Studies of Labrador Sea Water formation and variability in the subpolar North Atlantic in the light of international partnership and collaboration

被引:92
作者
Kieke, Dagmar [1 ]
Yashayaev, Igor [2 ]
机构
[1] Univ Bremen, AG Ozeanogr, Inst Umweltphys, D-28359 Bremen, Germany
[2] Bedford Inst Oceanog, Dept Fisheries & Oceans, Ocean Sci Div, Dartmouth, NS, Canada
关键词
OPEN-OCEAN CONVECTION; DEEP-WATER; BOUNDARY CURRENT; IRMINGER SEA; CLIMATE VARIABILITY; WESTERN BOUNDARY; CIRCULATION; TRANSPORT; OSCILLATION; INVENTORIES;
D O I
10.1016/j.pocean.2014.12.010
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Labrador Sea Water (LSW), the lightest contribution to North Atlantic Deep Water (NADW) and one of the most prominent water masses of the subpolar North Atlantic, has seen remarkable changes over the past century. LSW originates in the Labrador Sea, where it is formed through wintertime ocean convection of varying intensity, depth and spatial extent. Formation of LSW, followed by its respective injection into the mid-depth circulation system, is mandatory for ventilating and renewing water layers of the interior ocean. Indispensably important for unraveling the history of variability in formation and properties of LSW as well as for mapping its large-scale spreading and export are sustained physical and chemical observations from the deep ocean. These observations started at the beginning of the 20th century from occasional mostly national surveys and today constitute large-scale multi-national collaborative efforts including a vast arsenal of sophisticated instrumentation. In a historical context, we revisit major milestones over the past 100 years which have established and are constantly adding to shaping today's knowledge on LSW, and present first details on the latest vintage of LSW generated during the strong winter of 2013/2014. Respective Argo data reveal mixed-layer depths greater than 1700 m marking formation of a new cold and fresh anomaly that has spread since then over the subpolar North Atlantic. We further summarize the on-going observational efforts in the subpolar North Atlantic and present a compilation of hydrographic standard lines that serve to provide top-to-bottom information on NADW components. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:220 / 232
页数:13
相关论文
共 114 条
[51]  
2
[52]   Convection and restratification in the Labrador Sea, 1990-2000 [J].
Lazier, J ;
Hendry, R ;
Clarke, A ;
Yashayaev, I ;
Rhines, P .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2002, 49 (10) :1819-1835
[53]  
Lazier J., 1980, ATMOS OCEAN, V18, P227, DOI DOI 10.1080/07055900.1980.9649089
[54]   RENEWAL OF LABRADOR SEA-WATER [J].
LAZIER, JRN .
DEEP-SEA RESEARCH, 1973, 20 (04) :341-353
[55]   The formation rate of North Atlantic Deep Water and Eighteen Degree Water calculated from CFC-11 inventories observed during WOCE [J].
LeBel, Deborah A. ;
Smethie, William M., Jr. ;
Rhein, Monika ;
Kieke, Dagmar ;
Fine, Rana A. ;
Bullister, John L. ;
Min, Dong-Ha ;
Roether, Wolfgang ;
Weiss, Ray F. ;
Andrie, Chantal ;
Smythe-Wright, Denise ;
Jones, E. Peter .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2008, 55 (08) :891-910
[56]   Climate variability, fish, and fisheries [J].
Lehodey, P. ;
Alheit, J. ;
Barange, M. ;
Baumgartner, T. ;
Beaugrand, G. ;
Drinkwater, K. ;
Fromentin, J. -M. ;
Hare, S. R. ;
Ottersen, G. ;
Perry, R. I. ;
Roy, C. ;
Van Der Lingen, C. D. ;
Werner, F. .
JOURNAL OF CLIMATE, 2006, 19 (20) :5009-5030
[57]  
Lilly JM, 1999, J PHYS OCEANOGR, V29, P2065, DOI 10.1175/1520-0485(1999)029<2065:ODCITL>2.0.CO
[58]  
2
[59]   Observations of the Labrador Sea eddy field [J].
Lilly, JM ;
Rhines, PB ;
Schott, F ;
Lavender, K ;
Lazier, J ;
Send, U ;
D'Asaro, E .
PROGRESS IN OCEANOGRAPHY, 2003, 59 (01) :75-176
[60]   North Atlantic climate variability: Phenomena, impacts and mechanisms [J].
Marshall, J ;
Kushner, Y ;
Battisti, D ;
Chang, P ;
Czaja, A ;
Dickson, R ;
Hurrell, J ;
McCartney, M ;
Saravanan, R ;
Visbeck, M .
INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2001, 21 (15) :1863-1898