Aerosol Optical Depth Measured at Different Coastal Boundary Layers and Its Links with Synoptic-Scale Features
Abstract
:1. Introduction
2. Description of Experiments and Instrumentation
2.1. SOAP experiment in 2006
- Determination of the vertical structure of the chemical, physical and optical properties of aerosol particles, including solar radiative closure between observed and calculated aerosol properties (direct climate effect).
- Using the above information to define the role of absorbing and non-absorbing aerosol particles in coastal regions.
- Improve the knowledge on aerosol particle life cycle and transport pathways across Europe, including the Saharan dust events.
2.2. MACRON experiment in 2007
2.3. AREX experiment in 2008
2.4. Description of selected instruments used during the campaigns
Optical channels | 340 ± 0.3 nm, 2 nm FWHM* |
380 ± 0.4 nm, 4 nm FWHM | |
440 ± 1.5 nm, 10 nm FWHM | |
500 ± 1.5 nm, 10 nm FWHM | |
675 ± 1.5 nm, 10 nm FWHM | |
Resolution | 0.01 W m−² |
Dynamic range | >300000 |
Viewing angle | 2.5° |
Precision | 1–2% |
Non linearity | max. 0.002% |
3. Theory
4. Results and Discussion
4.1. Mediterranean region
- advection temperature decreasing is related with advection pressure decreasing
- advection temperature increasing is related with advection pressure increasing.
4.2. Arctic Region
5. Conclusions
- affected by developing structures reaching the nearest region in synoptic scale
- under the Jet Stream as an extended baric structure causing Sahara dust flow to the North in the Mediterranean region (SOAP experiment):
- affected by developed structures (trough) reaching from far North to Crete
- under shallow baric structures directed over the Mediterranean Sea
Acknowledgements
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Ponczkowska, A.; Zielinski, T.; Petelski, T.; Markowicz, K.; Chourdakis, G.; Georgoussis, G. Aerosol Optical Depth Measured at Different Coastal Boundary Layers and Its Links with Synoptic-Scale Features. Remote Sens. 2009, 1, 557-576. https://doi.org/10.3390/rs1030557
Ponczkowska A, Zielinski T, Petelski T, Markowicz K, Chourdakis G, Georgoussis G. Aerosol Optical Depth Measured at Different Coastal Boundary Layers and Its Links with Synoptic-Scale Features. Remote Sensing. 2009; 1(3):557-576. https://doi.org/10.3390/rs1030557
Chicago/Turabian StylePonczkowska, Agnieszka, Tymon Zielinski, Tomasz Petelski, Krzysztof Markowicz, Giorgos Chourdakis, and Giorgos Georgoussis. 2009. "Aerosol Optical Depth Measured at Different Coastal Boundary Layers and Its Links with Synoptic-Scale Features" Remote Sensing 1, no. 3: 557-576. https://doi.org/10.3390/rs1030557
APA StylePonczkowska, A., Zielinski, T., Petelski, T., Markowicz, K., Chourdakis, G., & Georgoussis, G. (2009). Aerosol Optical Depth Measured at Different Coastal Boundary Layers and Its Links with Synoptic-Scale Features. Remote Sensing, 1(3), 557-576. https://doi.org/10.3390/rs1030557