Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)

We estimate the sub-surface energy budget and heat fluxes in the coarse-blocky active layer (AL) of the Murtèl rock glacier, a seasonally snow-covered permafrost landform located in the eastern Swiss Alps. In the highly permeable AL, conductive/diffusive heat transfer including thermal ra...

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Main Authors: Amschwand, Dominik, Wicky, Jonas, Scherler, Martin, Hoelzle, Martin, Krummenacher, Bernhard, Haberkorn, Anna, Kienholz, Christian, Gubler, Hansueli
Format: Text
Language:English
Published: 2024
Subjects:
Ice
Online Access:https://doi.org/10.5194/egusphere-2024-172
https://egusphere.copernicus.org/preprints/2024/egusphere-2024-172/
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spelling ftcopernicus:oai:publications.copernicus.org:egusphere117639 2024-09-15T18:11:32+00:00 Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps) Amschwand, Dominik Wicky, Jonas Scherler, Martin Hoelzle, Martin Krummenacher, Bernhard Haberkorn, Anna Kienholz, Christian Gubler, Hansueli 2024-03-25 application/pdf https://doi.org/10.5194/egusphere-2024-172 https://egusphere.copernicus.org/preprints/2024/egusphere-2024-172/ eng eng doi:10.5194/egusphere-2024-172 https://egusphere.copernicus.org/preprints/2024/egusphere-2024-172/ eISSN: Text 2024 ftcopernicus https://doi.org/10.5194/egusphere-2024-172 2024-08-28T05:24:15Z We estimate the sub-surface energy budget and heat fluxes in the coarse-blocky active layer (AL) of the Murtèl rock glacier, a seasonally snow-covered permafrost landform located in the eastern Swiss Alps. In the highly permeable AL, conductive/diffusive heat transfer including thermal radiation, non-conductive heat transfer by air circulation (convection), and heat storage changes from seasonal accretion and melting of ground ice shape the ground thermal regime. We quantify individual heat fluxes based on a novel in-situ sensor array in the AL and direct observations of the ground ice melt in the years 2020–2022. Two thaw-season mechanisms render Murtèl rock glacier comparatively climate-resilient. First, the AL intercepts ~70 % (55–85 MJ m −2 ) of the thaw-season ground heat flux by melting ground ice that runs off as meltwater, ~20 % (10–20 MJ m − 2 ) is spent on heating the blocks, and only ~10 % (7–13 MJ m − 2 ) is transferred into the permafrost body beneath and causes slow permafrost degradation. Second, the effective thermal conductivity in the ventilated AL increases from 1.2 W m − 1 K − 1 under strongly stable temperature gradients to episodically over 10 W m − 1 K − 1 under unstable temperature gradients, favouring convective cooling by buoyancy-driven Rayleigh ventilation (thermal semiconductor effect). In winter, radiatively cooled air infiltrating through a discontinuous, semi-closed snowcover leads to strong AL cooling. The two characteristic parameters (effective thermal conductivity and intrinsic permeability) are sensitive to debris texture, hence these convective undercooling processes are specific to highly permeable coarse-blocky material. Text Ice permafrost Copernicus Publications: E-Journals
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description We estimate the sub-surface energy budget and heat fluxes in the coarse-blocky active layer (AL) of the Murtèl rock glacier, a seasonally snow-covered permafrost landform located in the eastern Swiss Alps. In the highly permeable AL, conductive/diffusive heat transfer including thermal radiation, non-conductive heat transfer by air circulation (convection), and heat storage changes from seasonal accretion and melting of ground ice shape the ground thermal regime. We quantify individual heat fluxes based on a novel in-situ sensor array in the AL and direct observations of the ground ice melt in the years 2020–2022. Two thaw-season mechanisms render Murtèl rock glacier comparatively climate-resilient. First, the AL intercepts ~70 % (55–85 MJ m −2 ) of the thaw-season ground heat flux by melting ground ice that runs off as meltwater, ~20 % (10–20 MJ m − 2 ) is spent on heating the blocks, and only ~10 % (7–13 MJ m − 2 ) is transferred into the permafrost body beneath and causes slow permafrost degradation. Second, the effective thermal conductivity in the ventilated AL increases from 1.2 W m − 1 K − 1 under strongly stable temperature gradients to episodically over 10 W m − 1 K − 1 under unstable temperature gradients, favouring convective cooling by buoyancy-driven Rayleigh ventilation (thermal semiconductor effect). In winter, radiatively cooled air infiltrating through a discontinuous, semi-closed snowcover leads to strong AL cooling. The two characteristic parameters (effective thermal conductivity and intrinsic permeability) are sensitive to debris texture, hence these convective undercooling processes are specific to highly permeable coarse-blocky material.
format Text
author Amschwand, Dominik
Wicky, Jonas
Scherler, Martin
Hoelzle, Martin
Krummenacher, Bernhard
Haberkorn, Anna
Kienholz, Christian
Gubler, Hansueli
spellingShingle Amschwand, Dominik
Wicky, Jonas
Scherler, Martin
Hoelzle, Martin
Krummenacher, Bernhard
Haberkorn, Anna
Kienholz, Christian
Gubler, Hansueli
Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
author_facet Amschwand, Dominik
Wicky, Jonas
Scherler, Martin
Hoelzle, Martin
Krummenacher, Bernhard
Haberkorn, Anna
Kienholz, Christian
Gubler, Hansueli
author_sort Amschwand, Dominik
title Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
title_short Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
title_full Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
title_fullStr Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
title_full_unstemmed Sub-surface processes and heat fluxes at coarse-blocky Murtèl rock glacier (Engadine, eastern Swiss Alps)
title_sort sub-surface processes and heat fluxes at coarse-blocky murtèl rock glacier (engadine, eastern swiss alps)
publishDate 2024
url https://doi.org/10.5194/egusphere-2024-172
https://egusphere.copernicus.org/preprints/2024/egusphere-2024-172/
genre Ice
permafrost
genre_facet Ice
permafrost
op_source eISSN:
op_relation doi:10.5194/egusphere-2024-172
https://egusphere.copernicus.org/preprints/2024/egusphere-2024-172/
op_doi https://doi.org/10.5194/egusphere-2024-172
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