Soil Moisture Profiles of Ecosystem Water Use Revealed With ECOSTRESS

Author:

Feldman Andrew F.12ORCID,Koster Randal D.3ORCID,Cawse‐Nicholson Kerry4ORCID,Crow Wade T.5ORCID,Holmes Thomas R. H.6ORCID,Poulter Benjamin1ORCID

Affiliation:

1. Biospheric Sciences Laboratory NASA Goddard Space Flight Center Greenbelt MD USA

2. Earth System Science Interdisciplinary Center University of Maryland College Park MD USA

3. Global Modeling and Assimilation Office NASA Goddard Space Flight Center Greenbelt MD USA

4. Jet Propulsion Laboratory California Institute of Technology Pasadena CA USA

5. Hydrology and Remote Sensing Laboratory USDA Agricultural Research Service Beltsville MD USA

6. Hydrological Sciences Laboratory NASA Goddard Space Flight Center Greenbelt MD USA

Abstract

AbstractWhile remote sensing has provided extensive insights into the global terrestrial water, carbon, and energy cycles, space‐based retrievals remain limited in observing the belowground influence of the full soil moisture (SM) profile on ecosystem function. We show that this gap can be addressed when coupling 70 m resolution ECOsystem Spaceborne Thermal Radiometer Experiment on Space Station retrievals of land surface temperature (LST) with in‐situ SM profile measurements. These data sets together reveal that ecosystem water use decreases with depth with 93% of sites showing significant LST coupling with SM shallower than 20 cm while 34% of sites have interactions with SM deeper than 50 cm. Furthermore, the median depth of peak ecosystem water use is estimated to be 10 cm, though forests have more common peak interactions with deeper soil layers (50–100 cm) in 37% of cases. High spatial resolution remote sensing coupled with field‐level data can thus elucidate the role of belowground processes on land surface behavior.

Funder

California Institute of Technology

Publisher

American Geophysical Union (AGU)

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