Title of article :
Effects of drop freezing on microphysics of an ascending cloud parcel under biomass burning conditions
Author/Authors :
K. Diehl، نويسنده , , M. Simmel، نويسنده , , S. Wurzler، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Abstract :
There is some evidence that the initiation of warm rain is suppressed in clouds over regions with vegetation fires. Thus, the ice phase becomes important as another possibility to initiate precipitation. Numerical simulations were performed to investigate heterogeneous drop freezing for a biomass-burning situation. An air parcel model with a sectional two-dimensional description of the cloud microphysics was employed with parameterizations for immersion and contact freezing which consider the different ice nucleating efficiencies of various ice nuclei. Three scenarios were simulated resulting to mixed-phase or completely glaciated clouds. According to the high insoluble fraction of the biomass-burning particles drop freezing via immersion and contact modes was very efficient. The preferential freezing of large drops followed by riming (i.e. the deposition of liquid drops on ice particles) and the evaporation of the liquid drops (Bergeron–Findeisen process) caused a further decrease of the liquid drops’ effective radius in higher altitudes. In turn ice particle sizes increased so that they could serve as germs for graupel or hailstone formation. The effects of ice initiation on the vertical cloud dynamics were fairly significant leading to a development of the cloud to much higher altitudes than in a warm cloud without ice formation.
Keywords :
Biomass burning , Heterogeneous drop freezing , ice nuclei , Mixed-phase cloud
Journal title :
Atmospheric Environment
Journal title :
Atmospheric Environment