Numerical simulations of the influence of the seasonal snow cover on the occurrence of permafrost at high latitudes

It has repeatedly been reported that snow cover is a dominating factor in determining the presence or absence of permafrost in the discontinuous and sporadic permafrost regions. The temperature at the snow-soil interface by the end of winter, known as the bottom temperature of winter snow (BTS) method, has been used to detect the existence of permafrost in European alpine regions when the maximum snow depth is about 1.0 m or greater. A critical snow thickness of about 50 cm or greater can prevent the development of permafrost in eastern Hudson Bay, Canada. The objective of this study is to investigate the impact of snow cover on the presence or absence of permafrost in cold regions through numerical simulations. A one-dimensional heat transfer model with phase change and a snow cover regime is used to simulate energy exchange between deep soils and the atmosphere. The model has been validated against the in situ data in the Arctic. The simulation results indicate that both snow depth and the onset date of snow cover establishment are important parameters in relation to the presence or absence of permafrost. Early establishment of snow cover can make permafrost disappear, even with a relatively thin snow cover. Permafrost may survive when snow cover starts after the middle of December even with a snow thickness >1.0 m. This effect of snow cover on the ground thermal regime can be explained with reference to the pattern of seasonal temperature variation. Early establishment of snow cover enhances the insulating impact over the entire cold season, thus warming and eventually thawing the permafrost. The insulating effect is substantially reduced when snow cover starts relatively late and snowmelt in the spring creates a huge heat sink, resulting in a favorable combination for permafrost existence.

[1]  Bernd Etzelmüller,et al.  Surface energy fluxes and distribution models of permafrost in European mountain areas: an overview of current developments , 2001 .

[2]  Martin Hoelzle,et al.  Miniature temperature dataloggers for mapping and monitoring of permafrost in high mountain areas: first experience from the Swiss Alps , 1999 .

[3]  Knut Stamnes,et al.  Impact of climatic factors on the active layer and permafrost at Barrow, Alaska , 1998 .

[4]  K. Steffen,et al.  A New Monthly Climatology of Global Radiation for the Arctic and Comparisons with NCEP-NCAR Reanalysis and ISCCP-C2 Fields , 1998 .

[5]  Knut Stamnes,et al.  Influence of the depth hoar layer of the seasonal snow cover on the ground thermal regime , 1996 .

[6]  Roger G. Barry,et al.  The parameterization of surface albedo for sea ice and its snow cover , 1996 .

[7]  L. E. Goodrich,et al.  The influence of snow cover on the ground thermal regime , 1982 .

[8]  M. Smith Microclimatic Influences on Ground Temperatures and Permafrost Distribution, Mackenzie Delta, Northwest Territories , 1975 .

[9]  George R. Blake,et al.  Thermal Properties of Soils , 1950 .

[10]  Martin Hoelzle,et al.  First results and interpretation of energy-flux measurements over Alpine permafrost , 2000, Annals of Glaciology.

[11]  W. Haeberli,et al.  PROCESSES OF SNOW/PERMAFROST-INTERACTIONS AT A HIGH- MOUNTAIN SITE, MURTéL/CORVATSCH, EASTERN SWISS ALPS , 1998 .

[12]  Knut Stamnes,et al.  Effects of Climate on the Active Layer and Permafrost on the North Slope of Alaska, U.S.A. , 1997 .

[13]  C. Burn,et al.  Observations of the "Thermal Offset" in Near-Surface Mean Annual Ground Temperatures at Several Sites near Mayo, Yukon Territory, Canada , 1988 .

[14]  W. Haeberli,et al.  Creep of mountain permafrost:internal structure and flow of Alpine rock glaciers. , 1985 .

[15]  W. Haeberli Die Basis-Temperatur der winterlichen Schneedecke als moglicher Indikator fur die Verbreitung von Permafrost in den Alpen , 1973 .

[16]  L. W. Gold Influence of the snow cover on the average annual ground temperature at Ottawa, Canada , 1963 .

[17]  ric Mnard1,et al.  MONITORING OF GROUND SURFACE TEMPERATURES IN VARIOUS BIOPHYSICAL MICRO-ENVIRONMENTS NEAR UMIUJAQ, EASTERN HUDSON BAY, CANADA , 2022 .