Title :
Automated L-Band Radar System for Sensing Soil Moisture at High Temporal Resolution
Author :
Nagarajan, Karthik ; Pang-Wei Liu ; DeRoo, Roger ; Judge, Jasmeet ; Akbar, Rois ; Rush, Patrick ; Feagle, Steven ; Preston, David ; Terwilleger, Robert
Author_Institution :
Agric. & Biol. Eng. Dept., Univ. of Florida, Gainesville, FL, USA
Abstract :
The ground-based University of Florida L-band Automated Radar System (UF-LARS) was developed to obtain observations of normalized radar backscatter (mmbσ0) at high temporal resolution for soil moisture applications. The system was mounted on a 25 m manlift with capabilities of antenna positioning for multi-angle data acquisition and ranging. The RF subsystem of UF-LARS was based upon the established designs for ground-based scatterometers employing a vector network analyzer with simultaneous acquisition of V- and H-polarized returns. System integration and automated data acquisition were enabled using a software control system. Fifteen-minute observations of mmb σ0 collected over a growing season of sweet-corn and bare soil conditions in North Central Florida, were used to study the sensitivity of mmbσ0 to growing vegetation and near-surface (0-5 cm) soil moisture (mmbSM0 - 5). On average, mmb σmmbVV0 were observed to be 23% higher than mmbσmmbHH0 during the mid- and late-stages of crop growth due to the vertical structure of stems. The correlation between 3-day observations of mmbSM0 - 5 and mmbσmmbVV0 reduced by 55% compared to those obtained for ≤ 30-min observations. These findings suggested that data set at high temporal frequencies can be used to develop more realistic and robust forward backscattering models.
Keywords :
backscatter; crops; data acquisition; hydrological techniques; moisture measurement; radar resolution; soil; H-polarized return acquisition; North Central Florida; RF subsystem; USA; University of Florida L-band Automated Radar System; V-polarized return acquisition; antenna positioning; automated data acquisition; bare soil condition; crop growth; depth 0 cm to 5 cm; ground-based UF-LARS; ground-based scatterometer; high temporal resolution soil moisture sensing; multiangle data acquisition; near-surface soil moisture; normalized radar backscatter; robust forward backscattering model; software control system; soil moisture application; stem vertical structure; sweet-corn growing season; system integration; temporal frequency; vector network analyzer; vegetation; Backscatter; Calibration; Radar; Radar antennas; Soil moisture; Vegetation mapping; NASA Soil Moisture Active Passive (SMAP); radar; soil moisture (SM);
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
DOI :
10.1109/LGRS.2013.2270453