Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century

This study aims at quantifying the thermal response of mountain permafrost in southern Norway to changes in climate since 1860 and until 2100. A transient one-dimensional heat flow model was used to simulate ground temperatures and associated active layer thicknesses for nine borehole locations, whi...

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Main Authors: T. Hipp, B. Etzelmüller, H. Farbrot, T. V. Schuler, S. Westermann
Format: Article
Language:English
Published: Copernicus Publications 2012-05-01
Series:The Cryosphere
Online Access:http://www.the-cryosphere.net/6/553/2012/tc-6-553-2012.pdf
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author T. Hipp
B. Etzelmüller
H. Farbrot
T. V. Schuler
S. Westermann
author_facet T. Hipp
B. Etzelmüller
H. Farbrot
T. V. Schuler
S. Westermann
author_sort T. Hipp
collection DOAJ
description This study aims at quantifying the thermal response of mountain permafrost in southern Norway to changes in climate since 1860 and until 2100. A transient one-dimensional heat flow model was used to simulate ground temperatures and associated active layer thicknesses for nine borehole locations, which are located at different elevations and in substrates with different thermal properties. The model was forced by reconstructed air temperatures starting from 1860, which approximately coincides with the end of the Little Ice Age in the region. The impact of climate warming on mountain permafrost to 2100 is assessed by using downscaled air temperatures from a multi-model ensemble for the A1B scenario. Borehole records over three consecutive years of ground temperatures, air temperatures and snow cover data served for model calibration and validation. With an increase of air temperature of ~1.5 °C over 1860–2010 and an additional warming of ~2.8 °C until 2100, we simulate the evolution of ground temperatures for each borehole location. In 1860 the lower limit of permafrost was estimated to be ca. 200 m lower than observed today. According to the model, since the approximate end of the Little Ice Age, the active-layer thickness has increased by 0.5–5 m and >10 m for the sites Juvvasshøe and Tron, respectively. The most pronounced increases in active layer thickness were modelled for the last two decades since 1990 with increase rates of +2 cm yr<sup>−1</sup> to +87 cm yr<sup>−1</sup> (20–430%). According to the A1B climate scenario, degradation of mountain permafrost is suggested to occur throughout the 21st century at most of the sites below ca. 1800 m a.s.l. At the highest locations at 1900 m a.s.l., permafrost degradation is likely to occur with a probability of 55–75% by 2100. This implies that mountain permafrost in southern Norway is likely to be confined to the highest peaks in the western part of the country.
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spelling doaj.art-e61a8d2bbd74490babb0d3836ea4d7332022-12-21T18:40:59ZengCopernicus PublicationsThe Cryosphere1994-04161994-04242012-05-016355357110.5194/tc-6-553-2012Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st centuryT. HippB. EtzelmüllerH. FarbrotT. V. SchulerS. WestermannThis study aims at quantifying the thermal response of mountain permafrost in southern Norway to changes in climate since 1860 and until 2100. A transient one-dimensional heat flow model was used to simulate ground temperatures and associated active layer thicknesses for nine borehole locations, which are located at different elevations and in substrates with different thermal properties. The model was forced by reconstructed air temperatures starting from 1860, which approximately coincides with the end of the Little Ice Age in the region. The impact of climate warming on mountain permafrost to 2100 is assessed by using downscaled air temperatures from a multi-model ensemble for the A1B scenario. Borehole records over three consecutive years of ground temperatures, air temperatures and snow cover data served for model calibration and validation. With an increase of air temperature of ~1.5 °C over 1860–2010 and an additional warming of ~2.8 °C until 2100, we simulate the evolution of ground temperatures for each borehole location. In 1860 the lower limit of permafrost was estimated to be ca. 200 m lower than observed today. According to the model, since the approximate end of the Little Ice Age, the active-layer thickness has increased by 0.5–5 m and >10 m for the sites Juvvasshøe and Tron, respectively. The most pronounced increases in active layer thickness were modelled for the last two decades since 1990 with increase rates of +2 cm yr<sup>−1</sup> to +87 cm yr<sup>−1</sup> (20–430%). According to the A1B climate scenario, degradation of mountain permafrost is suggested to occur throughout the 21st century at most of the sites below ca. 1800 m a.s.l. At the highest locations at 1900 m a.s.l., permafrost degradation is likely to occur with a probability of 55–75% by 2100. This implies that mountain permafrost in southern Norway is likely to be confined to the highest peaks in the western part of the country.http://www.the-cryosphere.net/6/553/2012/tc-6-553-2012.pdf
spellingShingle T. Hipp
B. Etzelmüller
H. Farbrot
T. V. Schuler
S. Westermann
Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
The Cryosphere
title Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
title_full Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
title_fullStr Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
title_full_unstemmed Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
title_short Modelling borehole temperatures in Southern Norway – insights into permafrost dynamics during the 20th and 21st century
title_sort modelling borehole temperatures in southern norway insights into permafrost dynamics during the 20th and 21st century
url http://www.the-cryosphere.net/6/553/2012/tc-6-553-2012.pdf
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AT hfarbrot modellingboreholetemperaturesinsouthernnorwayinsightsintopermafrostdynamicsduringthe20thand21stcentury
AT tvschuler modellingboreholetemperaturesinsouthernnorwayinsightsintopermafrostdynamicsduringthe20thand21stcentury
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