HR: 14:45h
AN: A33E-05 [Abstracts]
TI: Giant Aerosol Particles as a Potential Source of Supercooled Large Drops in Wintertime Stratiform
Clouds
AU: * Lasher-Trapp, S
EM: slasher@purdue.edu
AF: Purdue University, Earth & Atmospheric Sciences
550 Stadium Mall Drive, West Lafayette, IN 47907
United States
AU: Anderson-Bereznicki, S
EM: sdab@purdue.edu
AF: Purdue University, Earth & Atmospheric Sciences
550 Stadium Mall Drive, West Lafayette, IN 47907
United States
AU: Twohy, C H
EM: twohy@coas.oregonstate.edu
AF: Oregon State University, Oceanic/Atmospheric Sciences, Corvallis, OR 97331
United States
AB:
Supercooled large drops (SLD) can pose a significant hazard for aviation because they tend to accumulate behind the leading
edge of the wings where deicing mechanisms are lacking. Even when present in small amounts, SLD can cause significant ice
buildup that degrades aircraft performance through decreased lift and increased drag. Multiple studies have demonstrated that
warm rain processes are prevalent, or even dominant, in mixed-phase stratiform clouds containing SLD, but the formation
mechanism for SLD has not been suitably demonstrated. We investigate the possibility that SLD form upon giant (diameter >
2m) aerosol particles, using observations collected with the National Center for Atmospheric Research's (NCAR) C130 aircraft
during the second Alliance Icing Research Study (AIRSII). The observations are used to quantify and compare SLD in the clouds
and giant aerosol particles in the clear air. Four of the six flights investigated have comparable numbers of SLD and giant
aerosol particles; the other two flights have SLD concentrations several orders of magnitude less than the observed number of
giant aerosol particles. No difference in the atmospheric or cloud conditions is found to explain the disparity in the
results, but chemical analysis of collected giant aerosol particles reveals significant daily variability in their chemical
composition. Surprisingly, the majority of giant aerosol particles collected on some flights were composed of salt. Backward
air trajectories computed from the observation sites using numerical weather prediction model data suggest a local source of
these giant salt particles rather than long-range transport from the oceans.
DE: 0300 ATMOSPHERIC COMPOSITION AND STRUCTURE
DE: 0305 Aerosols and particles (0345, 4801, 4906)
DE: 0320 Cloud physics and chemistry
DE: 0345 Pollution: urban and regional (0305, 0478, 4251)
SC: Atmospheric Sciences [A]
MN: Fall Meeting 2005