Title :
Effective permittivity of wet snow by using two-phase strong fluctuation theory with non-symmetrical inclusions
Author :
Arslan, Ali Nadir ; Huining, Wang ; Pulliainen, Jouni ; Hallikainen, Martti
Author_Institution :
Res. Center, Nokia Group, Finland
Abstract :
The strong fluctuation theory is applied to calculate the effective permittivity of wet snow by two-phase model with non-symmetrical inclusions. In the two-phase model, wet snow is assumed to consist of dry snow (host) and liquid water (inclusions). Numerical results for the effective permittivity of wet snow are illustrated for random media with isotropic and anisotropic correlation functions. The three-phase strong fluctuation theory model with symmetrical inclusions is also presented for theoretical comparison. In the three-phase model, wet snow is assumed to consist of air (host), ice (inclusions) and water (inclusions) and the shape of the inclusions are spherical. The results are compared with the Debye-like semi-empirical model and a comparison with experimental data at 6, 18 and 37 GHz is also presented. The results indicate that (a) the shape and the size of inclusions are important, and (b) the two-phase model with non-symmetrical inclusions provides the good results to the effective permittivity of wet snow
Keywords :
backscatter; hydrological techniques; hydrology; permittivity; radar cross-sections; radar theory; radiometry; remote sensing; remote sensing by radar; snow; 6 to 37 GHz; EHF; SHF; anisotropic correlation function; asymmetrical inclusion; dielectric property; effective permittivity; hydrology; inclusion size; isotropic correlation function; liquid water; measurement technique; microwave radiometry; nonsymmetrical inclusion; permittivity; radar remote sensing; random media; snow cover; snowcover; snowpack; three-phase model; three-phase strong fluctuation theory; two-phase model; two-phase strong fluctuation theory; wet snow; Anisotropic magnetoresistance; Fluctuations; Frequency; Ice; Particle scattering; Permittivity; Random media; Shape; Snow; Space technology;
Conference_Titel :
Geoscience and Remote Sensing Symposium, 2000. Proceedings. IGARSS 2000. IEEE 2000 International
Conference_Location :
Honolulu, HI
Print_ISBN :
0-7803-6359-0
DOI :
10.1109/IGARSS.2000.857259