Title :
Soil Moisture Retrieval in the Heihe River Basin Based on the Real Thermal Inertia Method
Author :
Chunfeng Ma ; Weizhen Wang ; Xujun Han ; Xin Li
Author_Institution :
Cold & Arid Regions Environ. & Eng. Res. Inst., Lanzhou, China
Abstract :
Remotely sensed thermal inertia method has been recognized as a promising approach for land surface soil moisture retrieval from the early 1970´s. In order to estimate the land surface soil moisture in arid regions, a real thermal inertia (RTI) model was formulated based on the heat conduction equation and an approximated energy budget equation at the land surface using the land surface temperature and reflectance measured by Moderate Resolution Imaging Spectroradiometer (MODIS). The soil thermal inertia of Heihe River Basin (HRB) was retrieved based on the RTI model. Furthermore, using a thermal inertia-soil moisture model along with auxiliary data such as soil texture and bulk density, land surface soil moisture was estimated. The results were verified experimentally using the observations made at three automatic weather stations (AWS). The coefficient of the correlation between the retrieved values of soil thermal inertia and measured ones was with above R=0.6 and the root mean square error of soil moisture was 0.072 m3m-3. The soil moisture in the HRB exhibits a seasonal variation with higher values in summer and autumn and lower values in winter and spring, and also exhibits considerable spatial variation with higher values in the upstream district and lower values in the downstream district.
Keywords :
heat conduction; hydrological techniques; land surface temperature; mean square error methods; remote sensing; rivers; soil; texture; AD 1970; Heihe river basin; RTI model; arid regions; automatic weather stations; auxiliary data; downstream district; energy budget equation; heat conduction equation; land surface soil moisture retrieval; land surface temperature; moderate resolution imaging spectroradiometer; remotely sensed thermal inertia method; root mean square error; soil bulk density; soil texture; soil thermal inertia; spatial variation; spring; thermal inertia-soil moisture model; upstream district; winter; Heihe river basin; real thermal inertia model; remote sensing; soil moisture;
Journal_Title :
Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of
DOI :
10.1109/JSTARS.2013.2252149