Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch

This project investigates the near surface energy balance on the Murt`el-Corvatsch rock glacier in the Upper Engadine, Swiss Alps, using the 1D physical SNOWPACK model. A correct representation of the near surface energy balance is important to predict the long term evolution of permafrost below roc...

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Main Author: Pruessner, Luisa
Format: Others
Language:English
Published: Uppsala universitet, Luft-, vatten och landskapslära 2017
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-323564
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spelling ndltd-UPSALLA1-oai-DiVA.org-uu-3235642017-06-09T05:37:28ZNear-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-CorvatschengYtnära energibalansen på alpinblockglaciären Murtèl-CorvatschPruessner, LuisaUppsala universitet, Luft-, vatten och landskapslära2017rock glaciersenergy balanceSNOWPACKpermafrostMeteorology and Atmospheric SciencesMeteorologi och atmosfärforskningThis project investigates the near surface energy balance on the Murt`el-Corvatsch rock glacier in the Upper Engadine, Swiss Alps, using the 1D physical SNOWPACK model. A correct representation of the near surface energy balance is important to predict the long term evolution of permafrost below rock glaciers. This is of interest in the context of future water availability and management of water resources in a changing climate and also in the context of natural hazards. Some difficulties in modelling the thermal regime of rock glaciers are related to the large pore spaces between the blocks, which allow for different modes of heat transport. With this in mind, different modelling approaches were investigated: using the standard SNOWPACK (without advective heat flux, ventilation or canopy module), adding an advective heat flux, using the ventilation and canopy modules. The most promising results, i.e. the best match between measured and modelled temperatures, were obtained from the ventilation parameterisation. This parameterisation accounts for boundary-layer air penetrating into the blocky layer. Furthermore it was found that the most important input variables are the thickness of the the blocky layer, since this is where the additional modes of heat exchange take place, and the ice and void volume fraction together with the field capacity in the icy layer. The latter are particularly relevant for long term modelling as they determine the amount of ice melt and water transport in the icy layer. Measured and modelled temperatures at depths of 0.5 m, 2.5 m, 3.5 m and 7.5 m were compared. Generally good agreements between modelled and measured temperatures were obtained for the depths 0.5 m, 3.5 m and 7.5 m. The slight warming trend at the end of the modelled period (2012- 2016) that can be observed in the borehole data is also present in the modelled temperatures. The depth of 2.5 m shows the least agreement between modelled and measured temperatures with and overestimation during the snow free period and an underestimation during the snow covered period. However, agreement between modelled and measured temperatures improves for the snow covered period after a simulation period of about ten years. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-323564Examensarbete vid Institutionen för geovetenskaper, 1650-6553 ; 395application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic rock glaciers
energy balance
SNOWPACK
permafrost
Meteorology and Atmospheric Sciences
Meteorologi och atmosfärforskning
spellingShingle rock glaciers
energy balance
SNOWPACK
permafrost
Meteorology and Atmospheric Sciences
Meteorologi och atmosfärforskning
Pruessner, Luisa
Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
description This project investigates the near surface energy balance on the Murt`el-Corvatsch rock glacier in the Upper Engadine, Swiss Alps, using the 1D physical SNOWPACK model. A correct representation of the near surface energy balance is important to predict the long term evolution of permafrost below rock glaciers. This is of interest in the context of future water availability and management of water resources in a changing climate and also in the context of natural hazards. Some difficulties in modelling the thermal regime of rock glaciers are related to the large pore spaces between the blocks, which allow for different modes of heat transport. With this in mind, different modelling approaches were investigated: using the standard SNOWPACK (without advective heat flux, ventilation or canopy module), adding an advective heat flux, using the ventilation and canopy modules. The most promising results, i.e. the best match between measured and modelled temperatures, were obtained from the ventilation parameterisation. This parameterisation accounts for boundary-layer air penetrating into the blocky layer. Furthermore it was found that the most important input variables are the thickness of the the blocky layer, since this is where the additional modes of heat exchange take place, and the ice and void volume fraction together with the field capacity in the icy layer. The latter are particularly relevant for long term modelling as they determine the amount of ice melt and water transport in the icy layer. Measured and modelled temperatures at depths of 0.5 m, 2.5 m, 3.5 m and 7.5 m were compared. Generally good agreements between modelled and measured temperatures were obtained for the depths 0.5 m, 3.5 m and 7.5 m. The slight warming trend at the end of the modelled period (2012- 2016) that can be observed in the borehole data is also present in the modelled temperatures. The depth of 2.5 m shows the least agreement between modelled and measured temperatures with and overestimation during the snow free period and an underestimation during the snow covered period. However, agreement between modelled and measured temperatures improves for the snow covered period after a simulation period of about ten years.
author Pruessner, Luisa
author_facet Pruessner, Luisa
author_sort Pruessner, Luisa
title Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
title_short Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
title_full Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
title_fullStr Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
title_full_unstemmed Near-Surface Energy Balance on an Alpine Rock Glacier: Murtèl-Corvatsch
title_sort near-surface energy balance on an alpine rock glacier: murtèl-corvatsch
publisher Uppsala universitet, Luft-, vatten och landskapslära
publishDate 2017
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-323564
work_keys_str_mv AT pruessnerluisa nearsurfaceenergybalanceonanalpinerockglaciermurtelcorvatsch
AT pruessnerluisa ytnaraenergibalansenpaalpinblockglaciarenmurtelcorvatsch
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