Evaluation of air-soil temperature relationships simulated by land surface models during winter across the permafrost region

A realistic simulation of snow cover and its thermal properties are important for accurate modelling of permafrost. We analyse simulated relationships between air and near-surface (20 cm) soil temperatures in the Northern Hemisphere permafrost region during winter, with a particular focus on snow insulation effects in nine land surface models, and compare them with observations from 268 Russian stations. There are large cross-model differences in the simulated differences between near-surface soil and air temperatures (ΔT; 3 to 14 °C), in the sensitivity of soil-to-air temperature (0.13 to 0.96 °C °C⁻¹), and in the relationship between ΔT and snow depth. The observed relationship between ΔT and snow depth can be used as a metric to evaluate the effects of each model's representation of snow insulation, hence guide improvements to the model's conceptual structure and process parameterisations. Models with better performance apply multilayer snow schemes and consider complex snow processes. Some models show poor performance in representing snow insulation due to underestimation of snow depth and/or overestimation of snow conductivity. Generally, models identified as most acceptable with respect to snow insulation simulate reasonable areas of near-surface permafrost (13.19 to 15.77 million km²). However, there is not a simple relationship between the sophistication of the snow insulation in the acceptable models and the simulated area of Northern Hemisphere near-surface permafrost, because several other factors, such as soil depth used in the models, the treatment of soil organic matter content, hydrology and vegetation cover, also affect the simulated permafrost distribution.

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Author Wang, Wenli
Rinke, Annette
Moore, John
Ji, Duoying
Cui, Xuefeng
Peng, Shushi
Lawrence, David
McGuire, A.
Burke, Eleanor
Chen, Xiaodong
Decharme, Bertrand
Koven, Charles
MacDougall, Andrew
Saito, Kazuyuki
Zhang, Wenxin
Alkama, Ramdane
Bohn, Theodore
Ciais, Philippe
Delire, Christine
Gouttevin, Isabelle
Hajima, Tomohiro
Krinner, Gerhard
Lettenmaier, Dennis
Miller, Paul
Smith, Benjamin
Sueyoshi, Tetsuo
Sherstiukov, Artem
Publisher UCAR/NCAR - Library
Publication Date 2016-08-11T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Resource Version N/A
Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:00:32.610663
Metadata Record Identifier edu.ucar.opensky::articles:18695
Metadata Language eng; USA
Suggested Citation Wang, Wenli, Rinke, Annette, Moore, John, Ji, Duoying, Cui, Xuefeng, Peng, Shushi, Lawrence, David, McGuire, A., Burke, Eleanor, Chen, Xiaodong, Decharme, Bertrand, Koven, Charles, MacDougall, Andrew, Saito, Kazuyuki, Zhang, Wenxin, Alkama, Ramdane, Bohn, Theodore, Ciais, Philippe, Delire, Christine, Gouttevin, Isabelle, Hajima, Tomohiro, Krinner, Gerhard, Lettenmaier, Dennis, Miller, Paul, Smith, Benjamin, Sueyoshi, Tetsuo, Sherstiukov, Artem. (2016). Evaluation of air-soil temperature relationships simulated by land surface models during winter across the permafrost region. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7zw1nkn. Accessed 16 July 2025.

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