The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica

© Author(s) 2020. The McMurdo Dry Valleys (MDVs) of Antarctica are a polar desert ecosystem consisting of alpine glaciers, ice-covered lakes, streams, and expanses of vegetation-free rocky soil. Because average summer temperatures are close to 0 °C, the MDV ecosystem in general, and glacier melt dyn...

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Published in:The Cryosphere
Main Authors: Bergstrom, Anna, Gooseff, Michael N., Myers, Madeline, Doran, Peter T., Cross, Julian M.
Format: Text
Language:unknown
Published: LSU Digital Commons 2020
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Online Access:https://digitalcommons.lsu.edu/geo_pubs/581
https://doi.org/10.5194/tc-14-769-2020
https://digitalcommons.lsu.edu/context/geo_pubs/article/1580/viewcontent/581.pdf
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spelling ftlouisianastuir:oai:digitalcommons.lsu.edu:geo_pubs-1580 2023-06-11T04:06:19+02:00 The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica Bergstrom, Anna Gooseff, Michael N. Myers, Madeline Doran, Peter T. Cross, Julian M. 2020-03-04T08:00:00Z application/pdf https://digitalcommons.lsu.edu/geo_pubs/581 https://doi.org/10.5194/tc-14-769-2020 https://digitalcommons.lsu.edu/context/geo_pubs/article/1580/viewcontent/581.pdf unknown LSU Digital Commons https://digitalcommons.lsu.edu/geo_pubs/581 doi:10.5194/tc-14-769-2020 https://digitalcommons.lsu.edu/context/geo_pubs/article/1580/viewcontent/581.pdf Faculty Publications text 2020 ftlouisianastuir https://doi.org/10.5194/tc-14-769-2020 2023-05-28T18:25:11Z © Author(s) 2020. The McMurdo Dry Valleys (MDVs) of Antarctica are a polar desert ecosystem consisting of alpine glaciers, ice-covered lakes, streams, and expanses of vegetation-free rocky soil. Because average summer temperatures are close to 0 °C, the MDV ecosystem in general, and glacier melt dynamics in particular, are both closely linked to the energy balance. A slight increase in incoming radiation or change in albedo can have large effects on the timing and volume of meltwater. However, the seasonal evolution or spatial variability of albedo in the valleys has yet to fully characterized. In this study, we aim to understand the drivers of landscape albedo change within and across seasons. To do so, a box with a camera, GPS, and shortwave radiometer was hung from a helicopter that flew transects four to five times a season along Taylor Valley. Measurements were repeated over three seasons. These data were coupled with incoming radiation measured at six meteorological stations distributed along the valley to calculate the distribution of albedo across individual glaciers, lakes, and soil surfaces. We hypothesized that albedo would decrease throughout the austral summer with ablation of snow patches and increasing sediment exposure on the glacier and lake surfaces. However, small snow events (< 6mm water equivalent) coupled with ice whitening caused spatial and temporal variability of albedo across the entire landscape. Glaciers frequently followed a pattern of increasing albedo with increasing elevation, as well as increasing albedo moving from east to west laterally across the ablation zone. We suggest that spatial patterns of albedo are a function of landscape morphology trapping snow and sediment, longitudinal gradients in snowfall magnitude, and wind-driven snow redistribution from east to west along the valley. We also compare our albedo measurements to the MODIS albedo product and found that overall the data have reasonable agreement. The mismatch in spatial scale between these two datasets results ... Text Antarc* Antarctica McMurdo Dry Valleys polar desert LSU Digital Commons (Louisiana State University) Austral McMurdo Dry Valleys Taylor Valley ENVELOPE(163.000,163.000,-77.617,-77.617) The Cryosphere 14 3 769 788
institution Open Polar
collection LSU Digital Commons (Louisiana State University)
op_collection_id ftlouisianastuir
language unknown
description © Author(s) 2020. The McMurdo Dry Valleys (MDVs) of Antarctica are a polar desert ecosystem consisting of alpine glaciers, ice-covered lakes, streams, and expanses of vegetation-free rocky soil. Because average summer temperatures are close to 0 °C, the MDV ecosystem in general, and glacier melt dynamics in particular, are both closely linked to the energy balance. A slight increase in incoming radiation or change in albedo can have large effects on the timing and volume of meltwater. However, the seasonal evolution or spatial variability of albedo in the valleys has yet to fully characterized. In this study, we aim to understand the drivers of landscape albedo change within and across seasons. To do so, a box with a camera, GPS, and shortwave radiometer was hung from a helicopter that flew transects four to five times a season along Taylor Valley. Measurements were repeated over three seasons. These data were coupled with incoming radiation measured at six meteorological stations distributed along the valley to calculate the distribution of albedo across individual glaciers, lakes, and soil surfaces. We hypothesized that albedo would decrease throughout the austral summer with ablation of snow patches and increasing sediment exposure on the glacier and lake surfaces. However, small snow events (< 6mm water equivalent) coupled with ice whitening caused spatial and temporal variability of albedo across the entire landscape. Glaciers frequently followed a pattern of increasing albedo with increasing elevation, as well as increasing albedo moving from east to west laterally across the ablation zone. We suggest that spatial patterns of albedo are a function of landscape morphology trapping snow and sediment, longitudinal gradients in snowfall magnitude, and wind-driven snow redistribution from east to west along the valley. We also compare our albedo measurements to the MODIS albedo product and found that overall the data have reasonable agreement. The mismatch in spatial scale between these two datasets results ...
format Text
author Bergstrom, Anna
Gooseff, Michael N.
Myers, Madeline
Doran, Peter T.
Cross, Julian M.
spellingShingle Bergstrom, Anna
Gooseff, Michael N.
Myers, Madeline
Doran, Peter T.
Cross, Julian M.
The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
author_facet Bergstrom, Anna
Gooseff, Michael N.
Myers, Madeline
Doran, Peter T.
Cross, Julian M.
author_sort Bergstrom, Anna
title The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
title_short The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
title_full The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
title_fullStr The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
title_full_unstemmed The seasonal evolution of albedo across glaciers and the surrounding landscape of Taylor Valley, Antarctica
title_sort seasonal evolution of albedo across glaciers and the surrounding landscape of taylor valley, antarctica
publisher LSU Digital Commons
publishDate 2020
url https://digitalcommons.lsu.edu/geo_pubs/581
https://doi.org/10.5194/tc-14-769-2020
https://digitalcommons.lsu.edu/context/geo_pubs/article/1580/viewcontent/581.pdf
long_lat ENVELOPE(163.000,163.000,-77.617,-77.617)
geographic Austral
McMurdo Dry Valleys
Taylor Valley
geographic_facet Austral
McMurdo Dry Valleys
Taylor Valley
genre Antarc*
Antarctica
McMurdo Dry Valleys
polar desert
genre_facet Antarc*
Antarctica
McMurdo Dry Valleys
polar desert
op_source Faculty Publications
op_relation https://digitalcommons.lsu.edu/geo_pubs/581
doi:10.5194/tc-14-769-2020
https://digitalcommons.lsu.edu/context/geo_pubs/article/1580/viewcontent/581.pdf
op_doi https://doi.org/10.5194/tc-14-769-2020
container_title The Cryosphere
container_volume 14
container_issue 3
container_start_page 769
op_container_end_page 788
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