Title :
Characterization of Radar Backscatter Response of Sand-Covered Surfaces at Millimeter-Wave Frequencies
Author :
Nashashibi, Adib Y. ; Sarabandi, Kamal ; Al-Zaid, Fahad A. ; Alhumaidi, Sami
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of Michigan, Ann Arbor, MI, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
Radar imaging of deserts suffers from insufficient radar backscatter at low microwave frequencies due to the low permittivity of dry sand and relatively smooth sand surface roughness. Operating at millimeter-wave (MMW) frequencies, however, rectifies this deficiency as significant radar backscatter is generated by surface and volume scattering. This is due to the fact that sand surface roughness is electrically large and signal penetration into the dry sand, which is a homogeneous mixture of air and sand particles with dimensions comparable to a fraction of a wavelength, generates considerable volume scattering. This paper investigates both surface and volume scattering from dry sand surfaces, subject to the peculiar physical properties of sand surfaces found in sand dune-covered regions. An incoherent model is proposed that characterizes the angular dependence of volume scattering from dry sand in the presence of a 1-D rippled air/sand surface. A set of indoor experiments conducted on smooth and 1-D rippled sand surfaces at Ka-band confirms that significant volume scattering is present at MMW frequencies and that the proposed model correctly captures the observed angular dependence when 1-D surface ripples are present.
Keywords :
backscatter; geophysical signal processing; geophysical techniques; millimetre waves; radar imaging; sand; surface roughness; 1D rippled air/sand surface; Ka-band; MMW frequencies; dry sand surfaces; homogeneous mixture; indoor experiments; low microwave frequencies; low permittivity; millimeter-wave frequencies; physical properties; radar backscatter response; radar imaging; sand dune-covered regions; sand particles; signal penetration; smooth sand surface roughness; surface scattering; volume scattering; Backscatter; Optical surface waves; Radar; Rough surfaces; Scattering; Surface roughness; Surface waves; Millimeter-wave (MMW) measurements; radar; volume scattering;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2011.2172619