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Removal of airborne microorganisms emitted from a wastewater treatment oxidation ditch by adsorption on activated carbon 被引量:11

Removal of airborne microorganisms emitted from a wastewater treatment oxidation ditch by adsorption on activated carbon
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摘要 Bioaerosol emissions from wastewater and wastewater treatment processes are a significant subgroup of atmospheric aerosols. Most previous work has focused on the evaluation of their biological risks. In this study, however, the adsorption method was applied to reduce airborne microorganisms generated from a pilot scale wastewater treatment facility with oxidation ditch. Results showed adsorption on granule activated carbon (GAC) was an efficient method for the purification of airborne microorganisms. The GAC itself had a maximum adsorption capacity of 2217 CFU/g for airborne bacteria and 225 CFU/g for fungi with a flow rate of 1.50 m^3/hr. Over 85% of airborne bacteria and fungi emitted from the oxidation ditch were adsorbed within 80 hr of continuous operation mode. Most of them had a particle size of 0.65-4.7 μm. Those airborne microorganisms with small particle size were apt to be adsorbed. The SEM/EDAX, BET and Boehm's titration methods were applied to analyse the physicochemical characteristics of the GAC. Relationships between GAC surface characteristics and its adsorption performance demonstrated that porous structure, large surface area, and hydrophobicity rendered GAC an effective absorber of airborne microorganisms. Two regenerate methods, ultraviolet irradiation and high pressure vapor, were compared for the regeneration of used activated carbon. High pressure vapor was an effective technique as it totally destroyed the microorganisms adhered to the activated carbon. Microscopic observation was also carried out to investigate original and used adsorbents. Bioaerosol emissions from wastewater and wastewater treatment processes are a significant subgroup of atmospheric aerosols. Most previous work has focused on the evaluation of their biological risks. In this study, however, the adsorption method was applied to reduce airborne microorganisms generated from a pilot scale wastewater treatment facility with oxidation ditch. Results showed adsorption on granule activated carbon (GAC) was an efficient method for the purification of airborne microorganisms. The GAC itself had a maximum adsorption capacity of 2217 CFU/g for airborne bacteria and 225 CFU/g for fungi with a flow rate of 1.50 m^3/hr. Over 85% of airborne bacteria and fungi emitted from the oxidation ditch were adsorbed within 80 hr of continuous operation mode. Most of them had a particle size of 0.65-4.7 μm. Those airborne microorganisms with small particle size were apt to be adsorbed. The SEM/EDAX, BET and Boehm's titration methods were applied to analyse the physicochemical characteristics of the GAC. Relationships between GAC surface characteristics and its adsorption performance demonstrated that porous structure, large surface area, and hydrophobicity rendered GAC an effective absorber of airborne microorganisms. Two regenerate methods, ultraviolet irradiation and high pressure vapor, were compared for the regeneration of used activated carbon. High pressure vapor was an effective technique as it totally destroyed the microorganisms adhered to the activated carbon. Microscopic observation was also carried out to investigate original and used adsorbents.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2011年第5期711-717,共7页 环境科学学报(英文版)
基金 supported by the National Natural Science Foundation of China (No.50921064, 50978249)
关键词 activated carbon ADSORPTION airborne microorganisms oxidation ditch wastewater treatment facility activated carbon adsorption airborne microorganisms oxidation ditch wastewater treatment facility
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  • 1Andersen A A,1958.New sampler for the collection,sizing,and enumeration of viable airborne particles.The Journal of Bacteriology,76:471-484.
  • 2Apilánez I,Gutiérrez A,Díaz M,1998.Effect of surface materials on initial biofilm development.Bioresource Technology,66(3):225-230.
  • 3Bauer H,Fuerhacker M,Zibuschka F,Schmid H,Puxbanm H,2002.Bacteria and fungi in aerosols generated by two different types of wastewater treatment plants.Water Research,36:3965-3970.
  • 4Billmeyer F W,1997.Ultraviolet lamp.In:Encyclopedia of Science and Technology.McGraw-Hill,New York.19-20.
  • 5Bohem H P,1994.Some aspects of the surface chemistry of carbon blacks and other carbons.Carbon,32(5):759-769.
  • 6Brandi G,Sisti M,Amagliani G,2000.Evaluation of the environmental impact of microbial aerosols generated by wastewater treatment plants utilizing different aeration systems.Journal of Applied Microbiology,88:845-852.
  • 7Carducci A,Tozzi E,Rubulotta E,Casini B,Cantiani L,Rovini E et al.,2000.Assessing airborne biological hazard from urban wastewater treatment.Water Research,34:1173-1178.
  • 8Characklis W G,1990.Microbial fouling.In:Biofilms (Characklis W G,Marshall K C,eds.).John Wiley and Sons,New York.523-584.
  • 9Christian K,Veiga M,2004.Fungal biocatalysts in the biofiltration of VOC-polluted air.Journal of Biotechnology,113(1-3):305-319.
  • 10Donlan R M,2002.Biofilms:Microbial life on surfaces.Emerging Infectious Diseases,8(9):881-890.

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