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Metadata Report for BODC Series Reference Number 1088471


Metadata Summary

Data Description

Data Category CTD or STD cast
Instrument Type
NameCategories
Sea-Bird SBE 911plus CTD  CTD; water temperature sensor; salinity sensor
Paroscientific 410K Pressure Transducer  water temperature sensor; water pressure sensors
Sea-Bird SBE 3plus (SBE 3P) temperature sensor  water temperature sensor
Sea-Bird SBE 4C conductivity sensor  salinity sensor
Instrument Mounting lowered unmanned submersible
Originating Country United Kingdom
Originator Dr Jean-Baptiste Sallee
Originating Organization British Antarctic Survey
Processing Status banked
Online delivery of data Download available - Ocean Data View (ODV) format
Project(s) DIMES
 

Data Identifiers

Originator's Identifier JC054_30
BODC Series Reference 1088471
 

Time Co-ordinates(UT)

Start Time (yyyy-mm-dd hh:mm) 2010-12-26 02:42
End Time (yyyy-mm-dd hh:mm) 2010-12-26 03:54
Nominal Cycle Interval 2.0 decibars
 

Spatial Co-ordinates

Latitude 62.09567 S ( 62° 5.7' S )
Longitude 65.20982 W ( 65° 12.6' W )
Positional Uncertainty Unspecified
Minimum Sensor or Sampling Depth 4.95 m
Maximum Sensor or Sampling Depth 3000.0 m
Minimum Sensor or Sampling Height 15.0 m
Maximum Sensor or Sampling Height 3010.05 m
Sea Floor Depth 3015.0 m
Sea Floor Depth Source -
Sensor or Sampling Distribution Variable common depth - All sensors are grouped effectively at the same depth, but this depth varies significantly during the series
Sensor or Sampling Depth Datum Instantaneous - Depth measured below water line or instantaneous water body surface
Sea Floor Depth Datum Approximate - Depth is only approximate
 

Parameters

BODC CODERankUnitsTitle
ACYCAA011DimensionlessSequence number
POTMCV011Degrees CelsiusPotential temperature of the water body by computation using UNESCO 1983 algorithm
PRESPR011DecibarsPressure (spatial coordinate) exerted by the water body by profiling pressure sensor and correction to read zero at sea level
PSALCC011DimensionlessPractical salinity of the water body by CTD and computation using UNESCO 1983 algorithm and calibration against independent measurements
SIGTPR011Kilograms per cubic metreSigma-theta of the water body by CTD and computation from salinity and potential temperature using UNESCO algorithm
TEMPS9011Degrees CelsiusTemperature (ITS-90) of the water body by CTD or STD

Definition of Rank

  • Rank 1 is a one-dimensional parameter
  • Rank 2 is a two-dimensional parameter
  • Rank 0 is a one-dimensional parameter describing the second dimension of a two-dimensional parameter (e.g. bin depths for moored ADCP data)

Problem Reports

No Problem Report Found in the Database


Data Access Policy

Open Data

These data have no specific confidentiality restrictions for users. However, users must acknowledge data sources as it is not ethical to publish data without proper attribution. Any publication or other output resulting from usage of the data should include an acknowledgment.

If the Information Provider does not provide a specific attribution statement, or if you are using Information from several Information Providers and multiple attributions are not practical in your product or application, you may consider using the following:

"Contains public sector information licensed under the Open Government Licence v1.0."


Narrative Documents

Instrument Descriptions

CTD Unit and Auxiliary Sensors

Sensor Model Serial Number Calibration (UT) Comments
CTD underwater unit Sea-Bird 9plus underwater unit 09P-54047-0943 - -
Submersible pump Sea-Bird 5T submersible pump 05T-3607 - -
Secondary submersible pump Sea-Bird 5T submersible pump 05T-3195 - -
Carousel 24 position pylon Sea-Bird 32 Carousel 24 position pylon 32-19817-0243 - Equipped with 24 Niskin sampling bottles
CTD deck unit Sea-Bird 11plus deck unit 11P-34173-0676 - -
Pressure transducer Digiquartz temperature compensated pressure sensor 110557 26/04/2009 -
Conductivity sensor Sea-Bird 4C conductivity sensor 04C-3054 10/08/2011 -
Temperature sensor Sea-Bird 3P temperature sensor 03P-4151 1/09/2010 -
Secondary temperature sensor Sea-Bird 3P temperature sensor 03P-2919 - -
Secondary conductivity sensor Sea-Bird 4C conductivity sensor 04C-3580 - -
Dissolved oxygen sensor Sea-Bird 43 dissolved oxygen sensor 43-0363 - -
Fluorometer Chelsea MKIII Aquatracka fluorometer 88-2615-124 - -
Altimeter Benthos PSA-916T altimeter 41302 - -
Turbidity sensor User Supplied turbidity sensor - - -
Light scattering sensor WETLabs light scattering sensor BBRTD-759R - -
Transmissometer Chelsea MKII 10 cm path Alphatracka transmissometer 161050 - -

Sea-Bird Electronics SBE 911 and SBE 917 series CTD profilers

The SBE 911 and SBE 917 series of conductivity-temperature-depth (CTD) units are used to collect hydrographic profiles, including temperature, conductivity and pressure as standard. Each profiler consists of an underwater unit and deck unit or SEARAM. Auxiliary sensors, such as fluorometers, dissolved oxygen sensors and transmissometers, and carousel water samplers are commonly added to the underwater unit.

Underwater unit

The CTD underwater unit (SBE 9 or SBE 9 plus) comprises a protective cage (usually with a carousel water sampler), including a main pressure housing containing power supplies, acquisition electronics, telemetry circuitry, and a suite of modular sensors. The original SBE 9 incorporated Sea-Bird's standard modular SBE 3 temperature sensor and SBE 4 conductivity sensor, and a Paroscientific Digiquartz pressure sensor. The conductivity cell was connected to a pump-fed plastic tubing circuit that could include auxiliary sensors. Each SBE 9 unit was custom built to individual specification. The SBE 9 was replaced in 1997 by an off-the-shelf version, termed the SBE 9 plus, that incorporated the SBE 3 plus (or SBE 3P) temperature sensor, SBE 4C conductivity sensor and a Paroscientific Digiquartz pressure sensor. Sensors could be connected to a pump-fed plastic tubing circuit or stand-alone.

Temperature, conductivity and pressure sensors

The conductivity, temperature, and pressure sensors supplied with Sea-Bird CTD systems have outputs in the form of variable frequencies, which are measured using high-speed parallel counters. The resulting count totals are converted to numeric representations of the original frequencies, which bear a direct relationship to temperature, conductivity or pressure. Sampling frequencies for these sensors are typically set at 24 Hz.

The temperature sensing element is a glass-coated thermistor bead, pressure-protected inside a stainless steel tube, while the conductivity sensing element is a cylindrical, flow-through, borosilicate glass cell with three internal platinum electrodes. Thermistor resistance or conductivity cell resistance, respectively, is the controlling element in an optimized Wien Bridge oscillator circuit, which produces a frequency output that can be converted to a temperature or conductivity reading. These sensors are available with depth ratings of 6800 m (aluminium housing) or 10500 m (titanium housing). The Paroscientific Digiquartz pressure sensor comprises a quartz crystal resonator that responds to pressure-induced stress, and temperature is measured for thermal compensation of the calculated pressure.

Additional sensors

Optional sensors for dissolved oxygen, pH, light transmission, fluorescence and others do not require the very high levels of resolution needed in the primary CTD channels, nor do these sensors generally offer variable frequency outputs. Accordingly, signals from the auxiliary sensors are acquired using a conventional voltage-input multiplexed A/D converter (optional). Some Sea-Bird CTDs use a strain gauge pressure sensor (Senso-Metrics) in which case their pressure output data is in the same form as that from the auxiliary sensors as described above.

Deck unit or SEARAM

Each underwater unit is connected to a power supply and data logging system: the SBE 11 (or SBE 11 plus) deck unit allows real-time interfacing between the deck and the underwater unit via a conductive wire, while the submersible SBE 17 (or SBE 17 plus) SEARAM plugs directly into the underwater unit and data are downloaded on recovery of the CTD. The combination of SBE 9 and SBE 17 or SBE 11 are termed SBE 917 or SBE 911, respectively, while the combinations of SBE 9 plus and SBE 17 plus or SBE 11 plus are termed SBE 917 plus or SBE 911 plus.

Specifications

Specifications for the SBE 9 plus underwater unit are listed below:

Parameter Range Initial accuracy Resolution at 24 Hz Response time
Temperature -5 to 35°C 0.001°C 0.0002°C 0.065 sec
Conductivity 0 to 7 S m-1 0.0003 S m-1 0.00004 S m-1 0.065 sec (pumped)
Pressure 0 to full scale (1400, 2000, 4200, 6800 or 10500 m) 0.015% of full scale 0.001% of full scale 0.015 sec

Further details can be found in the manufacturer's specification sheet.

Paroscientific Absolute Pressure Transducers Series 3000 and 4000

Paroscientific Series 3000 and 4000 pressure transducers use a Digiquartz pressure sensor to provide high accuracy and precision data. The sensor comprises a quartz crystal resonator that responds to pressure-induced stress, and temperature is measured for thermal compensation of the calculated pressure.

The 3000 series of transducers includes one model, the 31K-101, whereas the 4000 series includes several models, listed in the table below. All transducers exhibit repeatability of better than ±0.01% full pressure scale, hysteresis of better than ±0.02% full scale and acceleration sensitivity of ±0.008% full scale /g (three axis average). Pressure resolution is better than 0.0001% and accuracy is typically 0.01% over a broad range of temperatures.

Differences between the models lie in their pressure and operating temperature ranges, as detailed below:

Model Max. pressure (psia) Max. pressure (MPa) Temperature range (°C)
31K-101 1000 6.9 -54 to 107
42K-101 2000 13.8 0 to 125
43K-101 3000 20.7 0 to 125
46K-101 6000 41.4 0 to 125
410K-101 10000 68.9 0 to 125
415K-101 15000 103 0 to 50
420K-101 20000 138 0 to 50
430K-101 30000 207 0 to 50
440K-101 40000 276 0 to 50

Further details can be found in the manufacturer's specification sheet.

BODC Processing

The primary data (conductivity, temperature salinity) were received in a structured matlab format and converted into BODC internal format. The auxiliary sensor data will be processed separately. Potential temperature of the water body was derived by computation using UNESCO 1983 algorithm, σθ was derived by computation from salinity and potential temperature also using UNESCO 1983 algorithm. The following table shows how the variables within the matlab file were mapped to appropriate BODC parameter codes:

Originator's Parameter Name Units Description BODC Parameter Code Units Comments
temp °C Temperature from primary sensor TEMPS901 °C -
sal - Practical salinity PSALCC01 Dimensionless Calibrated against CTD bottle salinity samples
pres dbar Pressure exerted by the water column PRESPR01 dbar -
- - Potential temperature POTMCV01 °C Generated by BODC using the Fofonoff and Millard (1983) algorithm
- - σθ of the water column SIGTPR01 kg/m3 Generated by BODC using the Fofonoff and Millard (1983) algorithm

The reformatted data were visualised using the in-house EDSERPLO software. The data were screened and quality control flags were applied to data as necessary. Overall there were no quality issues and very few flags were added.

References

Fofonoff, N.P. and Millard, R.C., 1983. Algorithms for computations of fundamental properties of seawater. UNESCO Technical Papers in Marine Science, No.44, 53pp.

Originator's Data Processing

Sampling Strategy

Fifty five CTD profiles were performed during the cruise. The launch and recovery of the CTDs was done relatively slowly, especially in bad weather, due to the nature of the winch system on the ship. There was also a delay of a few minutes whilst the winch system was switched from box control to lab control at approximately 100 m of wire out. In addition, at stations where Vertical Microstructure Profilers (VMPs) were deployed, the CTD deployment duration had to approximately match the VMP cast duration, within 1.5 hours. There were several problems which occurred during the deployment of the CTDs. CTD007 was aborted due to early weight release of the VMP, CTD035 was delayed due bad weather and was made shallow (1875 m) due to VMP time constraint, CTD027 had a shallow bottom, CTD045 was aborted due to problem with the hydroboom, CTD054 was stopped due to bad weather, and during CTD048, the Sea-Bird software crashed and had to be restarted.

Data processing

The files were produced by Seasave and initial data processing was performed using Sea-Bird processing software. Firstly, the raw data were converted into physical units using 'DatCnv', the surface soak was removed from the data and the surface pressure offset obtained from the first 30 readings was applied. Temporal shifts were then applied to align the sensor readings using 'AlignCTD'. Corrections for the thermal mass of the cell were made using 'CellTM' and the output from the 'AlignCTD', in order to minimise salinity spiking in steep vertical gradients due to temperature/conductivity mismatch.

After the Sea-Bird processing, further processing was undertaken using the National Oceanography Centre's Mstar software package. Firstly, the data were averaged to 1 Hz, then the practical salinity and potential temperature were calculated. The downcast data were extracted, gaps were interpolated and the data were then averaged to 2 dbar. All profiles were visually checked to detect any possible anomalies, and profiles were also plotted on top of each other in order to detect any possible sensor drift. A number of small localised spikes were detected in the conductivity/salinity profiles and these were removed and replaced by null values.

Further details of the originator's processing can be found in the cruise report.

Field Calibrations

Salinity

Between five and seven Niskin bottles were sampled for salinity at each station. Surface and bottom Niskin bottles were chosen as well as a couple of bottles at tracer cluster depths (DIMES project released an inert chemical tracer at the upstream edge of the study area in late 2009). The differences in salinity between the bottle salinities and the sensor salinities were found to be relatively scattered, but most differences were within ± 0.002. No clear trend or pattern in pressure or time dependence was identified, and both sensors showed similar behaviour. θ-S profiles were used to detect possible sensor drift, and all θ-S characteristics of bottom water sampled during the cruise were found to fall within the same narrow band. There was a change noted in the salinity from the beginning to end of the cruise, with fresher salinities at the beginning, however, this was thought to be a real change as it did not appear to be a constant shift and the difference was also consistent with previous bottom water studies. Based upon the analyses conducted, it was concluded that further calibration of the salinity data was not required, as the calibration applied would be less than the target accuracy.


Project Information

Diapycnal and Isopycnal Mixing Experiment in the Southern Ocean (DIMES) project document

DIMES is a US/UK field program aimed at measuring diapycnal and isopycnal mixing in the Southern Ocean, along the tilting isopycnals of the Antarctic Circumpolar Current.

The Meridional Overturning Circulation (MOC) of the ocean is a critical regulator of the Earth's climate processes. Climate models are highly sensitive to the representation of mixing processes in the southern limb of the MOC, within the Southern Ocean, although the lack of extensive in situ observations of Southern Ocean mixing processes has made evaluation of mixing somewhat difficult. Theories and models of the Southern Ocean circulation have been built on the premise of adiabatic flow in the ocean interior, with diabatic processes confined to the upper-ocean mixed layer. Interior diapycnal mixing has often been assumed to be small, but a few recent studies have suggested that diapycnal mixing might be large in some locations, particularly over rough bathymetry. Depending on its extent, this interior diapycnal mixing could significantly affect the overall energetics and property balances for the Southern Ocean and in turn for the global ocean. The goals of DIMES are to obtain measurements that will help us quantify both along-isopycnal eddy-driven mixing and cross-isopycnal interior mixing.

DIMES includes tracer release, isopycnal following RAFOS floats, microstructure measurements, shearmeter floats, EM-APEX floats, a mooring array in Drake Passage, hydrographic observations, inverse modeling, and analysis of altimetry and numerical model output.

DIMES is sponsored by the National Science Foundation (U.S.), Natural Environment Research Council (U.K) and British Antarctic Survey (U.K.)

For more information please see the official project website at DIMES


Data Activity or Cruise Information

Cruise

Cruise Name JC054 (UKD-2)
Departure Date 2010-12-04
Arrival Date 2011-01-08
Principal Scientist(s)Michael P Meredith (British Antarctic Survey)
Ship RRS James Cook

Complete Cruise Metadata Report is available here


Fixed Station Information

Fixed Station Information

Station NameDrake Passage - WOCE SR1
CategoryOffshore route/traverse

World Ocean Circulation Experiment (WOCE) Southern Repeat Section 1 - South America to West Antarctic Peninsula

WOCE established a repeat hydrographic section across Drake Passage and designated it SR1 (also known as A21). The section is located between the Southern tip of South America and the West Antarctic Peninsula within a bounding box of 55° 19.40' S, 68° 15.80' W (North-Western corner) and 64° 8.52' S, 63° 4.80' W (South-Eastern corner).

In 1992 the section was moved eastwards to lie on a satellite ground track with the northern end on the south side of Burdwood Bank and the southern end off Elephant Island. This revised location was designated SR1b.

A table of cruises which occupied SR1 is presented below with links to the relevant cruise reports (where available).

Cruise Country Start Date End Date
R/V Meteor 11/5 Germany 23-01-1990 08-03-1990
Polarstern ANT 10-5 Germany 08-08-1992 26-09-1992
R/V Vidal Gormaz 20VDSR0193_1 Chile 02-11-1993 25-12-1993
R/V Vidal Gormaz 20VDSR0194_1 Chile 08-11-1994 08-12-1994
R/V Vidal Gormaz 20VDSR0195_1 Chile 04-12-1995 15-12-1995
R/V Vidal Gormaz 20VDSR0196_1 Chile 28-11-1996 13-12-1996
R/V Vidal Gormaz 20VDSR0198_1 Chile 26-11-1998 15-12-1998
RRS James Clark Ross JR40 United Kingdom 15-03-1999 22-04-1999
RRS James Cook JC031 United Kingdom 03-02-2009 03-03-2009
RRS James Cook JC054 United Kingdom 28-11-2010 08-01-2011
RRS James Cook JC069 United Kingdom 31-01-2012 22-03-2012

Related Fixed Station activities are detailed in Appendix 1


BODC Quality Control Flags

The following single character qualifying flags may be associated with one or more individual parameters with a data cycle:

Flag Description
Blank Unqualified
< Below detection limit
> In excess of quoted value
A Taxonomic flag for affinis (aff.)
B Beginning of CTD Down/Up Cast
C Taxonomic flag for confer (cf.)
D Thermometric depth
E End of CTD Down/Up Cast
G Non-taxonomic biological characteristic uncertainty
H Extrapolated value
I Taxonomic flag for single species (sp.)
K Improbable value - unknown quality control source
L Improbable value - originator's quality control
M Improbable value - BODC quality control
N Null value
O Improbable value - user quality control
P Trace/calm
Q Indeterminate
R Replacement value
S Estimated value
T Interpolated value
U Uncalibrated
W Control value
X Excessive difference

SeaDataNet Quality Control Flags

The following single character qualifying flags may be associated with one or more individual parameters with a data cycle:

Flag Description
0 no quality control
1 good value
2 probably good value
3 probably bad value
4 bad value
5 changed value
6 value below detection
7 value in excess
8 interpolated value
9 missing value
A value phenomenon uncertain
B nominal value
Q value below limit of quantification

Appendix 1: Drake Passage - WOCE SR1

Related series for this Fixed Station are presented in the table below. Further information can be found by following the appropriate links.

If you are interested in these series, please be aware we offer a multiple file download service. Should your credentials be insufficient for automatic download, the service also offers a referral to our Enquiries Officer who may be able to negotiate access.

Series IdentifierData CategoryStart date/timeStart positionCruise
1022030Currents -subsurface Eulerian2009-02-06 01:02:2064.14044 S, 68.66633 WRRS James Cook JC031
1022017Currents -subsurface Eulerian2009-02-06 01:03:1264.14045 S, 68.66691 WRRS James Cook JC031
912096Currents -subsurface Eulerian2009-02-06 01:09:0056.33 S, 67.99 WRRS James Cook JC031
912987Currents -subsurface Eulerian2009-02-06 01:09:0056.33 S, 67.99 WRRS James Cook JC031
935789CTD or STD cast2009-02-06 01:09:1556.33 S, 67.99 WRRS James Cook JC031
1875752Water sample data2009-02-06 01:24:0056.33 S, 67.99004 WRRS James Cook JC031
2105800Water sample data2009-02-06 01:24:0056.33 S, 67.99004 WRRS James Cook JC031
2113615Water sample data2009-02-06 01:24:0056.33 S, 67.99004 WRRS James Cook JC031
935790CTD or STD cast2009-02-06 05:20:1056.7999 S, 68.19 WRRS James Cook JC031
912103Currents -subsurface Eulerian2009-02-06 05:21:0056.8 S, 68.19 WRRS James Cook JC031
912999Currents -subsurface Eulerian2009-02-06 05:21:0056.8 S, 68.19 WRRS James Cook JC031
1875764Water sample data2009-02-06 05:42:3056.79993 S, 68.18997 WRRS James Cook JC031
2105812Water sample data2009-02-06 05:42:3056.79993 S, 68.18997 WRRS James Cook JC031
2113627Water sample data2009-02-06 05:42:3056.79993 S, 68.18997 WRRS James Cook JC031
935808CTD or STD cast2009-02-06 07:16:4556.8501 S, 68.21 WRRS James Cook JC031
912115Currents -subsurface Eulerian2009-02-06 07:18:0056.85 S, 68.21 WRRS James Cook JC031
913002Currents -subsurface Eulerian2009-02-06 07:18:0056.85 S, 68.21 WRRS James Cook JC031
1875776Water sample data2009-02-06 07:43:0056.85004 S, 68.21002 WRRS James Cook JC031
2105824Water sample data2009-02-06 07:43:0056.85004 S, 68.21002 WRRS James Cook JC031
2113639Water sample data2009-02-06 07:43:0056.85004 S, 68.21002 WRRS James Cook JC031
935821CTD or STD cast2009-02-06 09:39:3556.88 S, 68.23 WRRS James Cook JC031
912127Currents -subsurface Eulerian2009-02-06 09:41:0056.88 S, 68.23 WRRS James Cook JC031
913014Currents -subsurface Eulerian2009-02-06 09:41:0056.88 S, 68.23 WRRS James Cook JC031
1875788Water sample data2009-02-06 10:33:3056.87999 S, 68.23 WRRS James Cook JC031
2105836Water sample data2009-02-06 10:33:3056.87999 S, 68.23 WRRS James Cook JC031
2113640Water sample data2009-02-06 10:33:3056.87999 S, 68.23 WRRS James Cook JC031
912139Currents -subsurface Eulerian2009-02-06 12:59:0056.89 S, 68.24 WRRS James Cook JC031
913026Currents -subsurface Eulerian2009-02-06 12:59:0056.89 S, 68.24 WRRS James Cook JC031
935833CTD or STD cast2009-02-06 13:00:0856.89 S, 68.2401 WRRS James Cook JC031
1875807Water sample data2009-02-06 14:13:3056.89002 S, 68.24007 WRRS James Cook JC031
2105848Water sample data2009-02-06 14:13:3056.89002 S, 68.24007 WRRS James Cook JC031
2113652Water sample data2009-02-06 14:13:3056.89002 S, 68.24007 WRRS James Cook JC031
912140Currents -subsurface Eulerian2009-02-06 23:38:0056.91167 S, 68.24183 WRRS James Cook JC031
913038Currents -subsurface Eulerian2009-02-06 23:38:0056.91167 S, 68.24183 WRRS James Cook JC031
935845CTD or STD cast2009-02-06 23:38:2356.9117 S, 68.2419 WRRS James Cook JC031
1875819Water sample data2009-02-07 01:00:3056.91145 S, 68.2416 WRRS James Cook JC031
2105861Water sample data2009-02-07 01:00:3056.91145 S, 68.2416 WRRS James Cook JC031
2113664Water sample data2009-02-07 01:00:3056.91145 S, 68.2416 WRRS James Cook JC031
935857CTD or STD cast2009-02-07 04:44:2656.92 S, 68.2399 WRRS James Cook JC031
912152Currents -subsurface Eulerian2009-02-07 04:45:0056.92 S, 68.24 WRRS James Cook JC031
913051Currents -subsurface Eulerian2009-02-07 04:45:0056.92 S, 68.24 WRRS James Cook JC031
1875820Water sample data2009-02-07 06:09:3056.92001 S, 68.23995 WRRS James Cook JC031
2105873Water sample data2009-02-07 06:09:3056.92001 S, 68.23995 WRRS James Cook JC031
2113676Water sample data2009-02-07 06:09:3056.92001 S, 68.23995 WRRS James Cook JC031
912164Currents -subsurface Eulerian2009-02-07 09:11:0056.98 S, 68.25 WRRS James Cook JC031
913063Currents -subsurface Eulerian2009-02-07 09:11:0056.98 S, 68.25 WRRS James Cook JC031
935869CTD or STD cast2009-02-07 09:11:3356.98 S, 68.2499 WRRS James Cook JC031
1875832Water sample data2009-02-07 10:50:3056.98001 S, 68.24995 WRRS James Cook JC031
2105885Water sample data2009-02-07 10:50:3056.98001 S, 68.24995 WRRS James Cook JC031
2113688Water sample data2009-02-07 10:50:3056.98001 S, 68.24995 WRRS James Cook JC031
912176Currents -subsurface Eulerian2009-02-07 14:17:0057.13 S, 68.25 WRRS James Cook JC031
913075Currents -subsurface Eulerian2009-02-07 14:17:0057.13 S, 68.25 WRRS James Cook JC031
935870CTD or STD cast2009-02-07 14:18:0357.1301 S, 68.2501 WRRS James Cook JC031
1875844Water sample data2009-02-07 16:17:0057.13004 S, 68.25 WRRS James Cook JC031
2105897Water sample data2009-02-07 16:17:0057.13004 S, 68.25 WRRS James Cook JC031
912188Currents -subsurface Eulerian2009-02-07 19:57:0057.33067 S, 68.23667 WRRS James Cook JC031
913087Currents -subsurface Eulerian2009-02-07 19:57:0057.33067 S, 68.23667 WRRS James Cook JC031
935882CTD or STD cast2009-02-07 19:58:1257.3307 S, 68.237 WRRS James Cook JC031
1875856Water sample data2009-02-07 21:53:0057.33084 S, 68.23566 WRRS James Cook JC031
2105904Water sample data2009-02-07 21:53:0057.33084 S, 68.23566 WRRS James Cook JC031
2113707Water sample data2009-02-07 21:53:0057.33084 S, 68.23566 WRRS James Cook JC031
935894CTD or STD cast2009-02-08 01:44:0057.58 S, 68.25 WRRS James Cook JC031
935901CTD or STD cast2009-02-09 02:20:3057.8305 S, 68.2388 WRRS James Cook JC031
912207Currents -subsurface Eulerian2009-02-09 09:14:0057.83233 S, 68.23217 WRRS James Cook JC031
913099Currents -subsurface Eulerian2009-02-09 09:14:0057.83233 S, 68.23217 WRRS James Cook JC031
935913CTD or STD cast2009-02-09 09:14:0757.8323 S, 68.2322 WRRS James Cook JC031
1875868Water sample data2009-02-09 11:43:0057.83393 S, 68.22308 WRRS James Cook JC031
2105916Water sample data2009-02-09 11:43:0057.83393 S, 68.22308 WRRS James Cook JC031
2113719Water sample data2009-02-09 11:43:0057.83393 S, 68.22308 WRRS James Cook JC031
935925CTD or STD cast2009-02-09 17:37:1158.0924 S, 68.2187 WRRS James Cook JC031
912219Currents -subsurface Eulerian2009-02-09 17:40:0058.0925 S, 68.21867 WRRS James Cook JC031
913106Currents -subsurface Eulerian2009-02-09 17:40:0058.0925 S, 68.21867 WRRS James Cook JC031
1875881Water sample data2009-02-09 19:41:3058.09357 S, 68.21223 WRRS James Cook JC031
2113720Water sample data2009-02-09 19:41:3058.09357 S, 68.21223 WRRS James Cook JC031
912220Currents -subsurface Eulerian2009-02-10 00:23:0058.33867 S, 68.21483 WRRS James Cook JC031
913118Currents -subsurface Eulerian2009-02-10 00:23:0058.33867 S, 68.21483 WRRS James Cook JC031
935937CTD or STD cast2009-02-10 00:24:5158.3387 S, 68.2149 WRRS James Cook JC031
1875893Water sample data2009-02-10 02:23:3058.34045 S, 68.20933 WRRS James Cook JC031
2105928Water sample data2009-02-10 02:23:3058.34045 S, 68.20933 WRRS James Cook JC031
2113732Water sample data2009-02-10 02:23:3058.34045 S, 68.20933 WRRS James Cook JC031
935949CTD or STD cast2009-02-10 20:05:2858.58 S, 68.2507 WRRS James Cook JC031
912232Currents -subsurface Eulerian2009-02-10 20:07:0058.58 S, 68.25083 WRRS James Cook JC031
913131Currents -subsurface Eulerian2009-02-10 20:07:0058.58 S, 68.25083 WRRS James Cook JC031
1875900Water sample data2009-02-10 22:23:0058.5803 S, 68.24759 WRRS James Cook JC031
2105941Water sample data2009-02-10 22:23:0058.5803 S, 68.24759 WRRS James Cook JC031
2113744Water sample data2009-02-10 22:23:0058.5803 S, 68.24759 WRRS James Cook JC031
912244Currents -subsurface Eulerian2009-02-11 03:12:0058.84133 S, 68.2625 WRRS James Cook JC031
913143Currents -subsurface Eulerian2009-02-11 03:12:0058.84133 S, 68.2625 WRRS James Cook JC031
935950CTD or STD cast2009-02-11 03:12:2658.8413 S, 68.2625 WRRS James Cook JC031
1875912Water sample data2009-02-11 04:57:0058.84148 S, 68.26053 WRRS James Cook JC031
2105953Water sample data2009-02-11 04:57:0058.84148 S, 68.26053 WRRS James Cook JC031
2113756Water sample data2009-02-11 04:57:0058.84148 S, 68.26053 WRRS James Cook JC031
912256Currents -subsurface Eulerian2009-02-11 09:24:0059.09083 S, 68.24533 WRRS James Cook JC031
913155Currents -subsurface Eulerian2009-02-11 09:24:0059.09083 S, 68.24533 WRRS James Cook JC031
935962CTD or STD cast2009-02-11 09:24:4159.0908 S, 68.2453 WRRS James Cook JC031
1875924Water sample data2009-02-11 11:21:0059.09099 S, 68.24358 WRRS James Cook JC031
2105965Water sample data2009-02-11 11:21:0059.09099 S, 68.24358 WRRS James Cook JC031
2113768Water sample data2009-02-11 11:21:0059.09099 S, 68.24358 WRRS James Cook JC031
912268Currents -subsurface Eulerian2009-02-11 15:47:0059.3305 S, 68.24917 WRRS James Cook JC031
913167Currents -subsurface Eulerian2009-02-11 15:47:0059.3305 S, 68.24917 WRRS James Cook JC031
935974CTD or STD cast2009-02-11 15:47:2859.3306 S, 68.2492 WRRS James Cook JC031
1875936Water sample data2009-02-11 17:40:3059.33073 S, 68.24914 WRRS James Cook JC031
2105977Water sample data2009-02-11 17:40:3059.33073 S, 68.24914 WRRS James Cook JC031
2113781Water sample data2009-02-11 17:40:3059.33073 S, 68.24914 WRRS James Cook JC031
935986CTD or STD cast2009-02-11 21:48:0859.5898 S, 68.2374 WRRS James Cook JC031
912281Currents -subsurface Eulerian2009-02-11 21:49:0059.58983 S, 68.2375 WRRS James Cook JC031
913179Currents -subsurface Eulerian2009-02-11 21:49:0059.58983 S, 68.2375 WRRS James Cook JC031
1875948Water sample data2009-02-11 23:34:3059.59001 S, 68.23507 WRRS James Cook JC031
2105989Water sample data2009-02-11 23:34:3059.59001 S, 68.23507 WRRS James Cook JC031
912293Currents -subsurface Eulerian2009-02-12 03:25:0059.81983 S, 68.23967 WRRS James Cook JC031
913180Currents -subsurface Eulerian2009-02-12 03:25:0059.81983 S, 68.23967 WRRS James Cook JC031
935998CTD or STD cast2009-02-12 03:25:2959.8198 S, 68.2397 WRRS James Cook JC031
1875961Water sample data2009-02-12 04:57:3059.81996 S, 68.23994 WRRS James Cook JC031
2105990Water sample data2009-02-12 04:57:3059.81996 S, 68.23994 WRRS James Cook JC031
2113793Water sample data2009-02-12 04:57:3059.81996 S, 68.23994 WRRS James Cook JC031
912300Currents -subsurface Eulerian2009-02-12 08:35:0060.07033 S, 68.18933 WRRS James Cook JC031
913192Currents -subsurface Eulerian2009-02-12 08:35:0060.07033 S, 68.18933 WRRS James Cook JC031
936001CTD or STD cast2009-02-12 08:35:3660.0704 S, 68.1894 WRRS James Cook JC031
1875973Water sample data2009-02-12 10:08:3060.07066 S, 68.19079 WRRS James Cook JC031
2106004Water sample data2009-02-12 10:08:3060.07066 S, 68.19079 WRRS James Cook JC031
912312Currents -subsurface Eulerian2009-02-12 13:47:0060.32 S, 68.12 WRRS James Cook JC031
913211Currents -subsurface Eulerian2009-02-12 13:47:0060.32 S, 68.12 WRRS James Cook JC031
936013CTD or STD cast2009-02-12 13:47:5160.32 S, 68.1199 WRRS James Cook JC031
1875985Water sample data2009-02-12 15:35:3060.32007 S, 68.12007 WRRS James Cook JC031
2106016Water sample data2009-02-12 15:35:3060.32007 S, 68.12007 WRRS James Cook JC031
2113800Water sample data2009-02-12 15:35:3060.32007 S, 68.12007 WRRS James Cook JC031
912324Currents -subsurface Eulerian2009-02-12 19:34:0060.58 S, 68.06017 WRRS James Cook JC031
913223Currents -subsurface Eulerian2009-02-12 19:34:0060.58 S, 68.06017 WRRS James Cook JC031
936025CTD or STD cast2009-02-12 19:34:0860.5801 S, 68.0601 WRRS James Cook JC031
1875997Water sample data2009-02-12 21:24:0060.58 S, 68.05999 WRRS James Cook JC031
2106028Water sample data2009-02-12 21:24:0060.58 S, 68.05999 WRRS James Cook JC031
912336Currents -subsurface Eulerian2009-02-13 01:25:0060.82883 S, 67.99017 WRRS James Cook JC031
913235Currents -subsurface Eulerian2009-02-13 01:25:0060.82883 S, 67.99017 WRRS James Cook JC031
936037CTD or STD cast2009-02-13 01:25:5460.8289 S, 67.9902 WRRS James Cook JC031
1876000Water sample data2009-02-13 03:04:0060.82853 S, 67.98751 WRRS James Cook JC031
2106041Water sample data2009-02-13 03:04:0060.82853 S, 67.98751 WRRS James Cook JC031
2113812Water sample data2009-02-13 03:04:0060.82853 S, 67.98751 WRRS James Cook JC031
936049CTD or STD cast2009-02-13 07:05:4461.0197 S, 67.6648 WRRS James Cook JC031
912348Currents -subsurface Eulerian2009-02-13 07:06:0061.01967 S, 67.66483 WRRS James Cook JC031
913247Currents -subsurface Eulerian2009-02-13 07:06:0061.01967 S, 67.66483 WRRS James Cook JC031
1876012Water sample data2009-02-13 08:47:3061.01972 S, 67.66612 WRRS James Cook JC031
2106053Water sample data2009-02-13 08:47:3061.01972 S, 67.66612 WRRS James Cook JC031
2113824Water sample data2009-02-13 08:47:3061.01972 S, 67.66612 WRRS James Cook JC031
912361Currents -subsurface Eulerian2009-02-13 13:28:0061.20983 S, 67.30717 WRRS James Cook JC031
913259Currents -subsurface Eulerian2009-02-13 13:28:0061.20983 S, 67.30717 WRRS James Cook JC031
936050CTD or STD cast2009-02-13 13:28:2461.2098 S, 67.3072 WRRS James Cook JC031
1876024Water sample data2009-02-13 15:17:3061.20979 S, 67.3064 WRRS James Cook JC031
2106065Water sample data2009-02-13 15:17:3061.20979 S, 67.3064 WRRS James Cook JC031
2113836Water sample data2009-02-13 15:17:3061.20979 S, 67.3064 WRRS James Cook JC031
912373Currents -subsurface Eulerian2009-02-13 19:59:0061.40967 S, 66.99483 WRRS James Cook JC031
913260Currents -subsurface Eulerian2009-02-13 19:59:0061.40967 S, 66.99483 WRRS James Cook JC031
936062CTD or STD cast2009-02-13 19:59:2461.4096 S, 66.9949 WRRS James Cook JC031
1876036Water sample data2009-02-13 21:52:0061.4095 S, 66.99104 WRRS James Cook JC031
2106077Water sample data2009-02-13 21:52:0061.4095 S, 66.99104 WRRS James Cook JC031
912385Currents -subsurface Eulerian2009-02-14 02:02:0061.6 S, 66.66983 WRRS James Cook JC031
913272Currents -subsurface Eulerian2009-02-14 02:02:0061.6 S, 66.66983 WRRS James Cook JC031
936074CTD or STD cast2009-02-14 02:03:2761.6 S, 66.6698 WRRS James Cook JC031
1876048Water sample data2009-02-14 03:42:3061.6 S, 66.66992 WRRS James Cook JC031
2106089Water sample data2009-02-14 03:42:3061.6 S, 66.66992 WRRS James Cook JC031
2113848Water sample data2009-02-14 03:42:3061.6 S, 66.66992 WRRS James Cook JC031
912397Currents -subsurface Eulerian2009-02-14 07:32:0061.8 S, 66.32017 WRRS James Cook JC031
913284Currents -subsurface Eulerian2009-02-14 07:32:0061.8 S, 66.32017 WRRS James Cook JC031
936086CTD or STD cast2009-02-14 07:32:3661.8 S, 66.3202 WRRS James Cook JC031
1876061Water sample data2009-02-14 09:06:3061.79998 S, 66.3201 WRRS James Cook JC031
2106090Water sample data2009-02-14 09:06:3061.79998 S, 66.3201 WRRS James Cook JC031
912404Currents -subsurface Eulerian2009-02-14 13:07:0062.0 S, 65.95017 WRRS James Cook JC031
913296Currents -subsurface Eulerian2009-02-14 13:07:0062.0 S, 65.95017 WRRS James Cook JC031
936098CTD or STD cast2009-02-14 13:07:4462.0 S, 65.9502 WRRS James Cook JC031
1876073Water sample data2009-02-14 14:48:0062.00001 S, 65.9501 WRRS James Cook JC031
2106108Water sample data2009-02-14 14:48:0062.00001 S, 65.9501 WRRS James Cook JC031
2113861Water sample data2009-02-14 14:48:0062.00001 S, 65.9501 WRRS James Cook JC031
912416Currents -subsurface Eulerian2009-02-14 18:40:0062.14 S, 65.58 WRRS James Cook JC031
913303Currents -subsurface Eulerian2009-02-14 18:40:0062.14 S, 65.58 WRRS James Cook JC031
936105CTD or STD cast2009-02-14 18:40:1962.1401 S, 65.58 WRRS James Cook JC031
1876085Water sample data2009-02-14 20:23:0062.14004 S, 65.5801 WRRS James Cook JC031
936117CTD or STD cast2009-02-15 00:08:4762.2722 S, 65.192 WRRS James Cook JC031
912428Currents -subsurface Eulerian2009-02-15 00:09:0062.27217 S, 65.192 WRRS James Cook JC031
913315Currents -subsurface Eulerian2009-02-15 00:09:0062.27217 S, 65.192 WRRS James Cook JC031
912441Currents -subsurface Eulerian2009-02-15 17:10:0062.27992 S, 65.21018 WRRS James Cook JC031
913327Currents -subsurface Eulerian2009-02-15 17:10:0062.27992 S, 65.21018 WRRS James Cook JC031
936129CTD or STD cast2009-02-15 17:11:2762.2799 S, 65.2102 WRRS James Cook JC031
912453Currents -subsurface Eulerian2009-02-16 02:44:0062.28 S, 65.21 WRRS James Cook JC031
913339Currents -subsurface Eulerian2009-02-16 02:44:0062.28 S, 65.21 WRRS James Cook JC031
936130CTD or STD cast2009-02-16 02:45:1062.2799 S, 65.2101 WRRS James Cook JC031
1876097Water sample data2009-02-16 04:30:0062.27995 S, 65.21007 WRRS James Cook JC031
2106121Water sample data2009-02-16 04:30:0062.27995 S, 65.21007 WRRS James Cook JC031
2113873Water sample data2009-02-16 04:30:0062.27995 S, 65.21007 WRRS James Cook JC031
912465Currents -subsurface Eulerian2009-02-16 08:00:0062.38883 S, 64.82283 WRRS James Cook JC031
913340Currents -subsurface Eulerian2009-02-16 08:00:0062.38883 S, 64.82283 WRRS James Cook JC031
936142CTD or STD cast2009-02-16 08:00:0462.3888 S, 64.8228 WRRS James Cook JC031
1876104Water sample data2009-02-16 09:37:3062.38834 S, 64.8206 WRRS James Cook JC031
2113885Water sample data2009-02-16 09:37:3062.38834 S, 64.8206 WRRS James Cook JC031
912477Currents -subsurface Eulerian2009-02-16 12:58:0062.5 S, 64.46 WRRS James Cook JC031
913352Currents -subsurface Eulerian2009-02-16 12:58:0062.5 S, 64.46 WRRS James Cook JC031
936154CTD or STD cast2009-02-16 12:58:5062.5 S, 64.46 WRRS James Cook JC031
1876116Water sample data2009-02-16 14:47:3062.49998 S, 64.46004 WRRS James Cook JC031
2106133Water sample data2009-02-16 14:47:3062.49998 S, 64.46004 WRRS James Cook JC031
2113897Water sample data2009-02-16 14:47:3062.49998 S, 64.46004 WRRS James Cook JC031
912489Currents -subsurface Eulerian2009-02-16 18:27:0062.60833 S, 64.07983 WRRS James Cook JC031
913364Currents -subsurface Eulerian2009-02-16 18:27:0062.60833 S, 64.07983 WRRS James Cook JC031
936166CTD or STD cast2009-02-16 18:27:1962.6098 S, 64.0798 WRRS James Cook JC031
1876128Water sample data2009-02-16 20:06:3062.60993 S, 64.07925 WRRS James Cook JC031
2113904Water sample data2009-02-16 20:06:3062.60993 S, 64.07925 WRRS James Cook JC031
912490Currents -subsurface Eulerian2009-02-16 23:04:0062.69 S, 63.9 WRRS James Cook JC031
913376Currents -subsurface Eulerian2009-02-16 23:04:0062.69 S, 63.9 WRRS James Cook JC031
936178CTD or STD cast2009-02-16 23:04:3762.69 S, 63.9 WRRS James Cook JC031
1876141Water sample data2009-02-17 00:58:0062.68996 S, 63.90005 WRRS James Cook JC031
2106145Water sample data2009-02-17 00:58:0062.68996 S, 63.90005 WRRS James Cook JC031
2113916Water sample data2009-02-17 00:58:0062.68996 S, 63.90005 WRRS James Cook JC031
936191CTD or STD cast2009-02-17 04:19:5762.7801 S, 63.7 WRRS James Cook JC031
912508Currents -subsurface Eulerian2009-02-17 04:20:0062.78017 S, 63.7 WRRS James Cook JC031
913388Currents -subsurface Eulerian2009-02-17 04:20:0062.78017 S, 63.7 WRRS James Cook JC031
1876153Water sample data2009-02-17 05:52:3062.78009 S, 63.69994 WRRS James Cook JC031
2106157Water sample data2009-02-17 05:52:3062.78009 S, 63.69994 WRRS James Cook JC031
2113928Water sample data2009-02-17 05:52:3062.78009 S, 63.69994 WRRS James Cook JC031
912521Currents -subsurface Eulerian2009-02-17 20:11:0062.81 S, 63.62 WRRS James Cook JC031
913407Currents -subsurface Eulerian2009-02-17 20:11:0062.81 S, 63.62 WRRS James Cook JC031
936209CTD or STD cast2009-02-17 20:11:0662.81 S, 63.62 WRRS James Cook JC031
1876165Water sample data2009-02-17 21:45:0062.81003 S, 63.62011 WRRS James Cook JC031
912533Currents -subsurface Eulerian2009-02-18 00:10:0062.86 S, 63.52017 WRRS James Cook JC031
913419Currents -subsurface Eulerian2009-02-18 00:10:0062.86 S, 63.52017 WRRS James Cook JC031
936210CTD or STD cast2009-02-18 00:10:4062.86 S, 63.5202 WRRS James Cook JC031
1876177Water sample data2009-02-18 01:08:0062.86004 S, 63.52015 WRRS James Cook JC031
2106169Water sample data2009-02-18 01:08:0062.86004 S, 63.52015 WRRS James Cook JC031
2113941Water sample data2009-02-18 01:08:0062.86004 S, 63.52015 WRRS James Cook JC031
912545Currents -subsurface Eulerian2009-02-18 03:10:0062.94 S, 63.45017 WRRS James Cook JC031
913420Currents -subsurface Eulerian2009-02-18 03:10:0062.94 S, 63.45017 WRRS James Cook JC031
936222CTD or STD cast2009-02-18 03:11:1862.9401 S, 63.4501 WRRS James Cook JC031
1876189Water sample data2009-02-18 03:53:0062.94002 S, 63.45004 WRRS James Cook JC031
2106170Water sample data2009-02-18 03:53:0062.94002 S, 63.45004 WRRS James Cook JC031
912557Currents -subsurface Eulerian2009-02-18 05:30:0062.98 S, 63.39017 WRRS James Cook JC031
913432Currents -subsurface Eulerian2009-02-18 05:30:0062.98 S, 63.39017 WRRS James Cook JC031
936234CTD or STD cast2009-02-18 05:30:2562.98 S, 63.3901 WRRS James Cook JC031
1876190Water sample data2009-02-18 05:57:3062.98003 S, 63.39009 WRRS James Cook JC031
2106182Water sample data2009-02-18 05:57:3062.98003 S, 63.39009 WRRS James Cook JC031
2113953Water sample data2009-02-18 05:57:3062.98003 S, 63.39009 WRRS James Cook JC031
912569Currents -subsurface Eulerian2009-02-18 08:04:0063.15 S, 63.20017 WRRS James Cook JC031
913444Currents -subsurface Eulerian2009-02-18 08:04:0063.15 S, 63.20017 WRRS James Cook JC031
936246CTD or STD cast2009-02-18 08:05:0663.15 S, 63.2001 WRRS James Cook JC031
1876208Water sample data2009-02-18 08:29:0063.15001 S, 63.20014 WRRS James Cook JC031
2113965Water sample data2009-02-18 08:29:0063.15001 S, 63.20014 WRRS James Cook JC031
912570Currents -subsurface Eulerian2009-02-18 11:29:0063.48 S, 63.17 WRRS James Cook JC031
913456Currents -subsurface Eulerian2009-02-18 11:29:0063.48 S, 63.17 WRRS James Cook JC031
936258CTD or STD cast2009-02-18 11:29:5063.48 S, 63.1699 WRRS James Cook JC031
1876221Water sample data2009-02-18 12:03:0063.48 S, 63.16999 WRRS James Cook JC031
2113977Water sample data2009-02-18 12:03:0063.48 S, 63.16999 WRRS James Cook JC031
912582Currents -subsurface Eulerian2009-02-18 15:04:0063.81017 S, 63.12 WRRS James Cook JC031
913468Currents -subsurface Eulerian2009-02-18 15:04:0063.81017 S, 63.12 WRRS James Cook JC031
936271CTD or STD cast2009-02-18 15:04:3763.8101 S, 63.12 WRRS James Cook JC031
1876233Water sample data2009-02-18 15:34:0063.81005 S, 63.11999 WRRS James Cook JC031
2106194Water sample data2009-02-18 15:34:0063.81005 S, 63.11999 WRRS James Cook JC031
2113989Water sample data2009-02-18 15:34:0063.81005 S, 63.11999 WRRS James Cook JC031
912594Currents -subsurface Eulerian2009-02-18 18:38:0064.14 S, 63.08 WRRS James Cook JC031
913481Currents -subsurface Eulerian2009-02-18 18:38:0064.14 S, 63.08 WRRS James Cook JC031
936283CTD or STD cast2009-02-18 18:38:5564.14 S, 63.0799 WRRS James Cook JC031
1876245Water sample data2009-02-18 19:10:0064.13998 S, 63.07984 WRRS James Cook JC031
2113990Water sample data2009-02-18 19:10:0064.13998 S, 63.07984 WRRS James Cook JC031
1088422CTD or STD cast2010-12-25 06:57:0062.8567 S, 63.52256 WRRS James Cook JC054 (UKD-2)
1650418Currents -subsurface Eulerian2010-12-25 06:57:2462.85718 S, 63.52492 WRRS James Cook JC054 (UKD-2)
1649927CTD or STD cast2010-12-25 11:48:0062.6035 S, 64.0843 WRRS James Cook JC054 (UKD-2)
1088434CTD or STD cast2010-12-25 12:04:0062.60287 S, 64.08545 WRRS James Cook JC054 (UKD-2)
1650431Currents -subsurface Eulerian2010-12-25 12:08:0062.60286 S, 64.08544 WRRS James Cook JC054 (UKD-2)
1088446CTD or STD cast2010-12-25 19:38:0062.35086 S, 64.648 WRRS James Cook JC054 (UKD-2)
1650443Currents -subsurface Eulerian2010-12-25 19:41:2362.35084 S, 64.64796 WRRS James Cook JC054 (UKD-2)
1649939CTD or STD cast2010-12-26 02:23:0062.0974 S, 65.2032 WRRS James Cook JC054 (UKD-2)
1650455Currents -subsurface Eulerian2010-12-26 02:46:1562.09817 S, 65.20414 WRRS James Cook JC054 (UKD-2)
1088483CTD or STD cast2010-12-26 08:58:0061.84499 S, 65.76395 WRRS James Cook JC054 (UKD-2)
1650467Currents -subsurface Eulerian2010-12-26 09:03:5261.84496 S, 65.7639 WRRS James Cook JC054 (UKD-2)
1649940CTD or STD cast2010-12-26 16:48:0061.4648 S, 66.6016 WRRS James Cook JC054 (UKD-2)
1088495CTD or STD cast2010-12-26 17:01:0061.46475 S, 66.59983 WRRS James Cook JC054 (UKD-2)
1650479Currents -subsurface Eulerian2010-12-26 17:05:2261.46474 S, 66.59984 WRRS James Cook JC054 (UKD-2)
1088502CTD or STD cast2010-12-27 01:49:0061.08263 S, 67.43747 WRRS James Cook JC054 (UKD-2)
1650480Currents -subsurface Eulerian2010-12-27 01:52:4661.08482 S, 67.44053 WRRS James Cook JC054 (UKD-2)
1088514CTD or STD cast2010-12-27 09:23:0060.65479 S, 68.00557 WRRS James Cook JC054 (UKD-2)
1650492Currents -subsurface Eulerian2010-12-27 09:27:4060.65118 S, 68.00994 WRRS James Cook JC054 (UKD-2)
1649952CTD or STD cast2010-12-27 19:48:0060.1099 S, 68.04 WRRS James Cook JC054 (UKD-2)
1650511Currents -subsurface Eulerian2010-12-27 21:49:1360.1113 S, 68.05102 WRRS James Cook JC054 (UKD-2)
1088526CTD or STD cast2010-12-27 21:51:0060.11191 S, 68.05752 WRRS James Cook JC054 (UKD-2)
1088538CTD or STD cast2010-12-28 03:37:0059.74116 S, 68.06239 WRRS James Cook JC054 (UKD-2)
1650523Currents -subsurface Eulerian2010-12-28 03:40:4459.74786 S, 68.05942 WRRS James Cook JC054 (UKD-2)
1649964CTD or STD cast2010-12-28 10:00:0059.3882 S, 68.0799 WRRS James Cook JC054 (UKD-2)
1088551CTD or STD cast2010-12-28 10:19:0059.38238 S, 68.07612 WRRS James Cook JC054 (UKD-2)
1650535Currents -subsurface Eulerian2010-12-28 10:22:0959.38896 S, 68.07878 WRRS James Cook JC054 (UKD-2)
1088563CTD or STD cast2010-12-28 17:21:0059.01535 S, 68.0658 WRRS James Cook JC054 (UKD-2)
1650547Currents -subsurface Eulerian2010-12-28 17:21:3259.0262 S, 68.10002 WRRS James Cook JC054 (UKD-2)
1649976CTD or STD cast2010-12-29 02:50:0058.6655 S, 68.1195 WRRS James Cook JC054 (UKD-2)
1088575CTD or STD cast2010-12-29 03:20:0058.65477 S, 68.10781 WRRS James Cook JC054 (UKD-2)
1650559Currents -subsurface Eulerian2010-12-29 03:24:2558.66442 S, 68.11832 WRRS James Cook JC054 (UKD-2)
1088599CTD or STD cast2010-12-29 11:08:0058.29855 S, 68.13619 WRRS James Cook JC054 (UKD-2)
1650560Currents -subsurface Eulerian2010-12-29 11:12:2258.3057 S, 68.13886 WRRS James Cook JC054 (UKD-2)
1649988CTD or STD cast2010-12-29 21:46:0057.9441 S, 68.1593 WRRS James Cook JC054 (UKD-2)
1088606CTD or STD cast2010-12-29 21:53:0057.93721 S, 68.16622 WRRS James Cook JC054 (UKD-2)
1650572Currents -subsurface Eulerian2010-12-29 22:02:5757.944 S, 68.15972 WRRS James Cook JC054 (UKD-2)
1088618CTD or STD cast2010-12-30 07:20:0057.58198 S, 68.18309 WRRS James Cook JC054 (UKD-2)
1650584Currents -subsurface Eulerian2010-12-30 07:24:2357.58446 S, 68.1812 WRRS James Cook JC054 (UKD-2)
1650001CTD or STD cast2010-12-30 15:51:0057.2215 S, 68.2 WRRS James Cook JC054 (UKD-2)
1088631CTD or STD cast2010-12-30 16:07:0057.22496 S, 68.17921 WRRS James Cook JC054 (UKD-2)
1650596Currents -subsurface Eulerian2010-12-30 16:09:1557.22144 S, 68.19829 WRRS James Cook JC054 (UKD-2)
1650013CTD or STD cast2010-12-30 23:43:0056.8761 S, 68.2183 WRRS James Cook JC054 (UKD-2)
1088643CTD or STD cast2010-12-30 23:58:0056.87767 S, 68.21201 WRRS James Cook JC054 (UKD-2)
1650603Currents -subsurface Eulerian2010-12-31 00:01:4956.87642 S, 68.21808 WRRS James Cook JC054 (UKD-2)
1726524Currents -subsurface Eulerian2012-03-14 03:20:3761.84448 S, 65.76288 WRRS James Cook JC069 (UKD-3)
1726536Currents -subsurface Eulerian2012-03-14 11:56:3961.17012 S, 67.25708 WRRS James Cook JC069 (UKD-3)
1726548Currents -subsurface Eulerian2012-03-14 20:23:3060.33326 S, 67.99958 WRRS James Cook JC069 (UKD-3)
1726561Currents -subsurface Eulerian2012-03-15 06:19:1059.33408 S, 67.99925 WRRS James Cook JC069 (UKD-3)
1726573Currents -subsurface Eulerian2012-03-15 18:27:0858.329 S, 67.99166 WRRS James Cook JC069 (UKD-3)
1726585Currents -subsurface Eulerian2012-03-17 00:29:3258.32466 S, 67.99128 WRRS James Cook JC069 (UKD-3)