Overview of the SLOPE I and II campaigns: aerosol properties retrieved with lidar and sun-sky photometer measurements

被引:12
|
作者
Antonio Benavent-Oltra, Jose [1 ,2 ,3 ]
Andres Casquero-Vera, Juan [2 ,3 ]
Roman, Roberto [4 ]
Lyamani, Hassan [2 ,3 ]
Perez-Ramirez, Daniel [2 ,3 ]
Jose Granados-Munoz, Maria [2 ,3 ]
Herrera, Milagros [5 ]
Cazorla, Alberto [2 ,3 ]
Titos, Gloria [2 ,3 ]
Ortiz-Amezcua, Pablo [2 ,3 ,6 ]
Esteban Bedoya-Velasquez, Andres [3 ,7 ]
de Arruda Moreira, Gregori [3 ,8 ]
Perez, Noemi [9 ]
Alastuey, Andres [9 ]
Dubovik, Oleg [5 ]
Luis Guerrero-Rascado, Juan [2 ,3 ]
Jose Olmo-Reyes, Francisco [2 ,3 ]
Alados-Arboledas, Lucas [2 ,3 ]
机构
[1] Univ Genoa, Dept Civil Chem & Environm Engn, Genoa, Italy
[2] Univ Granada, Dept Appl Phys, Granada, Spain
[3] IISTA CEAMA, Andalusian Inst Earth Syst Res, Granada, Spain
[4] Univ Valladolid, Grp Atmospher Opt GOA UVa, Valladolid, Spain
[5] Univ Lille, UMR8518, CNRS, Lab Opt Atmospher LOA, Villeneuve Dascq, France
[6] Univ Warsaw, Fac Phys, Inst Geophys, IGFUW, Warsaw, Poland
[7] Off Natl Etud & Rech Aerosp, French Aeorospace Lab, Toulouse, France
[8] Fed Inst Sao Paulo IFSP, Campus Registro, Sao Paulo, Brazil
[9] CSIC, Inst Environm Assessment & Water Res IDAEA, Barcelona, Spain
关键词
OPTICAL-PROPERTIES; BACKSCATTER LIDAR; MINERAL DUST; INVERSION; ALGORITHM; NETWORK; AERONET; REGULARIZATION; EXTINCTION; EARLINET;
D O I
10.5194/acp-21-9269-2021
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The Sierra Nevada Lidar aerOsol Profiling Experiment I and II (SLOPE I and II) campaigns were intended to determine the vertical structure of aerosols by remote sensing instruments and test the various retrieval schemes for obtaining aerosol microphysical and optical properties with in situ measurements. The SLOPE I and II campaigns were developed during the summers of 2016 and 2017, respectively, combining active and passive remote sensing with in situ measurements at stations belonging to the AGORA observatory (Andalusian Global ObseRvatory of the Atmosphere) in the Granada area (Spain). In this work, we use the in situ measurements of these campaigns to evaluate aerosol properties retrieved by the GRASP code (Generalized Retrieval of Atmosphere and Surface Properties) combining lidar and sun-sky photometer measurements. We show an overview of aerosol properties retrieved by GRASP during the SLOPE I and II campaigns. In addition, we evaluate the GRASP retrievals of total aerosol volume concentration (discerning between fine and coarse modes), extinction and scattering coefficients, and for the first time we present an evaluation of the absorption coefficient. The statistical analysis of aerosol optical and microphysical properties, both column-integrated and vertically resolved, from May to July 2016 and 2017 shows a large variability in aerosol load and types. The results show a strong predominance of desert dust particles due to North African intrusions. The vertically resolved analysis denotes a decay of the atmospheric aerosols with an altitude up to 5 km a.s.l. Finally, desert dust and biomass burning events were chosen to show the high potential of GRASP to retrieve vertical profiles of aerosol properties (e.g. absorption coefficient and single scattering albedo) for different aerosol types. The aerosol properties retrieved by GRASP show good agreement with simultaneous in situ measurements (nephelometer, aethalometer, scanning mobility particle sizer, and aerodynamic particle sizer) performed at the Sierra Nevada Station (SNS) in Granada. In general, GRASP overestimates the in situ data at the SNS with a mean difference lower than 6 mu m(3) cm(-3) for volume concentration, and 11 and 2 Mm(-1)for the scattering and absorption coefficients. On the other hand, the comparison of GRASP with airborne measurements also shows an overestimation with mean absolute differences of 14 +/- 10 and 1.2 +/- 1.2 Mm(-1) for the scattering and absorption coefficients, showing a better agreement for the absorption (scattering) coefficient with higher (lower) aerosol optical depth. The potential of GRASP shown in this study will contribute to enhancing the representativeness of the aerosol vertical distribution and provide information for satellite and global model evaluation.
引用
收藏
页码:9269 / 9287
页数:19
相关论文
共 50 条
  • [11] Depolarization ratios retrieved by AERONET sun-sky radiometer data and comparison to depolarization ratios measured with lidar
    Noh, Youngmin
    Muller, Detlef
    Lee, Kyunghwa
    Kim, Kwanchul
    Lee, Kwonho
    Shimizu, Atsushi
    Kim, Sang-Woo
    Sano, Itaru
    Park, Chan Bong
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2017, 17 (10) : 6271 - 6290
  • [12] Lidar, sun photometer and polar nephelometer measurements: Remote sensing of aerosol size distribution properties
    Porter, John
    Bates, David
    Walterspiel, Julia
    IGARSS: 2007 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM, VOLS 1-12: SENSING AND UNDERSTANDING OUR PLANET, 2007, : 5266 - +
  • [13] Accuracy assessments of aerosol optical properties retrieved from Aerosol Robotic Network (AERONET) Sun and sky radiance measurements
    Dubovik, O
    Smirnov, A
    Holben, BN
    King, MD
    Kaufman, YJ
    Eck, TF
    Slutsker, I
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2000, 105 (D8) : 9791 - 9806
  • [14] Study of aerosol structure variability in air basin of an industrial center by a multi-wavelength lidar sounding and sun-sky radiance measurements
    Chaikovsky, A
    Ivanov, A
    Zaitsev, A
    Korol, M
    Hutko, I
    Slesar, A
    Denisov, S
    Osipenko, F
    Dubovik, O
    Holben, B
    Goloub, P
    22ND INTERNATIONAL LASER RADAR CONFERENCE (ILRC 2004), VOLS 1 AND 2, 2004, 561 : 295 - 298
  • [15] Aerosol measurements with a shipborne Sun-sky-lunar photometer and collocated multiwavelength Raman polarization lidar over the Atlantic Ocean
    Yin, Zhenping
    Ansmann, Albert
    Baars, Holger
    Seifert, Patric
    Engelmann, Ronny
    Radenz, Martin
    Jimenez, Cristofer
    Herzog, Alina
    Ohneiser, Kevin
    Hanbuch, Karsten
    Blarel, Luc
    Goloub, Philippe
    Dubois, Gael
    Victori, Stephane
    Maupin, Fabrice
    ATMOSPHERIC MEASUREMENT TECHNIQUES, 2019, 12 (10) : 5685 - 5698
  • [16] Transmissometer versus sun photometer measurements of the aerosol optical properties
    Kusmierczyk-Michulee, Jolanta
    van Eijk, Alexander M. J.
    Moerman, M. M.
    Cohen, L. H.
    de Jong, A.
    Fritz, P.
    ATMOSPHERIC OPTICS: MODELS, MEASUREMENTS, AND TARGET-IN-THE-LOOP PROPAGATION II, 2008, 7090
  • [17] Diurnal and nocturnal aerosol properties by AERONET sun-sky-lunar photometer measurements along four years
    Perrone, Maria Rita
    Lorusso, Antonella
    Romano, Salvatore
    ATMOSPHERIC RESEARCH, 2022, 265
  • [18] Aerosol characteristics over urban Cairo: Seasonal variations as retrieved from Sun photometer measurements
    El-Metwally, M.
    Alfaro, S. C.
    Wahab, M. Abdel
    Chatenet, B.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D14)
  • [19] Mediterranean aerosol typing by integrating three-wavelength lidar and sun photometer measurements
    M. R. Perrone
    P. Burlizzi
    Environmental Science and Pollution Research, 2016, 23 : 14123 - 14146
  • [20] Mediterranean aerosol typing by integrating three-wavelength lidar and sun photometer measurements
    Perrone, M. R.
    Burlizzi, P.
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2016, 23 (14) : 14123 - 14146