Optical properties of urban aerosols in the region Bratislava-Vienna-II: Comparisons and results

被引:12
作者
Kocifaj, M [1 ]
Horvath, H
Hrvol', J
机构
[1] Univ Vienna, Inst Expt Phys, Boltzmanngasse 5, A-1090 Vienna, Austria
[2] Comenius Univ, Fac Math, Dept Astron Phys Earth & Meteorol Phys & Informat, Bratislava 84248, Slovakia
关键词
aerosol size distribution; optical thickness; urban particles;
D O I
10.1016/j.atmosenv.2005.11.032
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The optical and microphysical properties of aerosols in highly urbanized region Bratislava-Vienna were determined by means of ground-based optical methods during campaign in August and September 2004. Although both cities are close to each other forming a common metropolitan region, the features of their aerosol systems are distinct. While urban and suburban zones around Vienna have mostly a clean air without major influences of emissions from industry, Bratislava itself need to be classified as polluted area-the optical data collected in the measuring site are influenced mainly by Technicke Sklo factory (NW positioned), Matador (SSE), Istrochem (ENE) and Slovnaft (ESE). In contrary to an observed smooth evolution of the aerosol system in Vienna, the aerosol environment is quite unstable in Bratislava and usually follows the day changes of the wind directions (as they correspond to the position of individual sources of pollution). The particle sizes in Bratislava are predominately larger compared to Vienna. A subsidiary mode within surface size distribution frequently occurs at radius about 0.7 mu m in Bratislava but not in Vienna. The size distribution of airborne particles in Vienna is more dependent on relative humidity than in Bratislava. It suggests the particles in Bratislava are larger whenever, or non-deliquescent to a great extent. The spectral attenuation of solar radiation by aerosol particles shows a typical mode at lambda approximate to 0.4 mu m in Bratislava, which is not observed in the spectral aerosol extinction coefficient in Vienna. In Bratislava, the average aerosol optical thickness grows from morning hours to the evening, while an opposite effect can be observed in Vienna in the same time. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1935 / 1948
页数:14
相关论文
共 30 条
[1]   Real-time characterization of ultrafine and accumulation mode particles in ambient combustion aerosols [J].
Bukowiecki, N ;
Kittelson, DB ;
Watts, WF ;
Burtscher, H ;
Weingartner, E ;
Baltensperger, U .
JOURNAL OF AEROSOL SCIENCE, 2002, 33 (08) :1139-1154
[2]  
BURKI G, 1995, ASTRON ASTROPHYS SUP, V112, P383
[3]   THE INFLUENCE OF ANGSTROM PARAMETERS ON CALCULATED DIRECT SOLAR SPECTRAL IRRADIANCES AT HIGH TURBIDITY [J].
CACHORRO, VE ;
CASANOVA, JL ;
DEFRUTOS, AM .
SOLAR ENERGY, 1987, 39 (05) :399-407
[4]   Scattering by a composite sphere and effective medium approximations [J].
Chylek, P ;
Videen, G .
OPTICS COMMUNICATIONS, 1998, 146 (1-6) :15-20
[5]   Seasonal variation of aerosols properties in South Italy: a study on aerosol optical depths, Angstrom turbidity parameters and aerosol size distributions [J].
Esposito, F ;
Leone, L ;
Pavese, G ;
Restieri, R ;
Serio, C .
ATMOSPHERIC ENVIRONMENT, 2004, 38 (11) :1605-1614
[6]   Size distributions and characteristics of atmospheric inorganic particles by regional comparative study in Urban Osaka, Japan [J].
Funasaka, K ;
Sakai, M ;
Shinya, M ;
Miyazaki, T ;
Kamiura, T ;
Kaneco, S ;
Ohta, K ;
Fujita, T .
ATMOSPHERIC ENVIRONMENT, 2003, 37 (33) :4597-4605
[7]  
Hanel G., 1976, Adv. Geophys., P73, DOI DOI 10.1016/S0065-2687(08)60142-9
[8]   Inversion of particle size distribution from light scattering spectrum [J].
He, J ;
Wang, SM ;
Cheng, JC ;
Zhang, SY .
INVERSE PROBLEMS, 1996, 12 (05) :633-639
[9]   DIESEL EMISSIONS IN VIENNA [J].
HORVATH, H ;
KREINER, I ;
NOREK, C ;
PREINING, O .
ATMOSPHERIC ENVIRONMENT, 1988, 22 (07) :1255-1269
[10]  
Kocifaj M, 2004, CONTR AST O, V34, P141