Title :
Reflectivity modeling of eucalypt ash particles with respects to moisture absorption over microwave and millimeter wave
Author :
Baum, Thomas C. ; Thompson, Lachlan ; Ghorbani, Kamran
Author_Institution :
Sch. of Electr. & Comput. Eng., RMIT Univ., Melbourne, VIC, Australia
Abstract :
This paper investigates modeled reflectivity of eucalypt ash particles based on empirically measured geometric, dynamic and complex permittivity models. The eucalypt species is the most common tree genus throughout Australasia. The investigation of ash created from its foliage during bushfires is required to better understand how these particles play a role in the overall reflectivity of smoke plumes. Large smoke plumes are commonly observable on many meteorological radars. Unlike liquid precipitation which displays more homogenous like properties as effective bulk material, ash is significantly more complex. On the particle level the complex permittivity varies over the entire structure, the geometric properties are vastly complex and the internal porosity varies based on the originating cell structures. Taking these complexities in to consideration, modeled reflectivity based on statistically correct particles has been carried out in a full electromagnetic solver driven by an external software framework. The results have been analyzed and discussed.
Keywords :
absorption; air quality; ash; atmospheric humidity; atmospheric optics; atmospheric precipitation; fires; permittivity; porosity; smoke; vegetation; Australasia; bushfire; cell structure; common tree genus; effective bulk material; empirically measured complex permittivity model; empirically measured dynamic permittivity model; empirically measured geometric permittivity model; eucalypt ash particle reflectivity modeling; eucalypt species; external software framework; foliage ash investigation; full electromagnetic solver; geometric property; homogenous like property; internal porosity; large smoke plume; liquid precipitation; meteorological radar; microwave moisture absorption; millimeter wave moisture absorption; particle level complex permittivity variation; smoke plume overall reflectivity; statistically correct particle; Ash; Biomass; Fires; Moisture; Permittivity; Radar; Reflectivity; Bushfires; Complex permittivityg; Radar; Reflectivity; Wildfires;
Conference_Titel :
European Radar Conference (EuRAD), 2014 11th
Conference_Location :
Rome
DOI :
10.1109/EuRAD.2014.6991244