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Title: Evaluating the strength of the land$$-$$atmosphere moisture feedback in Earth system models using satellite observations

Journal Article · · Hydrology and Earth System Sciences (Online)
 [1];  [1];  [2];  [2]
  1. Univ. of California, Irvine, CA (United States). Dept. of Earth System Science
  2. National Center for Atmospheric Research, Boulder, CO (United States). Climate and Global Dynamics Division

The relationship between terrestrial water storage (TWS) and atmospheric processes has important implications for predictability of climatic extremes and projection of future climate change. In places where moisture availability limits evapotranspiration (ET), variability in TWS has the potential to influence surface energy fluxes and atmospheric conditions. Where atmospheric conditions, in turn, influence moisture availability, a full feedback loop exists. Here we developed a novel approach for measuring the strength of both components of this feedback loop, i.e., the forcing of the atmosphere by variability in TWS and the response of TWS to atmospheric variability, using satellite observations of TWS, precipitation, solar radiation, and vapor pressure deficit during 2002–2014. Our approach defines metrics to quantify the relationship between TWS anomalies and climate globally on a seasonal to interannual timescale. Metrics derived from the satellite data were used to evaluate the strength of the feedback loop in 38 members of the Community Earth System Model (CESM) Large Ensemble (LENS) and in six models that contributed simulations to phase 5 of the Coupled Model Intercomparison Project (CMIP5). We found that both forcing and response limbs of the feedback loop in LENS were stronger than in the satellite observations in tropical and temperate regions. Feedbacks in the selected CMIP5 models were not as strong as those found in LENS, but were still generally stronger than those estimated from the satellite measurements. Consistent with previous studies conducted across different spatial and temporal scales, our analysis suggests that models may overestimate the strength of the feedbacks between the land surface and the atmosphere. Lastly, we describe several possible mechanisms that may contribute to this bias, and discuss pathways through which models may overestimate ET or overestimate the sensitivity of ET to TWS.

Research Organization:
University Corporation for Atmospheric Research, Boulder, CO (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
Grant/Contract Number:
FC03-97ER62402
OSTI ID:
1360790
Journal Information:
Hydrology and Earth System Sciences (Online), Vol. 20, Issue 12; ISSN 1607-7938
Publisher:
European Geosciences Union (EGU)Copyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 24 works
Citation information provided by
Web of Science

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Removing Circulation Effects to Assess Central U.S. Land‐Atmosphere Interactions in the CESM Large Ensemble journal October 2017
Using ARM Observations to Evaluate Climate Model Simulations of Land-Atmosphere Coupling on the U.S. Southern Great Plains: Model LAC Evaluation by ARM Data journal November 2017
Global Effects of Superparameterization on Hydrothermal Land‐Atmosphere Coupling on Multiple Timescales journal February 2018
Why Does Amazon Precipitation Decrease When Tropical Forests Respond to Increasing CO 2 ? journal April 2019
On the Harvest of Predictability From Land States in a Global Forecast Model journal December 2018
Evaluation of Regional‐Scale Soil Moisture‐Surface Flux Dynamics in Earth System Models Based on Satellite Observations of Land Surface Temperature journal May 2019
The potential to reduce uncertainty in regional runoff projections from climate models journal November 2019
Coupling of Soil Moisture and Air Temperature from Multiyear Data During 1980–2013 over China journal December 2019
Global Satellite Retrievals of the Near-Surface Atmospheric Vapor Pressure Deficit from AMSR-E and AMSR2 journal July 2018
Satellite and In Situ Observations for Advancing Global Earth Surface Modelling: A Review journal December 2018
Satellite and In Situ Observations for Advancing Global Earth Surface Modelling: A Review text January 2018