A New Post‐Hoc Method to Reduce the Energy Imbalance in Eddy Covariance Measurements

Author:

Zhang Weijie12ORCID,Nelson Jacob A.1ORCID,Miralles Diego G.2ORCID,Mauder Matthias3,Migliavacca Mirco4,Poyatos Rafael56ORCID,Reichstein Markus17ORCID,Jung Martin1ORCID

Affiliation:

1. Department of Biogeochemical Integration Max Planck Institute for Biogeochemistry Jena Germany

2. Hydro‐Climate Extremes Lab (H‐CEL) Faculty of Bioscience Engineering Ghent University Ghent Belgium

3. Faculty of Environmental Sciences Institute of Hydrology and Meteorology TU Dresden Dresden Germany

4. Joint Research Centre European Commission Ispra Italy

5. CREAF Barcelona Spain

6. Universitat Autònoma de Barcelona Barcelona Spain

7. Michael‐Stifel‐Center Jena for Data‐Driven and Simulation Science Jena Germany

Abstract

AbstractLatent and sensible heat flux observations are essential for understanding land–atmosphere interactions. Measurements from the eddy covariance technique are widely used but suffer from systematic energy imbalance problems, partly due to missing large eddies from sub‐mesoscale transport. Because available energy drives the development of large eddies, we propose an available energy based correction method for turbulent flux measurements. We apply our method to 172 flux tower sites and show that we can reduce the energy imbalance from −14.99 to −0.65 W m−2 on average, together with improved consistency between turbulent fluxes and available energy and associated increases in r2 at individual sites and across networks. Our results suggest that our method is conceptually and empirically preferable over the method implemented in the ONEFlux processing. This can contribute to the efforts in understanding and addressing the energy imbalance issue, which is crucial for the evaluation and calibration of land surface models.

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Geophysics

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