Simulating surface energy fluxes using the variable-resolution Community Earth System Model (VR-CESM)

Recent advances in variable-resolution (VR) global models provide the tools necessary to investigate local and global impacts of land cover by embedding a high-resolution grid over areas of interest in a seamless and computationally efficient manner. We used two eddy covariance tower clusters in the Eastern USA to evaluate surface energy fluxes (latent heat, λE; sensible heat, H; net radiation, Rn; and ground heat, G) and surface properties (aerodynamic resistance to heat transfer, raero; Bowen ratio, β; and albedo, α) by uncoupled point simulations of the land-only Community Land Model (PTCLM4.5) and two coupled land–atmosphere Community Earth System Model (CESM1.3) simulations. The CESM simulations included a 1° uniform grid global simulation and global 1° simulation with a 0.25° refined VR grid over the Eastern USA. Tower clusters included the following plant functional types—broadleaf deciduous temperate (hardwood) forest, C3 non-Arctic grass (grass), a cropland, and needleleaf evergreen temperate (pine) forest. During the growing season, diurnal cycles of λE and H for grass and the cropland were simulated well by PTCLM4.5 and VR-CESM1.3; however, λE (H) was biased low (high) at the hardwood and pine-forested sites, contributing to biases in β. Growing season Rn was generally well simulated by CLM4.5 and VR-CESM1.3; however, modeled elevated albedo (indicative of snow cover) persisted longer in winter and spring leading to large biases in Rn and α. The introduction of a VR grid does not adversely impact surface energy fluxes compared to 1° uniform grids and highlights the usefulness of this approach for future efforts to predict land–atmosphere fluxes across heterogeneous landscapes.

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Copyright 2019 Author(s). This work is licensed under a Creative Commons Attribution 4.0 International license.


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Author Burakowski, Elizabeth
Tawfik, Ahmed
Ouimette, A.
Lepine, L.
Zarzycki, Colin
Novick, K.
Ollinger, S.
Bonan, Gordon B.
Publisher UCAR/NCAR - Library
Publication Date 2019-10-22T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T19:24:46.078195
Metadata Record Identifier edu.ucar.opensky::articles:22947
Metadata Language eng; USA
Suggested Citation Burakowski, Elizabeth, Tawfik, Ahmed, Ouimette, A., Lepine, L., Zarzycki, Colin, Novick, K., Ollinger, S., Bonan, Gordon B.. (2019). Simulating surface energy fluxes using the variable-resolution Community Earth System Model (VR-CESM). UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7jm2dsb. Accessed 30 July 2025.

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