Biotreatment of hydrogen sulfide- and ammonia-containing waste gases by fluidized bed bioreactor

被引:27
|
作者
Chung, YC [1 ]
Huang, CP [1 ]
Liu, CH [1 ]
Bai, HL [1 ]
机构
[1] Natl Chiao Tung Univ, Inst Environm Engn, Hsinchu, Taiwan
关键词
D O I
10.1080/10473289.2001.10464265
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Gas mixtures of H2S and NH3 are the focus of this study of research concerning gases generated from animal husbandry and treatments of anaerobic wastewater lagoons. A heterotrophic microflora (a mixture of Pseudomonas putida for H2S and Arthrobacter oxydans for NH3) was immobilized with Ca-alginate and packed into a fluidized bed reactor to simultaneously decompose H2S and NH3. This bioreactor was continuously supplied with H2S and NH3 separately or together at various ratios. The removal efficiency, removal rate, and metabolic product of the bioreactor were studied. The results showed that the efficiency remained above 95% when the inlet H2S concentration was below 30 ppm at 36 L/hr. Furthermore, the apparent maximum removal and the apparent half-saturation constant were 7.0 x 10(-8) gS/cell/day and 76.2 ppm, respectively, in this study. The element sulfur as a main product prevented acidification of the biofilter, which maintained the stability of the operation. As for NH3, the greater than 90% removal rate was achieved as long as the inlet concentration was controlled below 100 ppm at a flow rate of 27 L/hr. In the NH3 inlet, the apparent maximum removal and the apparent half-saturation constant were 1.88 x 10(-6) g-N/cell/day and 30.5 ppm, respectively. Kinetic analysis showed that 60 ppm of NH3 significantly suppressed the H2S removal by Pseudomonas putida, but H2S in the range of 5-60 ppm did not affect NH3 removal by Arthrobacter oxydans. Results from bioaerosol analysis in the bioreactor suggest that the co-immobilized cell technique applied for gas removal creates less environmental impact.
引用
收藏
页码:163 / 172
页数:10
相关论文
共 50 条
  • [31] BIOLOGICAL REDUCTION OF NITRATE WASTE-WATER USING A FLUIDIZED-BED BIOREACTOR
    PITT, WW
    HANCHER, CW
    PATTON, BD
    CIM BULLETIN, 1980, 73 (819): : 161 - 170
  • [32] Complete nitrogen removal from waste and drinking water in a fluidized-bed bioreactor
    Csikor, Z
    Czako, L
    Mihaltz, P
    Hollo, J
    FOOD SCIENCE AND TECHNOLOGY INTERNATIONAL, 1996, 2 (03) : 165 - 171
  • [33] UTILIZATION OF HYDROGEN SULFIDE-CONTAINING REFINERY FLARE GASES
    Jexenov, M. K.
    Ismagilov, F. R.
    Akhmetov, S. M.
    Diarov, M.
    Bektay, Y. K.
    NEWS OF THE NATIONAL ACADEMY OF SCIENCES OF THE REPUBLIC OF KAZAKHSTAN-SERIES CHEMISTRY AND TECHNOLOGY, 2020, (05): : 64 - 70
  • [34] Detection of traces of hydrogen sulfide in SO(2)-containing gases
    Fischer, J.
    ANGEWANDTE CHEMIE, 1943, 56 (43-44): : 301 - 303
  • [35] Variant of oxidative utilization of hydrogen sulfide-containing gases
    Ismagilov, FR
    Gainullina, ZA
    Safin, RR
    Plechev, AV
    Mukhametzyanov, IZ
    Ibragimov, IG
    CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2001, 37 (02) : 81 - 85
  • [36] A version of oxidative utilization of hydrogen sulfide-containing gases
    Ismagilov, F.R.
    Gajnullina, Z.A.
    Safin, R.R.
    Plechev, A.V.
    Mukhametzyanov, I.Z.
    Ibragimov, I.G.
    Khimiya i Tekhnologiya Topliv i Masel, 2001, (02): : 10 - 12
  • [37] Variant of oxidative utilization of hydrogen sulfide-containing gases
    Ismagilov F.R.
    Gainullina Z.A.
    Safin R.R.
    Plechev A.V.
    Mukhametzyanov I.Z.
    Ibragimov I.G.
    Chemistry and Technology of Fuels and Oils, 2001, 37 (2) : 81 - 85
  • [38] DETERMINATION OF HYDROGEN SULFIDE IN POLYSULFIDE-CONTAINING HYDROCARBON GASES
    GARBALINSKII, VA
    INDUSTRIAL LABORATORY, 1959, 25 (06): : 706 - 707
  • [39] Process and plant for the recovery of sour gases containing hydrogen sulfide
    Fakhriev, A.M.
    Kashevarov, L.A.
    Latypova, M.M.
    Mazgarov, A.M.
    Chemical and Petroleum Engineering, 1988, 24 (04) : 191 - 193
  • [40] Modeling of organic shock loading in a fluidized-bed bioreactor containing sorbent particles
    Penas, Francisco J.
    Sevillano, Xabier
    Penas, Mario, I
    BIOCHEMICAL ENGINEERING JOURNAL, 2019, 151