Determination of tropospheric vertical columns of NO2 and aerosol optical properties in a rural setting using MAX-DOAS

被引:36
作者
Halla, J. D. [1 ]
Wagner, T. [2 ]
Beirle, S. [2 ]
Brook, J. R. [3 ]
Hayden, K. L. [3 ]
O'Brien, J. M. [3 ]
Ng, A. [4 ]
Majonis, D. [1 ]
Wenig, M. O. [5 ]
McLaren, R. [1 ]
机构
[1] York Univ, Ctr Atmospher Chem, Toronto, ON M3J 2R7, Canada
[2] Max Planck Inst Chem, Satellite Grp, D-55128 Mainz, Germany
[3] Environm Canada, Air Qual Res Div, Toronto, ON, Canada
[4] Ontario Minist Environm, Toronto, ON, Canada
[5] City U, Sch Energy & Environm, Hong Kong, Hong Kong, Peoples R China
基金
加拿大自然科学与工程研究理事会;
关键词
AIR-MASS-FACTORS; RADIATIVE-TRANSFER; IN-SITU; TRACE GASES; ZENITH-SKY; PROFILE MEASUREMENTS; PARTICULATE MATTER; ABSORPTION; RETRIEVAL; LIDAR;
D O I
10.5194/acp-11-12475-2011
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Multi-AXis Differential Optical Absorption Spectroscopy (MAX-DOAS) measurements were performed in a rural location of southwestern Ontario during the Border Air Quality and Meteorology Study. Slant column densities (SCDs) of NO2 and O-4 were determined using the standard DOAS technique. Using a radiative transfer model and the O-4 SCDs, aerosol optical depths were determined for clear sky conditions and compared to OMI, MODIS, AERONET, and local PM2.5 measurements. This aerosol information was input to a radiative transfer model to calculate NO2 air mass factors, which were fit to the measured NO2 SCDs to determine tropospheric vertical column densities (VCDs) of NO2. The method of determining NO2 VCDs in this way was validated for the first time by comparison to composite VCDs derived from aircraft and ground-based measurements of NO2. The new VCDs were compared to VCDs of NO2 determined via retrievals from the satellite instruments SCIAMACHY and OMI, for overlapping time periods. The satellite-derived VCDs were higher, with a mean bias of +0.5-0.9 x 10(15) molec cm(-2). This last finding is different from previous studies whereby MAX-DOAS geometric VCDs were higher than satellite determinations, albeit for urban areas with higher VCDs. An effective boundary layer height, BLHeff, is defined as the ratio of the tropospheric VCD and the ground level concentration of NO2. Variations of BLHeff can be linked to time of day, source region, stability of the atmosphere, and the presence or absence of elevated NOx sources. In particular, a case study is shown where a high VCD and BLHeff were observed when an elevated industrial plume of NOx and SO2 was fumigated to the surface as a lake breeze impacted the measurement site. High BLHeff values (similar to 1.9 km) were observed during a regional smog event when high winds from the SW and high convection promoted mixing throughout the boundary layer. During this event, the regional line flux of NO2 through the region was estimated to be greater than 112 kg NO2 km(-1) h(-1).
引用
收藏
页码:12475 / 12498
页数:24
相关论文
共 82 条
  • [1] OH formation by HONO photolysis during the BERLIOZ experiment -: art. no. 8247
    Alicke, B
    Geyer, A
    Hofzumahaus, A
    Holland, F
    Konrad, S
    Pätz, HW
    Schäfer, J
    Stutz, J
    Volz-Thomas, A
    Platt, U
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2003, 108 (D4)
  • [2] Retrieval of tropospheric column densities of NO2 from combined SCIAMACHY nadir/limb measurements
    Beirle, S.
    Kuehl, S.
    Pukite, J.
    Wagner, T.
    [J]. ATMOSPHERIC MEASUREMENT TECHNIQUES, 2010, 3 (01) : 283 - 299
  • [3] Intercomparison of SCIAMACHY nitrogen dioxide observations, in situ measurements and air quality modeling results over Western Europe
    Blond, N.
    Boersma, K. F.
    Eskes, H. J.
    van der A, R. J.
    Van Roozendael, M.
    De Smedt, I.
    Bergametti, G.
    Vautard, R.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2007, 112 (D10)
  • [4] BOERSMA KF, 2001, NO2 OMI EOS ALGORITH, P12
  • [5] Measurements of molecular absorption spectra with the SCIAMACHY pre-flight model: instrument characterization and reference data for atmospheric remote-sensing in the 230-2380 nm region
    Bogumil, K
    Orphal, J
    Homann, T
    Voigt, S
    Spietz, P
    Fleischmann, OC
    Vogel, A
    Hartmann, M
    Kromminga, H
    Bovensmann, H
    Frerick, J
    Burrows, JP
    [J]. JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2003, 157 (2-3) : 167 - 184
  • [6] Bovensmann H, 1999, J ATMOS SCI, V56, P127, DOI 10.1175/1520-0469(1999)056<0127:SMOAMM>2.0.CO
  • [7] 2
  • [8] The 2005 and 2006 DANDELIONS NO2 and aerosol intercomparison campaigns
    Brinksma, E. J.
    Pinardi, G.
    Volten, H.
    Braak, R.
    Richter, A.
    Schoenhardt, A.
    van Roozendael, M.
    Fayt, C.
    Hermans, C.
    Dirksen, R. J.
    Vlemmix, T.
    Berkhout, A. J. C.
    Swart, D. P. J.
    Oetjen, H.
    Wittrock, F.
    Wagner, T.
    Ibrahim, O. W.
    de Leeuw, G.
    Moerman, M.
    Curier, R. L.
    Celarier, E. A.
    Cede, A.
    Knap, W. H.
    Veefkind, J. P.
    Eskes, H. J.
    Allaart, M.
    Rothe, R.
    Piters, A. J. M.
    Levelt, P. F.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D16)
  • [9] Algorithm for NO2 vertical column retrieval from the ozone monitoring instrument
    Bucsela, EJ
    Celarier, EA
    Wenig, MO
    Gleason, JF
    Veefkind, JP
    Boersma, KF
    Brinksma, EJ
    [J]. IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2006, 44 (05): : 1245 - 1258
  • [10] Atmospheric remote-sensing reference data from GOME -: 2.: Temperature-dependent absorption cross sections of O3 in the 231-794 nm range
    Burrows, JP
    Richter, A
    Dehn, A
    Deters, B
    Himmelmann, S
    Orphal, J
    [J]. JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 1999, 61 (04) : 509 - 517