Gas dynamics within landfast sea ice of an Arctic fjord (NE Greenland) during the spring-summer transition

被引:1
|
作者
Geilfus, Nicolas-Xavier [1 ,2 ]
Delille, Bruno [3 ]
Tison, Jean-Louis [4 ]
Lemes, Marcos [1 ]
Rysgaard, Soren [1 ,5 ,6 ]
机构
[1] Univ Manitoba, Ctr Earth Observat Sci, Dept Environm & Geog, Winnipeg, MB, Canada
[2] Univ Helsinki, Tvarminne Zool Stn, Hango, Finland
[3] Univ Liege, Chem Oceanog Unit, Liege, Belgium
[4] Univ Libre Bruxelles, Lab Glaciol, DGES IGEOS, Brussels, Belgium
[5] Greenland Inst Nat Resources, Greenland Climate Res Ctr, Nuuk, Greenland
[6] Aarhus Univ, Arctic Res Ctr, Aarhus, Denmark
来源
ELEMENTA-SCIENCE OF THE ANTHROPOCENE | 2023年 / 11卷 / 01期
基金
加拿大创新基金会; 加拿大自然科学与工程研究理事会;
关键词
Sea ice; CO2; Gas; Melt ponds; Carbonate system; INORGANIC CARBON SYSTEM; INTERNAL CONSISTENCY; WEDDELL SEA; MELT PONDS; CO2; OCEAN; WATER; OXYGEN; TRANSPORT; EXCHANGE;
D O I
10.1525/elementa.2022.00056
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Sea ice is an active component of the Earth's climate system, interacting with both the atmosphere and the ocean. Arctic sea ice is commonly covered by melt ponds during late spring and summer, strongly affecting sea ice physical and optical properties. How melt pond formation affects sea ice gas dynamics and exchanges between sea ice and the atmosphere, with potential feedbacks on climate, is not well known. Here we measured concentrations of N2, O2, and Ar, total alkalinity, and dissolved inorganic carbon within sea ice of Young Sound, NE Greenland, to examine how melt pond formation and meltwater drainage through the ice affect its physical properties and gas composition, including impacts on CO2 exchange with the atmosphere. Sea ice gas composition was controlled mainly by physical processes, with most of the gas initially in gaseous form in the upper ice layer. A minor contribution from biological processes was associated with positive estimates of net community production (up to 2.6 mmol Lice-1 d-1), indicating that the ice was net autotrophic. As the sea ice warmed, the upper ice gas concentrations decreased, suggesting a release of gas bubbles to the atmosphere. However, as melt ponds formed, the ice surface became strongly depleted in gases. Due to melt pond development, meltwater permeated through the ice, resulting in the formation of an underwater ice layer also depleted in gases. Sea ice, including brine, slush, and melt ponds, was undersaturated in CO2 compared to the atmosphere, supporting an uptake of up to-4.26 mmol m-2 d-1 of atmospheric CO2. As melt pond formation progressed, however, this uptake weakened in the strongly altered remaining ice surface (the "white ice"), averaging -0.04 mmol m-2 d-1. This study reveals the importance of melt pond formation and dynamics for sea ice gas composition.
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页数:27
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  • [11] Inorganic carbon system dynamics in landfast Arctic sea ice during the early-melt period
    Brown, Kristina A.
    Miller, Lisa A.
    Mundy, C. J.
    Papakyriakou, Tim
    Francois, Roger
    Gosselin, Michel
    Carnat, Gauthier
    Swystun, Kyle
    Tortell, Philippe D.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2015, 120 (05) : 3542 - 3566
  • [12] CHANGES IN THE SEA-ICE BRINE COMMUNITY DURING THE SPRING-SUMMER TRANSITION, MCMURDO SOUND, ANTARCTICA .1. PHOTOSYNTHETIC PROTISTS
    STOECKER, DK
    BUCK, KR
    PUTT, M
    [J]. MARINE ECOLOGY PROGRESS SERIES, 1992, 84 (03) : 265 - 278
  • [13] Short-term dynamics and interactions of marine protist communities during the spring-summer transition
    Berdjeb, Lyria
    Parada, Alma
    Needham, David M.
    Fuhrman, Jed A.
    [J]. ISME JOURNAL, 2018, 12 (08): : 1907 - 1917
  • [14] Cell viability, pigments and photosynthetic performance of Arctic phytoplankton in contrasting ice-covered and open-water conditions during the spring-summer transition
    Alou-Font, Eva
    Roy, Suzanne
    Agusti, Susana
    Gosselin, Michel
    [J]. MARINE ECOLOGY PROGRESS SERIES, 2016, 543 : 89 - 106
  • [15] Ice-nucleating particle concentration measurements from Ny-Alesund during the Arctic spring-summer in 2018
    Rinaldi, Matteo
    Hiranuma, Naruki
    Santachiara, Gianni
    Mazzola, Mauro
    Mansour, Karam
    Paglione, Marco
    Rodriguez, Cheyanne A.
    Traversi, Rita
    Becagli, Silvia
    Cappelletti, David
    Belosi, Franco
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2021, 21 (19) : 14725 - 14748
  • [16] Landfast sea ice-benthic coupling during spring and potential impacts of system changes on food web dynamics in Eclipse Sound, Canadian Arctic
    Kohlbach, Doreen
    Ferguson, Steven H.
    Brown, Thomas A.
    Michel, Christine
    [J]. MARINE ECOLOGY PROGRESS SERIES, 2019, 627 : 33 - 48
  • [17] Summer meltwater and spring sea ice primary production, light climate and nutrients in an Arctic estuary, Kangedussuaq, west Greenland
    Lund-Hansen, Lars Chresten
    Hawes, Ian
    Nielsen, Morten Holtegaard
    Dahllof, Ingela
    Sorrell, Brian K.
    [J]. ARCTIC ANTARCTIC AND ALPINE RESEARCH, 2018, 50 (01)
  • [18] Physical and biological controls on DMS,P dynamics in ice shelf-influenced fast ice during a winter-spring and a spring-summer transitions
    Carnat, Gauthier
    Zhou, Jiayun
    Papakyriakou, Tim
    Delille, Bruno
    Goossens, Thomas
    Haskell, Tim
    Schoemann, Veronique
    Fripiat, Francois
    Rintala, Janne-Markus
    Tison, Jean-Louis
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2014, 119 (05) : 2882 - 2905
  • [19] Measurements of aerosol and CCN properties in the Mackenzie River delta (Canadian Arctic) during spring-summer transition in May 2014
    Herenz, Paul
    Wex, Heike
    Henning, Silvia
    Kristensen, Thomas Bjerring
    Rubach, Florian
    Roth, Anja
    Borrmann, Stephan
    Bozem, Heiko
    Schulz, Hannes
    Stratmann, Frank
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2018, 18 (07) : 4477 - 4496
  • [20] Optical, Structural and Kinematic Characteristics of Freshwater Plumes Under Landfast Sea Ice During the Spring Freshet in the Alaskan Coastal Arctic
    Okkonen, Stephen R.
    Laney, Samuel R.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2021, 126 (12)