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On the accuracy of the measured and modelled surface latent and sensible heat flux in the interior of the Greenland Ice Sheet

Title: On the accuracy of the measured and modelled surface latent and sensible heat flux in the interior of the Greenland Ice Sheet
Authors: Haven, Ida; Steen-Larsen, Hans Christian; Dietrich, Laura J.; Wahl, Sonja; Box, Jason E.; van den Broeke, Michiel R.; Hubbard, Alun; Kral, Stephan T.; Reuder, Joachim; van Tiggelen, Maurice; Sub Dynamics Meteorology; Marine and Atmospheric Research
Publication Year: 2026
Subject Terms: Water Science and Technology; Earth-Surface Processes; SDG 13 - Climate Action
Description: The latent (LHF) and sensible (SHF) heat fluxes are key components of the surface mass and energy balance in the accumulation area of the Greenland Ice Sheet, making them critical for accurate sea level projections. While Eddy-Covariance (EC) systems provide accurate measurements of the turbulent surface transport of mass and energy in the low and mid-latitudes, frequent stable boundary layer conditions in polar regions introduce uncertainties in the EC method. In addition, as EC measurements are sparse, it is critical to characterise biases in the more common bulk fluxes obtained from automatic weather stations and climate models in polar areas. In this study, we present an intercomparison of three independent EC systems from the 28 May until 31 July 2019 at the EastGRIP site at ∼ 2700 m a.s.l. on the Greenland Ice Sheet to assess the accuracy of LHF and SHF measurements. A comparison of the fluxes by the three systems demonstrates excellent agreement with an absolute bias of 0.2 W m−2 and slopes between 1.01 and 1.16 for the LHF, and an absolute bias of less than 0.5Wm-2 and slopes of 1.0 for the SHF. A comparison of the validated EC fluxes against the bulk method highlights the sensitivity to the site-specific roughness length z0,m and the limitation of common parameterisations of the humidity and temperature roughness lengths z0,q and z0,t. Using improved values for z0,m, z0,q and z0,t, recomputed bulk fluxes are compared to fluxes simulated by regional climate models MAR, RACMO2.3p2 and RACMO2.4p1 for the period from 2016 to 2020. We find an overall good agreement between the measured and modelled turbulent flux magnitudes for the summer period; however, all evaluated models simulate stronger near-surface temperature gradients during winter compared to observations from automatic weather stations, leading to consistently larger modelled SHF and LHF values in winter.
Document Type: article in journal/newspaper
File Description: application/pdf
Language: English
ISSN: 1994-0416
Relation: https://dspace.library.uu.nl/handle/1874/480756
Availability: https://dspace.library.uu.nl/handle/1874/480756
Rights: info:eu-repo/semantics/OpenAccess
Accession Number: edsbas.98626056
Database: BASE