Source Journal of CSCD
Source Journal for Chinese Scientific and Technical Papers
Core Journal of RCCSE
Included in JST China
Volume 38 Issue 7
Nov.  2020
Turn off MathJax
Article Contents
LIU Guo-hua, PANG Yu-min, QI Lu, WANG Hong-chen. N2O EMISSION CHARACTERISTICS DURING BIOLOGICAL NITROGEN REMOVAL FROM WASTEWATER IN A SBR SYSTEM[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(7): 51-57. doi: 10.13205/j.hjgc.202007008
Citation: LIU Guo-hua, PANG Yu-min, QI Lu, WANG Hong-chen. N2O EMISSION CHARACTERISTICS DURING BIOLOGICAL NITROGEN REMOVAL FROM WASTEWATER IN A SBR SYSTEM[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(7): 51-57. doi: 10.13205/j.hjgc.202007008

N2O EMISSION CHARACTERISTICS DURING BIOLOGICAL NITROGEN REMOVAL FROM WASTEWATER IN A SBR SYSTEM

doi: 10.13205/j.hjgc.202007008
  • Received Date: 2020-04-05
  • N2O is a typical greenhouse gas, and contributes severely to global warming. The process for biological nitrogen removal from wastewater is considered as an important source of N2O emission. The present study investigated the characteristics and main source of N2O in a SBR system, with an anoxic-aerobic (A/O) running mode. The results showed that N2O emission occurred mainly during the aerobic phase in the A/O SBR system. The maximum N2O emission rate reached 2.02 μg/(min·g), and the cumulative N2O emission during the aerobic phase was 8.2 mg, then the nitrite accumulation concentrate was observed to get the highest value of 7.5 mg/L after 120-minite operation. On the basis of bacterial community analysis, the bacteria in the dominant DGGE bands were identified as Flavobacteria, some of which was found to be aerobic denitrifying bacteria. It was inferred that the accumulation of nitrite might inhibit the activity of nitrous oxide reductase (Nos) from aerobic denitrifying bacteria and lead to N2O emission. The accumulation of nitrite should be avoided or reduced in real biological wastewater treatment process.
  • loading
  • LEVINE J S, ALLARIO F. The global troposphere:biogeochemical cycles, chemistry, and remote sensing[J]. Environmental Monitoring and Assessment, 1982, 1(3):263-306.
    JOEL S. Levine. Water and the Photochemistry of the Troposphere[M]. In:Satellite Sensing of a Cloudy Atmosphere:Observing the Third Planet. Handerson-Sellers A. (ed.), Tayoler & Francis, Ltd., London, 1984, 123-166.
    NODA N, KANEKO M, MIKAMI Y, et al. Effects of SRT and DO on N2O reductase activity in an anoxic-oxic activated sludge system[J]. Water Science and Technology, 2003, 48(11/12):363-370.
    KUENEN G, ROBERTSON L A. Combined nitrificationdenitrification processes[J]. FEMS Microbiology Reviews, 1994, 15(2/3):109-117.
    IPCC. The Scientific Basis, Contribution of Working Group I to the Third Assessment Report of the intergovernmental Panel on Climate Change[M]. Cambridge, UK:Cambridge University Press, 2001.
    FRIJNS J, ROORDA J, MULDER M. Op weg naar een klimaatneutrale waterketen[J]. H2O, 2008,41(10):36-37.
    LAW Y Y, NI B J, LANT P, et al. N2O production rate of an enriched ammonia-oxidising bacteria culture exponentially correlates to its ammonia oxidation rate[J]. Water Research, 2012, 46(10):3409-3419.
    CHUNG Y C, CHUNG M S. BNP test to evaluate the influence of C/N ratio on N2O production in biological denitrification[J]. Water Science and Technology, 2000,42(3):23-27.
    SATOSHI T, MAKIO M, YUZURU K, et al. Effect of salinity on nitrous oxide emission in the biological nitrogen removal process for industrial wastewater[J]. Journal of Hazardous Materials, 2005, 119(1):93-98.
    GAËLLE T, JOSETTE G, GILLES B, et al. Nitrous oxide emissions from secondary activated sludge in nitrifying conditions of urban wastewater treatment plants:effect of oxygenation level[J]. Water Research, 2006, 40(15):2972-2980.
    MARLIES J K, NICO C G T, ROBBERT K, et al. Effect of dynamic process conditions on nitrogen oxides emission from anitrifying culture[J]. Environmental Science & Technology, 2008, 42(2):429-435.
    MARLIES J K, HARDY T, ROBBERT K, et al. Nitrous oxide emission during wastewater treatment[J]. Water Research, 2009, 43(17):4093-4103.
    MARK P, DENNIS D F. 15N kinetic analysis of N2O production by nitrosomonas europaea:an examination of nitrifier denitrification[J]. Applied and Environmental Microbiology, 1985, 49(5):1134-1141.
    PASCAL W, JOACHIM M, ADRIANO J, et al. Mechanisms of N2O production in biological wastewater treatment under nitrifying and denitrifying conditions[J]. Water Research, 2012, 46(4):1027-1037.
    LAW Y Y, YE L, PAN Y T, et al. Nitrous oxide emissions from wastewater treatment processes[J]. Philosophical Transactions of the Royal Society B:Biological Sciences, 2012, 367:1265-1277.
    ASMA A, NOUCEIBA A, FABRICE B, et al. Nitrite effect on nitrous oxide emission from denitrifying activated sludge[J]. Process Biochemistry, 2008, 43(6):683-689.
    PAN Y T, YE L, NI B J, et al. Effect of pH on N2O reduction and accumulation during denitrification by methanol utilizing denitrifiers[J]. Water Research, 2012, 46(15):4832-4840.
    ROMAIN L, RIKKE M, ANNELIES T, et al. Identifying causes for N2O accumulation in a lab-scale sequencing batch reactor performing simultaneous nitrification, denitrification and phosphorus removal[J]. Journal of Biotechnology, 2006, 122(1):62-72.
    YANG Q, LIU X H, PENG C Y, et al. N2O production during nitrogen removal via nitrite from domestic wastewater:main sources and controlmethod[J]. Environmental Science and Technology, 2009, 43(24):9400-9406.
    HU Z, ZHANG J, LI S P, et al. Effect of aeration rate on the emission of N2O in anoxic-aerobic sequencing batch reactors (A/O SBRs)[J]. Journal of Bioscience and Bioengineering, 2010, 109(5):487-491.
    ZHOU J Z, BRUNS M A, TIEDJE J M. DNA Recovery from soils of diverse composition[J]. Applied and Environmental Microbiology, 1996, 62(2):316-322.
    MUYZER G, de WALL E C, UITTERLINDEN A G. Profiling of complex microbial populations by denaturing gradient gel electrophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA[J]. Applied and Environmental Microbiology, 1993, 59(3):695-700.
    TAMURA K, STECHER G, PETERSON D, et al. MEGA6:molecular evolutionary genetics analysis version 6.0[J]. Molecular Biology and Evolution, 2013, 30(12):2725-2729.
    VAN RIJN J, TAL Y, BARAK Y. Influence of volatile fatty acids on nitrite accumulation by a pseudomonas stutzeri strain isolated from a denitrifying fluidized bed reactor[J]. Applied Environmental Microbiology, 1996, 62(7):2615-2620.
    HANAKI K, HONG Z, MATSUO T. Production of nitrous oxide gas during denitrification of wastewater[J]. Water Science and Technology, 1992, 26(5/6):1027-1036.
    ITOKAWA H, HANAKI K, MATSUO T. Nitrous oxide production in high-loading biological nitrogen removal process under low COD/N ratio condition[J]. Water Research, 2001, 35(3):657-664.
    ZHENG H, HANAKI K, MATSUO T. Production of nitrous oxide gas during nitrification of wasterwater[J]. Water Science Technology, 1994, 30(6):133-141.
    ZHOU Y, PIJUAN M, ZENG R J, et al. Free nitrous acid inhibitiononnitrous oxide reduction by a denitrifying-enhanced biological phosphorus removal sludge[J]. Environmental Science and Technology, 2008, 42(22):8260-8265.
    SCHULTHESS R V, WILD D, GUJER W. Nitric and nitrous oxides from denitrifying activated sludge at low oxygen concentration[J]. Water Science and Technology, 1994, 30(6):123-132.
    WRAGE N, VELTHOF G L, BEUSICHEM M L V, et al. Role of nitrifier denitrification in the production of nitrous oxide[J]. Soil Biology & Biochemistry, 2001, 33(12):1723-1732.
    EBERHARD B, INGO S, RALF S, et al. Nitrogen loss caused by denitrifying Nitrosomonas cells using ammonium or hydrogen as electron donors and nitrite as electron acceptor[J]. Archives of Microbiology, 1995, 163(1):16-20.
    JETTEN M S M, STROUS M, DE PAS-SCHOONENAJOS K T, et al. The anaerobic oxidation of ammonium[J]. FEMS Microbiology Reviews, 1999, 22(5):421-437.
    ROEST K, HEILIG H G H J, SMIDT H, et al. Community analysis of a full-scale anaerobic bioreactor treating paper mill wastewater[J]. Systematic & Applied Microbiology, 2005, 28(2):175-185.
    CONNAUGHTON S, COLLINS G, O'FLAHERTY V. Development of microbial community structure and actvity in a high-rate anaerobic bioreactor at 18 degrees C[J]. Water Research, 2006, 40(5):1009-1017.
    SANZ J L. Thorsten Kchling. Molecular biology techniques used in wastewater treatment:an overview[J]. Process Biochemistry, 2007, 42(2):119-133.
    阳丽香. 环境因子对好氧反硝化菌活性及其功能基因表达的影响[D]. 广州:华南师范大学, 2010.
    BERKS B C,BARATTA D, RICHARDSON J. Purification and characterization of a nitrous oxide reductase from Thiosphaera pantotropha-Implications for the mechanism of aerobic nitrous oxide reduction[J]. European Journal of Biochemistry, 1993, 212(2):467-476.
    BAUMANN B, SNOZZI M, ZEHNDER A J, et al. Dynamics of denitrification activity of paracoccus denitrificans in continuous culture during aerobic-anaerobic changes[J]. European Journal of Biochemistry, 1996, 178(15):4367-4374.
    MARC R, JAMES U. Alcaligenes faecalis subsp. phenolicus subsp. nov. a phenol-degrading, denitrifying bacterium isolated from a graywater bioprocessor[J]. Systematic & Applied Microbiology, 2005, 28(5):421-429.
    PATUREAU D, GODON J J, DABERT P, et al. Microvirgula aerodenitrificans gen. nov. sp. nov. a new Gram-negative bacterium exhibiting co-respiration of oxygen and nitrogen oxides up to oxygen-saturated conditions[J]. International Journal of Systematic Bacteriology, 1998, 48(3):775-782.
    巩有奎, 王淑莹, 彭永臻,等. 低氧条件下生物反硝化过程中N2O的产量[J]. 化工学报,2011,62(6):1688-1692.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (581) PDF downloads(22) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return