Effect of Antarctic sea ice on chlorophyll concentration in the Southern Ocean

被引:13
作者
Behera, Nibedita [1 ]
Swain, Debadatta [1 ]
Sil, Sourav [1 ]
机构
[1] Indian Inst Technol Bhubaneswar, Sch Earth Ocean & Climate Sci, Argul Campus, Jatni 752050, Odisha, India
关键词
Chlorophyll concentration; Antarctic sea-ice extent; Katabatic winds; Nutricline; Southern ocean; BGC-Argo; MULTICHANNEL MICROWAVE RADIOMETER; SATELLITE-OBSERVATIONS; A CONCENTRATION; PHYTOPLANKTON; VARIABILITY; DYNAMICS; IMAGER/SOUNDER; ALGORITHMS; SUMMER; TRENDS;
D O I
10.1016/j.dsr2.2020.104853
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Sea-ice extent is very sensitive to climate change and its minor variations can significantly affect the regional biota of the Southern Ocean (SO). Chlorophyll-a concentration (Chl-a) is a primary proxy for the understanding of phytoplankton distribution and primary productivity in the oceans. Therefore, analysing the relation between Chl-a and sea-ice extent could be significant in understanding the role of SO sea-ice extent on regional Chl-a variability. Local Chl-a variability in the SO was analysed in five major sectors, utilizing 39 years of remotely sensed sea ice and 15 years of Chl-a and Sea Surface Temperature (SST) datasets. Katabatic winds blowing offshore from the Antarctic coast were found to enhance the sea-ice extent during winter and diminish sea-ice melting in the austral summer in the SO. Thus, cold polar wind enhanced the sea-ice extent whereas warm subtropical winds reduced its formation. The Weddell Sea region showed the highest monthly averaged sea-ice extent of 6.2 x 10(6)km(2) during September (austral spring), whereas monthly averaged sea-ice extent was less than 2.9 x 10(6) km(2) for any other region. The largest sea-ice extent of 2 x 10(4)km(2) was observed in the Ross Sea during the austral summer (December, January, and February) owing to the katabatic winds. All other regions reported sea-ice extents below 1.15 x 10(4)km(2). Melting of sea ice during the austral summer was responsible for enhanced Chl-a in the SO through increased availability of nutrients in the near surface waters. Considering Chl-a as a proxy for productivity in the SO, the western sector (Weddell, Bellam and Ross Sea regions) was found to be more productive than the eastern sector (Indian and Pacific Ocean regions) during the study period. To understand the vertical variation of physical and biogeochemical variables and their influence on Chl-a variability, data from a few active Biogeochemical-Argo floats in the region were analysed. It was concluded that while the surface Chl-a was directly influenced by SST variations and sea-ice melting, the nutricline influenced the depth of Deep Chlorophyll Maximum (DCM) and Chl-a vertical distribution in the SO.
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页数:13
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共 64 条
[1]  
[Anonymous], 2014, MODIS-Aqua Level-2 Ocean Color Data Version 2014, DOI DOI 10.5067/AQUA/MODIS_OC.2014.0
[2]   Primary production in the Southern Ocean, 1997-2006 [J].
Arrigo, Kevin R. ;
van Dijken, Gert L. ;
Bushinsky, Seth .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2008, 113 (C8)
[3]   Assessing the Variability in the Relationship Between the Particulate Backscattering Coefficient and the Chlorophyll a Concentration From a Global Biogeochemical-Argo Database [J].
Barbieux, Marie ;
Uitz, Julia ;
Bricaud, Annick ;
Organelli, Emanuele ;
Poteau, Antoine ;
Schmechtig, Catherine ;
Gentili, Bernard ;
Obolensky, Grigor ;
Leymarie, Edouard ;
Penkerc'h, Christophe ;
D'Ortenzio, Fabrizio ;
Claustre, Herve .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2018, 123 (02) :1229-1250
[4]   Distribution of living planktonic foraminifera in the Ross Sea and the Pacific sector of the Southern Ocean (Antarctica) [J].
Bergami, C. ;
Capotondi, L. ;
Langone, L. ;
Giglio, F. ;
Ravaioli, M. .
MARINE MICROPALEONTOLOGY, 2009, 73 (1-2) :37-48
[5]  
Berrisford P., 2011, ERA INTERIM ARCHIVE
[6]  
BOMMARITO J, 1993, P SOC PHOTO-OPT INS, V1935, P230, DOI 10.1117/12.152601
[7]   In situ evaluation of the initiation of the North Atlantic phytoplankton bloom [J].
Boss, E. ;
Behrenfeld, M. .
GEOPHYSICAL RESEARCH LETTERS, 2010, 37
[8]  
Boucher D., 2005, DEFENSE METEOROLOGIC
[9]   Arctic sea ice variability and trends, 1979-2010 [J].
Cavalieri, D. J. ;
Parkinson, C. L. .
CRYOSPHERE, 2012, 6 (04) :881-889
[10]   Trends in the sea ice cover using enhanced and compatible AMSR-E, SSM/I, and SMMR data [J].
Comiso, Josefino C. ;
Nishio, Fumihiko .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2008, 113 (C2)