnol Bioeng. 2007;96(3):433–443.
  • Dumont E, Hamon L, Lagadec S, et al. NH3 biofiltration of piggery air. J Environ Manage. 2014;140:26–32.
  • Lisovitskaya O, Lebed-Sharlevich I, Mozharova N, et al. Efficiency of methane biotransformation of soil and soil-like biofilters in Moscow. J Soils Sediments. 2015;15(8):1764–1770.
  • Gebert J, Groengroeft A, Miehlich G. Kinetics of microbial landfill methane oxidation in biofilters. Waste Manage. 2003;23(7):609–619.
  • Kraakman NJ, Rocha-Rios J, van Loosdrecht MC. Review of mass transfer aspects for biological gas treatment. Appl Microbiol Biotechnol. 2011;91(4):873–886.
  • Park S, Brown KW, Thomas JC. The effect of various environmental and design parameters on methane oxidation in a model biofilter. Waste Manag Res. 2002;20(5):434–444.
  • Delhoménie MC, Heitz M. Biofiltration of air: a review. Crit Rev Biotechnol. 2005;25(1–2):53–72.
  • Reay DS, Nedwell DB, McNamara N. Physical determinants of methane oxidation capacity in a temperate soil. Water Air Soil Pollut Focus. 2001;1(5/6):401–414.
  • Chakravorty RN, Forrester PI, editors. Application of biotechnology for methane control in coal mines. Second US Mine Ventilation Symposium. Reno, NV, USA; 1985.
  • Lu C, Lin M-R, Chu C. Effects of pH, moisture, and flow pattern on trickle-bed air biofilter performance for BTEX removal. Adv Environ Res. 2002;6(2):99–106.
  • Lakhouit A, Schirmer WN, Johnson TR, et al. Evaluation of the efficiency of an experimental biocover to reduce BTEX emissions from landfill biogas. Chemosphere. 2014;97:98–101.
  • Hunt MJ, Borden RC, Barlaz MA. Determining anaerobic BTEX decay rates in a contaminated aquifer. J Hydrol Eng. 1998;3(4):285–293.
  • Nikiema J, Bibeau L, Lavoie J, et al. Biofiltration of methane: an experimental study. Chem Eng J. 2005;113(2–3):111–117.
  • Nikiema J, Girard M, Brzezinski R, et al. Biofiltration of methane using an inorganic filter bed: influence of inlet load and nitrogen concentration. Can J Civ Eng. 2009;36(12):1903–1910.
  • Hilger HA, Wollum AG, Barlaz MA. Landfill methane oxidation response to vegetation, fertilization, and liming. J Environ Qual. 2000;29(1):324–334.
  • Veillette M, Viens P, Avalos Ramirez A, et al. Effect of ammonium concentration on microbial population and performance of a biofilter treating air polluted with methane. Chem Eng J. 2011;171(3):1114–1123.
  • Ryu HW, Cho K-S, Chung DJ. Relationships between biomass, pressure drop, and performance in a polyurethane biofilter. Bioresour Technol. 2010;101(6):1745–1751.
  • Hood MC, Shah SB, Kolar P, et al. Biofiltration of ammonia and GHGs from swine gestation barn pit exhaust. Trans ASABE. 2015;58(3):771–782.
  • Barcón T, Hernández J, Gómez-Cuervo S, et al. Characterization and biological abatement of diffuse methane emissions and odour in an innovative wastewater treatment plant. Environ Technol. 2015;36(13–16):2105–2114.
  • Fernandez JMG, Buntner D, Sanchez AS, et al., inventors; Universidade de Santiago de Compostela, assignee. Integrated system of a methanogenic anaerobic reactor and membrane bioreactor for the elimination of organic material and nitrogen from wastewater, U.S. Patent. Spain. 2014.
  • Davoli E, Gangai M, Morselli L, et al. Characterisation of odorants emissions from landfills by SPME and GC/MS. Chemosphere. 2003;51(5):357–368.
  • Ferdowsi M, Desrochers M, Jones JP, et al. Moving from alcohol to methane biofilters: an experimental study on biofilters performance and carbon distribution. J Chem Technol Biotechnol. 2019;94(10):3315–3324.
  • Ménard C, Avalos Ramirez A, Heitz M. Kinetics of simultaneous methane and toluene biofiltration in an inert packed bed. J Chem Technol Biotechnol. 2014;89(4):597–602.
  • Dincer F, Odabasi M, Muezzinoglu A. Chemical characterization of odorous gases at a landfill site by gas chromatography–mass spectrometry. J Chromatogr A. 2006;1122(1–2):222–229.
  • Lackey LW, Gamble JR, Boles JL. Bench-scale evaluation of a biofiltration system used to mitigate trichloroethylene contaminated air streams. Adv Environ Res. 2002;7(1):97–104.
  • Ozdemir C, Dursun S, Karatas M, et al. Removal of trichloroethylene (TCE) in up flow anaerobic sludge blanket reactors (UASB). Biotechnol Biotechnol Equip. 2007;21(1):107–112.
  • Kim Y, Hyun K. Performance assessment on combined process of the oxidation and biological activated carbon filtration for removal of chlorinated volatile organic carbons from river water. KSCE J Civ Eng. 2018;22(1):46–53.
  • Ménard C, Avalos Ramirez A, Nikiema J, et al. Effect of trace gases, toluene and chlorobenzene, on methane biofiltration: an experimental study. Chem Eng J. 2012;204–206:8–15.
  • Alvarez-Cohen L, Speitel GE. Kinetics of aerobic cometabolism of chlorinated solvents. Biodegradation. 2001;12(2):105–126.

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.