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Northern Hemisphere permafrost map based on TTOP modelling for 2000–2016 at 1 km2 scale

Earth-Science Reviews · 2019 · Vol. 193 · pp. 299–316
Jaroslav ObuSebastian WestermannAnnett BartschNikolai BerdnikovHanne H. ChristiansenDashtseren AvirmedReynald DelaloyeBo ElberlingBernd EtzelmüllerAlexander KholodovArtem KhomutovAndreas KääbMarina LeibmanAntoni G. LewkowiczSantosh K. PandaV. E. RomanovskyRobert G. WayAndreas Westergaard‐NielsenTonghua WuJambaljav YamkhinDefu Zou

Abstract

Permafrost is a key element of the cryosphere and an essential climate variable in the Global Climate Observing System. There is no remote-sensing method available to reliably monitor the permafrost thermal state. To estimate permafrost distribution at a hemispheric scale, we employ an equilibrium state model for the temperature at the top of the permafrost (TTOP model) for the 2000–2016 period, driven by remotely-sensed land surface temperatures, down-scaled ERA-Interim climate reanalysis data, tundra wetness classes and landcover map from the ESA Landcover Climate Change Initiative (CCI) project. Subgrid variability of ground temperatures due to snow and landcover variability is represented in the model using subpixel statistics. The results are validated against borehole measurements and reviewed regionally. The accuracy of the modelled mean annual ground temperature (MAGT) at the top of the permafrost is ±2 °C when compared to permafrost borehole data. The modelled permafrost area (MAGT <0 °C) covers 13.9 × 106 km2 (ca. 15% of the exposed land area), which is within the range or slightly below the average of previous estimates. The sum of all pixels having isolated patches, sporadic, discontinuous or continuous permafrost (permafrost probability >0) is around 21 × 106 km2 (22% of exposed land area), which is approximately 2 × 106 km2 less than estimated previously. Detailed comparisons at a regional scale show that the model performs well in sparsely vegetated tundra regions and mountains, but is less accurate in densely vegetated boreal spruce and larch forests.

Climate change and permafrostCryospheric studies and observationsArctic and Antarctic ice dynamicsPermafrostTundraEnvironmental scienceNorthern HemisphereClimate changeTaigaClimatologyCryosphereBorealSnow

Funding

  • European Space Agency
  • Norges Forskningsråd
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References
The use of ‘altitude’ in ecological research
Trends in Ecology & Evolution · 2007 · 2,951 citations
The ERA‐Interim reanalysis: configuration and performance of the data assimilation system
Quarterly Journal of the Royal Meteorological Society · 2011 · 26,230 citations
Temperature index melt modelling in mountain areas
Journal of Hydrology · 2003 · 1,613 citations
Permafrost is warming at a global scale
Nature Communications · 2019 · 1,998 citations
Hydrological Processes
Hydrological Processes · 2006 · 686 citations
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