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  • Anticyclonic eddy  (1)
  • CTD; CTD/Rosette; CTD 1; CTD 10; CTD 100; CTD 101; CTD 102; CTD 103; CTD 104; CTD 105; CTD 106; CTD 107; CTD 108; CTD 109; CTD 11; CTD 110; CTD 111; CTD 112; CTD 113; CTD 115; CTD 12; CTD 13; CTD 14; CTD 15; CTD 16; CTD 17; CTD 18; CTD 19; CTD 2; CTD 20; CTD 21; CTD 22; CTD 23; CTD 24; CTD 25; CTD 26; CTD 27; CTD 28; CTD 29; CTD 3; CTD 30; CTD 31; CTD 32; CTD 33; CTD 34; CTD 35; CTD 36; CTD 37; CTD 38; CTD 39; CTD 4; CTD 40; CTD 41; CTD 42; CTD 43; CTD 44; CTD 45; CTD 46; CTD 47; CTD 48; CTD 49; CTD 5; CTD 50; CTD 51; CTD 52; CTD 53; CTD 54; CTD 55; CTD 56; CTD 57; CTD 58; CTD 59; CTD 6; CTD 60; CTD 61; CTD 62; CTD 63; CTD 64; CTD 65; CTD 66; CTD 67; CTD 68; CTD 69; CTD 7; CTD 70; CTD 71; CTD 72; CTD 73; CTD 74; CTD 75; CTD 76; CTD 77; CTD 78; CTD 79; CTD 8; CTD 80; CTD 81; CTD 82; CTD 83; CTD 84; CTD 85; CTD 86; CTD 87; CTD 88; CTD 89; CTD 9; CTD 90; CTD 91; CTD 92; CTD 93; CTD 94; CTD 95; CTD 96; CTD 97; CTD 98; CTD 99; CTD-RO; Date/Time of event; DEPTH, water; Elevation of event; Event label; Latitude of event; Longitude of event; M68/2; M68/2_130; M68/2_131; M68/2_132; M68/2_133; M68/2_134; M68/2_135; M68/2_136; M68/2_137; M68/2_138; M68/2_139; M68/2_140; M68/2_141; M68/2_142; M68/2_143; M68/2_144; M68/2_145; M68/2_147; M68/2_148; M68/2_149; M68/2_150; M68/2_151; M68/2_152; M68/2_153; M68/2_154; M68/2_155; M68/2_156; M68/2_157; M68/2_158; M68/2_159; M68/2_160; M68/2_163; M68/2_164; M68/2_170; M68/2_171; M68/2_172; M68/2_173; M68/2_174; M68/2_175; M68/2_176; M68/2_177; M68/2_178; M68/2_179; M68/2_181; M68/2_182; M68/2_183; M68/2_185; M68/2_186; M68/2_187; M68/2_189; M68/2_190; M68/2_192; M68/2_193; M68/2_194; M68/2_195; M68/2_196; M68/2_197; M68/2_198; M68/2_199; M68/2_200; M68/2_201; M68/2_202; M68/2_203; M68/2_204; M68/2_205; M68/2_206; M68/2_207; M68/2_208; M68/2_209; M68/2_210; M68/2_211; M68/2_212; M68/2_213; M68/2_214; M68/2_215; M68/2_216; M68/2_217; M68/2_218; M68/2_219; M68/2_220; M68/2_221; M68/2_222; M68/2_223; M68/2_224; M68/2_225; M68/2_226; M68/2_227; M68/2_228; M68/2_229; M68/2_230; M68/2_231; M68/2_232; M68/2_233; M68/2_234; M68/2_235; M68/2_236; M68/2_237; M68/2_238; M68/2_239; M68/2_240; M68/2_241; M68/2_242; M68/2_243; M68/2_244; M68/2_245; M68/2_246; M68/2_247; M68/2_248; M68/2_249; M68/2_250; M68/2_251; M68/2_252; M68/2_253; M68/2_254; M68/2_255; Meteor (1986); Oxygen; Pressure, water; Salinity; Temperature, water; Temperature, water, potential  (1)
Document type
Keywords
Years
  • 1
    Publication Date: 2022-05-26
    Description: Author Posting. © American Geophysical Union, 2014. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Journal of Geophysical Research: Ocean 119 (2014): 1068–1083, doi:10.1002/2013JC009470.
    Description: In the tropical eastern South Pacific the Stratus Ocean Reference Station (ORS) (∼20°S, 85.5°W) is located in the transition zone between the oxygen minimum zone (OMZ) and the well-oxygenated subtropical gyre. In February/March 2012, extremely anomalous water mass properties were observed in the thermocline at the Stratus ORS. The available eddy oxygen anomaly was −10.5 × 1016 µmol. This anomalous water was contained in an anticyclonic mode-water eddy crossing the mooring site. This eddy was absorbed at that time by an anticyclonic feature located south of the Stratus mooring. This was the largest water property anomaly observed at the mooring during the 13.5 month deployment period. The sea surface height anomaly (SSHA) of the strong mode-water eddy in February/March 2012 was weak, and while the lowest and highest SSHA were related to weak eddies, SSHA is found not to be sufficient to specify the eddy strength for subsurface-intensified eddies. Still, the anticyclonic eddy, and its related water mass characteristics, could be tracked backward in time in SSHA satellite data to a formation region in April 2011 off the Chilean coast. The resulting mean westward propagation velocity was 5.5 cm s−1. This extremely long-lived eddy carried the water characteristics from the near-coastal Chilean water to the open ocean. The water mass stayed isolated during the 11 month travel time due to high rotational speed of about 20 cm s−1 leading to almost zero oxygen in the subsurface layer of the anticyclonic mode-water eddy with indications of high primary production just below the mixed layer.
    Description: Financial support was received through Woods Hole Oceanographic Institution (R.A.W. and S.B.) and the GEOMAR (L.S. and R.C). The Stratus Ocean Reference Station is supported by the National Oceanic and Atmospheric Administration’s (NOAA) Climate Observation Program (NA09OAR4320129). This work is a contribution of the DFG-supported project SFB754 (http://www.sfb754.de) which is supported by the Deutsche Forschungsgemeinschaft.
    Description: 2014-08-12
    Keywords: Anticyclonic eddy ; Deoxygenation ; Stratus mooring ; Oxygen anomaly
    Repository Name: Woods Hole Open Access Server
    Type: Article
    Format: application/pdf
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  IFM-GEOMAR Leibniz-Institute of Marine Sciences, Kiel University
    Publication Date: 2024-02-02
    Keywords: CTD; CTD/Rosette; CTD 1; CTD 10; CTD 100; CTD 101; CTD 102; CTD 103; CTD 104; CTD 105; CTD 106; CTD 107; CTD 108; CTD 109; CTD 11; CTD 110; CTD 111; CTD 112; CTD 113; CTD 115; CTD 12; CTD 13; CTD 14; CTD 15; CTD 16; CTD 17; CTD 18; CTD 19; CTD 2; CTD 20; CTD 21; CTD 22; CTD 23; CTD 24; CTD 25; CTD 26; CTD 27; CTD 28; CTD 29; CTD 3; CTD 30; CTD 31; CTD 32; CTD 33; CTD 34; CTD 35; CTD 36; CTD 37; CTD 38; CTD 39; CTD 4; CTD 40; CTD 41; CTD 42; CTD 43; CTD 44; CTD 45; CTD 46; CTD 47; CTD 48; CTD 49; CTD 5; CTD 50; CTD 51; CTD 52; CTD 53; CTD 54; CTD 55; CTD 56; CTD 57; CTD 58; CTD 59; CTD 6; CTD 60; CTD 61; CTD 62; CTD 63; CTD 64; CTD 65; CTD 66; CTD 67; CTD 68; CTD 69; CTD 7; CTD 70; CTD 71; CTD 72; CTD 73; CTD 74; CTD 75; CTD 76; CTD 77; CTD 78; CTD 79; CTD 8; CTD 80; CTD 81; CTD 82; CTD 83; CTD 84; CTD 85; CTD 86; CTD 87; CTD 88; CTD 89; CTD 9; CTD 90; CTD 91; CTD 92; CTD 93; CTD 94; CTD 95; CTD 96; CTD 97; CTD 98; CTD 99; CTD-RO; Date/Time of event; DEPTH, water; Elevation of event; Event label; Latitude of event; Longitude of event; M68/2; M68/2_130; M68/2_131; M68/2_132; M68/2_133; M68/2_134; M68/2_135; M68/2_136; M68/2_137; M68/2_138; M68/2_139; M68/2_140; M68/2_141; M68/2_142; M68/2_143; M68/2_144; M68/2_145; M68/2_147; M68/2_148; M68/2_149; M68/2_150; M68/2_151; M68/2_152; M68/2_153; M68/2_154; M68/2_155; M68/2_156; M68/2_157; M68/2_158; M68/2_159; M68/2_160; M68/2_163; M68/2_164; M68/2_170; M68/2_171; M68/2_172; M68/2_173; M68/2_174; M68/2_175; M68/2_176; M68/2_177; M68/2_178; M68/2_179; M68/2_181; M68/2_182; M68/2_183; M68/2_185; M68/2_186; M68/2_187; M68/2_189; M68/2_190; M68/2_192; M68/2_193; M68/2_194; M68/2_195; M68/2_196; M68/2_197; M68/2_198; M68/2_199; M68/2_200; M68/2_201; M68/2_202; M68/2_203; M68/2_204; M68/2_205; M68/2_206; M68/2_207; M68/2_208; M68/2_209; M68/2_210; M68/2_211; M68/2_212; M68/2_213; M68/2_214; M68/2_215; M68/2_216; M68/2_217; M68/2_218; M68/2_219; M68/2_220; M68/2_221; M68/2_222; M68/2_223; M68/2_224; M68/2_225; M68/2_226; M68/2_227; M68/2_228; M68/2_229; M68/2_230; M68/2_231; M68/2_232; M68/2_233; M68/2_234; M68/2_235; M68/2_236; M68/2_237; M68/2_238; M68/2_239; M68/2_240; M68/2_241; M68/2_242; M68/2_243; M68/2_244; M68/2_245; M68/2_246; M68/2_247; M68/2_248; M68/2_249; M68/2_250; M68/2_251; M68/2_252; M68/2_253; M68/2_254; M68/2_255; Meteor (1986); Oxygen; Pressure, water; Salinity; Temperature, water; Temperature, water, potential
    Type: Dataset
    Format: text/tab-separated-values, 862570 data points
    Location Call Number Limitation Availability
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