Assessing the Impact of Soil Layer Depth Specification on the Observability of Modeled Soil Moisture and Brightness Temperature

Author:

Shellito Peter J.12,Kumar Sujay V.2,Santanello Joseph A.2,Lawston-Parker Patricia12,Bolten John D.2,Cosh Michael H.3,Bosch David D.4,Holifield Collins Chandra D.5,Livingston Stan6,Prueger John7,Seyfried Mark8,Starks Patrick J.9

Affiliation:

1. a Earth System Science Interdisciplinary Center, University of Maryland, College Park, College Park, Maryland

2. b Hydrological Sciences Laboratory, NASA GSFC, Greenbelt, Maryland

3. c Hydrology and Remote Sensing Laboratory, Agricultural Research Service, USDA, Beltsville, Maryland

4. d Southeast Watershed Research Laboratory, Agricultural Research Service, USDA, Tifton, Georgia

5. e Southwest Watershed Research Center, Agricultural Research Service, USDA, Tucson, Arizona

6. f National Soil Erosion Laboratory, Agricultural Research Service, USDA, West Lafayette, Indiana

7. g National Laboratory for Agriculture and Environment, Agricultural Research Service, USDA, Ames, Iowa

8. h Northwest Watershed Research Laboratory, Agricultural Research Service, USDA, Boise, Idaho

9. i Grazinglands Research Laboratory, Agricultural Research Service, USDA, El Reno, Oklahoma

Abstract

AbstractThe utility of hydrologic land surface models (LSMs) can be enhanced by using information from observational platforms, but mismatches between the two are common. This study assesses the degree to which model agreement with observations is affected by two mechanisms in particular: 1) physical incongruities between the support volumes being characterized and 2) inadequate or inconsistent parameterizations of physical processes. The Noah and Noah-MP LSMs by default characterize surface soil moisture (SSM) in the top 10 cm of the soil column. This depth is notably different from the 5-cm (or less) sensing depth of L-band radiometers such as NASA’s Soil Moisture Active Passive (SMAP) satellite mission. These depth inconsistencies are examined by using thinner model layers in the Noah and Noah-MP LSMs and comparing resultant simulations to in situ and SMAP soil moisture. In addition, a forward radiative transfer model (RTM) is used to facilitate direct comparisons of LSM-based and SMAP-based L-band Tb retrievals. Agreement between models and observations is quantified using Kolmogorov–Smirnov distance values, calculated from empirical cumulative distribution functions of SSM and Tb time series. Results show that agreement of SSM and Tb with observations depends primarily on systematic biases, and the sign of those biases depends on the particular subspace being analyzed (SSM or Tb). This study concludes that the role of increased soil layer discretization on simulated soil moisture and Tb is secondary to the influence of component parameterizations, the effects of which dominate systematic differences with observations.

Funder

NASA ROSES

Publisher

American Meteorological Society

Subject

Atmospheric Science

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