DocumentCode
1084734
Title
Microwave backscattering and emission model for grass canopies
Author
Saatchi, Sasan S. ; Le Vine, David M. ; Lang, Roger H.
Author_Institution
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA, USA
Volume
32
Issue
1
fYear
1994
fDate
1/1/1994 12:00:00 AM
Firstpage
177
Lastpage
186
Abstract
Microwave radar and radiometer measurements of grasslands indicate a substantial reduction in sensor sensitivity to soil moisture in the presence of a thatch layer. When this layer is wet it masks changes in the underlying soil, making the canopy appear warm in the case of passive sensors (radiometer) and decreasing backscatter in the active case (scatterometer). A model for a grass canopy with thatch is presented in order to explain this behavior and for comparison with observations. The canopy model consists of three layers: grass, thatch, and the underlying soil. The grass blades are modeled by elongated elliptical discs and the thatch is modeled as a collection of disk shaped water droplets (i.e., the dry matter is neglected). The ground is homogeneous and flat. The distorted Born approximation is used to compute the radar cross section of this three layer canopy and the emissivity is computed from the radar cross section using the Peake formulation for the passive problem. Results are computed at L-band (1.4 GHz) and C-band (4.75 GHz) using canopy parameters (i.e., plant geometry, soil moisture, plant moisture, etc.) representative of Konza Prairie grasslands. The results are compared to C-band scatterometer measurements and L-band radiometer measurements at these grasslands
Keywords
atmospheric techniques; atmospheric temperature; geophysical techniques; hydrological techniques; radiometry; remote sensing; remote sensing by radar; soil; temperature measurement; 1.4 GHz; 4.75 GHz; C-band; L-band; UHF SHF; distorted Born approximation; elliptical disc; emission model; emissivity; geophysical measurement technique; grass canopies; grassland; hydrology; land surface; microwave backscattering; model; radar cross section; radar remote sensing; soil moisture; thatch layer; vegetation; vegetation canopy; wet Konza prairie; Backscatter; Electromagnetic heating; L-band; Microwave measurements; Microwave radiometry; Moisture measurement; Radar cross section; Radar measurements; Soil measurements; Soil moisture;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.285200
Filename
285200
Link To Document