2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf

Ice shelf basal melting is the major cause of the current mass loss of Antarctic ice sheets. The resultant meltwater plumes contribute to the development of the unique two-layer stratified ice shelf–ocean boundary currents underlain by warmer, saltier, and stationary source waters. However, knowledg...

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Main Authors: Cheng, C., Wang, Z., Shen, L., Liu, C.
Format: Conference Object
Language:English
Published: 2023
Subjects:
Online Access:https://gfzpublic.gfz-potsdam.de/pubman/item/item_5016156
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spelling ftgfzpotsdam:oai:gfzpublic.gfz-potsdam.de:item_5016156 2023-06-11T04:03:28+02:00 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf Cheng, C. Wang, Z. Shen, L. Liu, C. 2023 https://gfzpublic.gfz-potsdam.de/pubman/item/item_5016156 eng eng info:eu-repo/semantics/altIdentifier/doi/10.57757/IUGG23-0295 https://gfzpublic.gfz-potsdam.de/pubman/item/item_5016156 XXVIII General Assembly of the International Union of Geodesy and Geophysics (IUGG) info:eu-repo/semantics/conferenceObject 2023 ftgfzpotsdam https://doi.org/10.57757/IUGG23-0295 2023-04-23T23:38:34Z Ice shelf basal melting is the major cause of the current mass loss of Antarctic ice sheets. The resultant meltwater plumes contribute to the development of the unique two-layer stratified ice shelf–ocean boundary currents underlain by warmer, saltier, and stationary source waters. However, knowledge of the thermodynamics within these plumes, controlling the heat available for melting ice, remains outstanding. To this end, we investigated that important issue by developing a 2.5-dimensional nonhydrostatic vertical slice model with 1.5 m vertical resolution, and conducted the reference run based on a representative Ice Shelf Water (ISW)-High Salinity Shelf Water (HSSW) boundary current beneath the Amery Ice Shelf, East Antarctica. Based on that we identified two dominating vertical thermal processes regulating the local temperature: the turbulent diffusion and the shear instabilities-induced convection, and carried out a quantitative thermal budget analysis in the framework of plume model, including deriving an analytical expression for the entrainment-induced heat flux. Moreover, after evaluating the entrainment parametrizations, we found that the common assumption of neglecting the velocity at the lower boundary of meltwater plume potentially leads to a considerable deviation from the real entrainment. The sensitivity of the simulated results to model configuration and model resolution are also investigated. The findings in this study imply that we need to improve the model resolution of current ocean cavity models to sufficiently resolve the interfacial processes between lighter–denser waters. Conference Object Amery Ice Shelf Antarc* Antarctic Antarctica East Antarctica Ice Shelf GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam) Amery ENVELOPE(-94.063,-94.063,56.565,56.565) Amery Ice Shelf ENVELOPE(71.000,71.000,-69.750,-69.750) Antarctic East Antarctica
institution Open Polar
collection GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)
op_collection_id ftgfzpotsdam
language English
description Ice shelf basal melting is the major cause of the current mass loss of Antarctic ice sheets. The resultant meltwater plumes contribute to the development of the unique two-layer stratified ice shelf–ocean boundary currents underlain by warmer, saltier, and stationary source waters. However, knowledge of the thermodynamics within these plumes, controlling the heat available for melting ice, remains outstanding. To this end, we investigated that important issue by developing a 2.5-dimensional nonhydrostatic vertical slice model with 1.5 m vertical resolution, and conducted the reference run based on a representative Ice Shelf Water (ISW)-High Salinity Shelf Water (HSSW) boundary current beneath the Amery Ice Shelf, East Antarctica. Based on that we identified two dominating vertical thermal processes regulating the local temperature: the turbulent diffusion and the shear instabilities-induced convection, and carried out a quantitative thermal budget analysis in the framework of plume model, including deriving an analytical expression for the entrainment-induced heat flux. Moreover, after evaluating the entrainment parametrizations, we found that the common assumption of neglecting the velocity at the lower boundary of meltwater plume potentially leads to a considerable deviation from the real entrainment. The sensitivity of the simulated results to model configuration and model resolution are also investigated. The findings in this study imply that we need to improve the model resolution of current ocean cavity models to sufficiently resolve the interfacial processes between lighter–denser waters.
format Conference Object
author Cheng, C.
Wang, Z.
Shen, L.
Liu, C.
spellingShingle Cheng, C.
Wang, Z.
Shen, L.
Liu, C.
2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
author_facet Cheng, C.
Wang, Z.
Shen, L.
Liu, C.
author_sort Cheng, C.
title 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
title_short 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
title_full 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
title_fullStr 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
title_full_unstemmed 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
title_sort 2.5-dimensionally modeling the thermodynamics of the ice shelf–ocean boundary current underlain by strong pycnocline beneath a cold-water ice shelf
publishDate 2023
url https://gfzpublic.gfz-potsdam.de/pubman/item/item_5016156
long_lat ENVELOPE(-94.063,-94.063,56.565,56.565)
ENVELOPE(71.000,71.000,-69.750,-69.750)
geographic Amery
Amery Ice Shelf
Antarctic
East Antarctica
geographic_facet Amery
Amery Ice Shelf
Antarctic
East Antarctica
genre Amery Ice Shelf
Antarc*
Antarctic
Antarctica
East Antarctica
Ice Shelf
genre_facet Amery Ice Shelf
Antarc*
Antarctic
Antarctica
East Antarctica
Ice Shelf
op_source XXVIII General Assembly of the International Union of Geodesy and Geophysics (IUGG)
op_relation info:eu-repo/semantics/altIdentifier/doi/10.57757/IUGG23-0295
https://gfzpublic.gfz-potsdam.de/pubman/item/item_5016156
op_doi https://doi.org/10.57757/IUGG23-0295
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