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  • PANGAEA  (22)
  • Copernicus Publications on behalf of the European Geosciences Union  (2)
  • American Meteorological Society
  • 2015-2019  (24)
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  • 1
    Publication Date: 2022-05-25
    Description: © The Author(s), 2018. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Ocean Science 14 (2018): 731-750, doi:10.5194/os-14-731-2018.
    Description: The influence of mesoscale eddies on the flow field and the water masses, especially the oxygen distribution of the eastern tropical South Pacific, is investigated from a mooring, float, and satellite data set. Two anticyclonic (ACE1/2), one mode-water (MWE), and one cyclonic eddy (CE) are identified and followed in detail with satellite data on their westward transition with velocities of 3.2 to 6.0cms−1 from their generation region, the shelf of the Peruvian and Chilean upwelling regime, across the Stratus Ocean Reference Station (ORS;  ∼ 20°S, 85°W) to their decaying region far west in the oligotrophic open ocean. The ORS is located in the transition zone between the oxygen minimum zone and the well oxygenated South Pacific subtropical gyre. Velocity, hydrographic, and oxygen measurements at the mooring show the impact of eddies on the weak flow region of the eastern tropical South Pacific. Strong anomalies are related to the passage of eddies and are not associated with a seasonal signal in the open ocean. The mass transport of the four observed eddies across 85°W is between 1.1 and 1.8Sv. The eddy type-dependent available heat, salt, and oxygen anomalies are 8.1×1018J (ACE2), 1.0×1018J (MWE), and −8.9×1018J (CE) for heat; 25.2×1010kg (ACE2), −3.1×1010kg (MWE), and −41.5×1010kg (CE) for salt; and −3.6×1016µmol (ACE2), −3.5×1016µmol (MWE), and −6.5×1016µmol (CE) for oxygen showing a strong imbalance between anticyclones and cyclones for salt transports probably due to seasonal variability in water mass properties in the formation region of the eddies. Heat, salt, and oxygen fluxes out of the coastal region across the ORS region in the oligotrophic open South Pacific are estimated based on these eddy anomalies and on eddy statistics (gained out of 23 years of satellite data). Furthermore, four profiling floats were trapped in the ACE2 during its westward propagation between the formation region and the open ocean, which allows for conclusions on lateral mixing of water mass properties with time between the core of the eddy and the surrounding water. The strongest lateral mixing was found between the seasonal thermocline and the eddy core during the first half of the eddy lifetime.
    Description: Financial support was received through Woods Hole Oceanographic Institution (Robert A. Weller) and the GEOMAR (Rena Czeschel, Lothar Stramma, and Florian Schütte). The Stratus Ocean Reference Station is supported by the National Oceanic and Atmospheric Administration (NOAA) Climate Observation Program (NA09AR4320129, OAA CPO FundRef number 100007298).
    Repository Name: Woods Hole Open Access Server
    Type: Article
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  • 2
    Publication Date: 2022-05-25
    Description: © The Author(s), 2015. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Ocean Science 11 (2015): 455-470, doi:10.5194/os-11-455-2015.
    Description: A large subsurface oxygen deficiency zone is located in the eastern tropical South Pacific Ocean (ETSP). The large-scale circulation in the eastern equatorial Pacific and off the coast of Peru in November/December 2012 shows the influence of the equatorial current system, the eastern boundary currents, and the northern reaches of the subtropical gyre. In November 2012 the equatorial undercurrent (EUC) is centered at 250 m depth, deeper than in earlier observations. In December 2012, the equatorial water is transported southeastward near the shelf in the Peru–Chile undercurrent (PCUC) with a mean transport of 1.4 Sv. In the oxygen minimum zone (OMZ), the flow is overlaid with strong eddy activity on the poleward side of the OMZ. Floats with parking depth at 400 m show fast westward flow in the mid-depth equatorial channel and sluggish flow in the OMZ. Floats with oxygen sensors clearly show the passage of eddies with oxygen anomalies. The long-term float observations in the upper ocean lead to a net community production estimate at about 18° S of up to 16.7 mmol C m−3 yr−1 extrapolated to an annual rate and 7.7 mmol C m−3 yr−1 for the time period below the mixed layer. Oxygen differences between repeated ship sections are influenced by the Interdecadal Pacific Oscillation (IPO), by the phase of El Niño, by seasonal changes, and by eddies, and hence have to be interpreted with care. At and south of the Equator the decrease in oxygen in the upper ocean since 1976 is related to an increase in nitrate, phosphate, and in part silicate.
    Description: The Deutsche Forschungsgemeinschaft (DFG) provided support as part of the “Sonderforschungsbereich 754: Climate-Biogeochemistry Interactions in the Tropical Ocean, A5” (RC, LS). Additional support was provided through the German BMBF funded Project SOPRAN under FKZ 03F0662A (TF) and through the US NOAA Climate Program Office to the Woods Hole Oceanographic Institution (RAW).
    Repository Name: Woods Hole Open Access Server
    Type: Article
    Format: application/zip
    Format: application/pdf
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  • 3
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    PANGAEA
    In:  Supplement to: Czeschel, Rena; Schütte, Florian; Weller, Robert A; Stramma, Lothar (2018): Transport, properties, and life cycles of mesoscale eddies in the eastern tropical South Pacific. Ocean Science, 14(4), 731-750, https://doi.org/10.5194/os-14-731-2018
    Publication Date: 2023-10-28
    Description: The influence of mesoscale eddies on the flow field and the water masses, especially the oxygen distribution of the eastern tropical South Pacific is investigated from a mooring, float and satellite data set. Two anticyclonic (ACE1/2), one mode water (MWE) and one cyclonic eddy (CE) are identified and followed in detail with satellite data on their westward transition with velocities of 3.2 to 6.0 cm/s from their generation region, the shelf of the Peruvian and Chilean upwelling regime, across the Stratus Ocean Reference Station (ORS) (~20°S, 85°W) to their decaying region far west in the oligotrophic open ocean. The ORS is located in the transition zone between the oxygen minimum zone and the well-oxygenated South Pacific subtropical gyre. Velocity, hydrographic, and oxygen measurements at the mooring show the impact of eddies on the weak flow region of the eastern tropical South Pacific.
    Keywords: Climate - Biogeochemistry Interactions in the Tropical Ocean; SFB754
    Type: Dataset
    Format: application/zip, 9 datasets
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  • 4
    Publication Date: 2023-10-28
    Keywords: ASTRA-OMZ; Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; SFB754; SO243; SO243-track; Sonne_2; Underway cruise track measurements
    Type: Dataset
    Format: application/zip, 27.5 MBytes
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  • 5
    Publication Date: 2023-10-28
    Keywords: ASTRA-OMZ; Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; SFB754; SO243; SO243-track; Sonne_2; Underway cruise track measurements
    Type: Dataset
    Format: application/zip, 6.1 MBytes
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  • 6
    Publication Date: 2023-10-28
    Keywords: ASTRA-OMZ; Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; SFB754; SO243; SO243-track; Sonne_2; Underway cruise track measurements
    Type: Dataset
    Format: application/zip, 2.2 MBytes
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  • 7
    Publication Date: 2023-10-28
    Keywords: ASTRA-OMZ; Climate - Biogeochemistry Interactions in the Tropical Ocean; CT; SFB754; SO243; SO243-track; Sonne_2; Underway cruise track measurements
    Type: Dataset
    Format: application/zip, 14.2 MBytes
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  • 8
    Publication Date: 2023-10-28
    Keywords: Climate - Biogeochemistry Interactions in the Tropical Ocean; DATE/TIME; DEPTH, water; MOOR; Mooring; Salinity; SFB754; Stratus13_Mooring
    Type: Dataset
    Format: text/tab-separated-values, 192790 data points
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  • 9
    Publication Date: 2023-10-28
    Keywords: Climate - Biogeochemistry Interactions in the Tropical Ocean; DATE/TIME; DEPTH, water; MOOR; Mooring; SFB754; Stratus13_Mooring; Temperature, water
    Type: Dataset
    Format: text/tab-separated-values, 345540 data points
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  • 10
    Publication Date: 2023-10-28
    Keywords: Climate - Biogeochemistry Interactions in the Tropical Ocean; Comment; CTD/Rosette; CTD 1; CTD 101; CTD 102; CTD 105; CTD 106; CTD 107; CTD 108; CTD 109; CTD 110; CTD 111; CTD 112; CTD 114; CTD 115; CTD 116; CTD 117; CTD 119; CTD 121; CTD 122; CTD 123; CTD 124; CTD 125; CTD 126; CTD 127; CTD 128; CTD 129; CTD 13; CTD 130; CTD 132; CTD 133; CTD 135; CTD 136; CTD 138; CTD 139; CTD 14; CTD 141; CTD 143; CTD 144; CTD 145; CTD 147; CTD 149; CTD 150; CTD 151; CTD 152; CTD 153; CTD 154; CTD 156; CTD 158; CTD 160; CTD 162; CTD 165; CTD 168; CTD 171; CTD 173; CTD 2; CTD 20; CTD 23; CTD 24; CTD 28; CTD 29; CTD 30; CTD 32; CTD 34; CTD 35; CTD 36; CTD 37; CTD 38; CTD 39; CTD 4; CTD 41; CTD 43; CTD 45; CTD 49; CTD 5; CTD 51; CTD 52; CTD 54; CTD 55; CTD 56; CTD 57; CTD 59; CTD 61; CTD 62; CTD 64; CTD 66; CTD 67; CTD 69; CTD 71; CTD 72; CTD 74; CTD 77; CTD 79; CTD 82; CTD 84; CTD 86; CTD 89; CTD 9; CTD 90; CTD 93; CTD 95; CTD 98; CTD-RO; DATE/TIME; DEPTH, water; Error; Event label; Flag; Identification; Latitude of event; Longitude of event; M90; M90_1552-1; M90_1553-1; M90_1555-1; M90_1555-2; M90_1559-1; M90_1563-1; M90_1563-2; M90_1569-1; M90_1572-1; M90_1572-2; M90_1576-1; M90_1577-1; M90_1577-2; M90_1579-1; M90_1581-1; M90_1581-2; M90_1582-1; M90_1583-1; M90_1583-2; M90_1584; M90_1586-1; M90_1588-1; M90_1590-1; M90_1594-1; M90_1596-1; M90_1596-2; M90_1598-1; M90_1599-1; M90_1600-1; M90_1600-2; M90_1602-1; M90_1604-1; M90_1604-2; M90_1606-1; M90_1608-1; M90_1608-2; M90_1610-1; M90_1612-1; M90_1612-2; M90_1614-1; M90_1617-1; M90_1619-1; M90_1621-2; M90_1623-1; M90_1625-1; M90_1628-1; M90_1628-2; M90_1631-1; M90_1633-1; M90_1636-1; M90_1639-1; M90_1639-2; M90_1642-1; M90_1643-1; M90_1644-1; M90_1645-1; M90_1646-1; M90_1646-2; M90_1647-1; M90_1648-1; M90_1650-1; M90_1651-1; M90_1652-1; M90_1652-2; M90_1654-1; M90_1656-1; M90_1656-2; M90_1657-1; M90_1658-1; M90_1659-1; M90_1659-2; M90_1660-1; M90_1661-1; M90_1661-2; M90_1662-1; M90_1664-1; M90_1664-2; M90_1666-1; M90_1666-2; M90_1668-1; M90_1668-2; M90_1670-1; M90_1672-1; M90_1673-1; M90_1673-1b; M90_1675-1; M90_1677-1; M90_1678-1; M90_1679-1; M90_1679-2; M90_1680-1; M90_1681-1; M90_1683-1; M90_1685-1; M90_1687-1; M90_1689-1; M90_1692-1; M90_1695-1; M90_1698-1; M90_1700-1; Meteor (1986); Nitrate; Nitrite; Phosphate; Pressure, water; Sample code/label; SFB754; Silicon dioxide
    Type: Dataset
    Format: text/tab-separated-values, 20101 data points
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