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May 21, 2015Geoscientific model development136 citationsOpen Access

An improved representation of physical permafrost dynamics in the JULES land-surface model

SCSarah ChadburnEBEleanor BurkeRERichard Essery

Key Points

  • This research aims to enhance the representation of permafrost dynamics in climate models by improving the physical processes in JULES.
  • Modified thermal and hydraulic properties of soil to include organic matter and moss effects.
  • Simulated higher-resolution soil columns and included an additional thermal column for bedrock.
  • Improved snow scheme to accommodate thin snow layers and conducted point-site simulations.
  • Root mean square error for near-surface soil temperatures reduced by approximately 30%.
  • Active layer thickness error decreased from over 1 m to within 0.1 m of observed values.
  • Further 20% reduction in soil temperature error by adjusting soil moisture parameters.

Abstract

Abstract. It is important to correctly simulate permafrost in global climate models, since the stored carbon represents the source of a potentially important climate feedback. This carbon feedback depends on the physical state of the permafrost. We have therefore included improved physical permafrost processes in JULES (Joint UK Land Environment Simulator), which is the land-surface scheme used in the Hadley Centre climate models. The thermal and hydraulic properties of the soil were modified to account for the presence of organic matter, and the insulating effects of a surface layer of moss were added, allowing for fractional moss cover. These processes are particularly relevant in permafrost zones. We also simulate a higher-resolution soil column and deeper soil, and include an additional thermal column at the base of the soil to represent bedrock. In addition, the snow scheme was improved to allow it to run with arbitrarily thin layers. Point-site simulations at Samoylov Island, Siberia, show that the model is now able to simulate soil temperatures and thaw depth much closer to the observations. The root mean square error for the near-surface soil temperatures reduces by approximately 30%, and the active layer thickness is reduced from being over 1 m too deep to within 0.1 m of the observed active layer thickness. All of the model improvements contribute to improving the simulations, with organic matter having the single greatest impact. A new method is used to estimate active layer depth more accurately using the fraction of unfrozen water. Soil hydrology and snow are investigated further by holding the soil moisture fixed and adjusting the parameters to make the soil moisture and snow density match better with observations. The root mean square error in near-surface soil temperatures is reduced by a further 20% as a result.

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Cite This Study

Chadburn et al. (2015) studied this question.

synapsesocial.com/papers/69dff85b1827a1d0b1255abahttps://doi.org/10.5194/gmd-8-1493-2015
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1IPSL-Perm-LandN: improving the IPSL Earth System Model to represent permafrost carbon-nitrogen interactions2025
  2. 2IPSL-Perm-LandN: improving the IPSL Earth System Model to represent permafrost carbon-nitrogen interactions2026
  3. 3Evaluating the impact of peat soils and snow schemes on simulated active layer thickness at pan-Arctic permafrost sites2024 · 5 citations
  4. 4Permafrost sensitivity to soil hydro-thermodynamics in historical and scenario simulations with the MPI-ESM2025
  5. 5Permafrost thermal response to improved soil hydro-thermodynamics in historical and scenario simulations with a modified version of the MPI-ESM 2024