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Metadata Report for BODC Series Reference Number 865354


Metadata Summary

Data Description

Data Category CTD or STD cast
Instrument Type
NameCategories
Sea-Bird SBE 911plus CTD  CTD; water temperature sensor; salinity sensor
Instrument Mounting research vessel
Originating Country Belgium
Originator Dr Michel Frankignoulle
Originating Organization University of Liège Department of Astrophysics Geophysics and Oceanography
Processing Status banked
Online delivery of data Download available - Ocean Data View (ODV) format
Project(s) OMEX II-II
 

Data Identifiers

Originator's Identifier 40A
BODC Series Reference 865354
 

Time Co-ordinates(UT)

Start Time (yyyy-mm-dd hh:mm) 1998-07-11 05:10
End Time (yyyy-mm-dd hh:mm) -
Nominal Cycle Interval 2.0 decibars
 

Spatial Co-ordinates

Latitude 47.34250 N ( 47° 20.5' N )
Longitude 7.30733 W ( 7° 18.4' W )
Positional Uncertainty 0.0 to 0.01 n.miles
Minimum Sensor or Sampling Depth 4.96 m
Maximum Sensor or Sampling Depth 300.26 m
Minimum Sensor or Sampling Height -
Maximum Sensor or Sampling Height -
Sea Floor Depth -
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 -
 

Parameters

BODC CODERankUnitsTitle
DOXYPR011Micromoles per litreConcentration of oxygen {O2 CAS 7782-44-7} per unit volume of the water body [dissolved plus reactive particulate phase] by in-situ Beckmann probe
OXYSBB011PercentSaturation of oxygen {O2 CAS 7782-44-7} in the water body [dissolved plus reactive particulate phase] by in-situ Beckmann probe and computation from concentration using Benson and Krause algorithm
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
PSALST011DimensionlessPractical salinity of the water body by CTD and computation using UNESCO 1983 algorithm
SIGTPR011Kilograms per cubic metreSigma-theta of the water body by CTD and computation from salinity and potential temperature using UNESCO algorithm
TEMPST011Degrees CelsiusTemperature of the water body by CTD or STD
TURBPR011Nephelometric Turbidity UnitsTurbidity of water in the water body by in-situ optical backscatter measurement and laboratory calibration against formazin

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

Public domain 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.

The recommended acknowledgment is

"This study uses data from the data source/organisation/programme, provided by the British Oceanographic Data Centre and funded by the funding body."


Narrative Documents

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.

RV Belgica 9815 CTD Data Documentation

Instrumentation and Shipboard Procedures

The CTD profiles were taken with a SeaBird SBE09 plus system. The instrument was equipped with a sensor set comprising an SBE-3 temperature sensor and an SBE-4 conductivity sensor. The system had a Temperature and Conductivity (TC) duct with an inertia-balanced pump flow, designed to improve the performance of the salinity measurements.

When not in use, the sensors were bathed in MilliQ water. SeaBird temperature sensors are high performance, pressure protected thermistors. Other sensors on the rig were a dissolved oxygen cell (YSI SBE-13-Y polargraphic membrane) and a SeaBird optical backscatter sensor.

The CTD was periodically sent for calibration to SeaBird's NWRCC facility in Washington State. An average of 4 salinity samples were taken per cast, stored in crown-corked beer bottles, and determined on Guildline Portasal laboratory salinometer, calibrated using OSI standard seawater.

A SeaBird rosette sampler fitted with 12, 10 litre Niskin bottles was mounted above the frame. The bases of the bottles were level with the pressure sensor with their tops 0.8 m above it.

Data Acquisition

The SeaBird SBE09 plus CTD system measured the depth of the sensor package, water temperature, conductivity, backscatter and dissolved oxygen at a rate of 24 samples per second. These data were averaged in the SeaBird deck unit over a 0.5-second interval. The resultant data were plotted on a VDU screen and used to decide water-sampling depths. The CTD software automatically marked the depths as part of the bottle firing sequence.

Post-cruise Processing

The SeaBird DATCNV software was used to convert the binary raw data files into the calibrated ASCII data files supplied to BODC.

The salinity computation algorithm in the software is based on Fofonoff and Millard (1982). Salinity spiking on thermal gradients was minimised through software realignment of the temperature and conductivity channels.

Reformatting

The data were converted into the BODC internal format to allow the use of in-house software tools, notably the workstation graphics editor. In addition to reformatting, the transfer program converted the dissolved oxygen from µmol/kg to µM by multiplying the values by (1000 + sigma-theta)/1000.

Editing

The in-house graphics editor at BODC was used to mark the start and end of the downcasts, to remove noisy data logged whilst the instrument was stabilising.

The data were screened, point-by-point, and any obvious spikes were marked "suspect".

Once screened, the CTD downcasts were loaded into a database under the Oracle relational database management system. 51 and 23 casts were loaded from leg C and D respectively. These were later migrated for inclusion in the National Oceanographic Databank.

Calibration

Pressure

The pressure calibrations were obtained by looking at the pressure values logged whilst the CTD unit was on the deck. The following corrections were applied:

Leg C: Pressurecorrected = Pressureobserved - 0.36 (N = 46, SD = 0.09)
Leg D: Pressurecalibrated = Pressureobserved - 0.31 (N = 6, SD = 0.04)
Temperature

The temperature data are believed to be accurate as supplied and no further calibrations have been applied.

Salinity

The salinity sensor was calibrated against discrete samples analysed using a Guildline Portasal Model 8410 laboratory salinometer. There was an excellent relationship between the data sets, and the following corrections were applied:

Leg C: Salinitycorrected = Salinityobserved - 0.006 (N = 90, SD = 0.006)
Leg D: Salinitycorrected = Salinityobserved - 0.008 (N = 23, SD = 0.004)
Oxygen

The oxygen sensor was calibrated against discrete samples analysed by the Winkler titration method (data supplied by University of Liège). As for the salinity measurements, there was an excellent relationship between the two data sets, and the following corrections were made to the CTD data:

Leg C: Ocorrected = 0.847 * Oobserved + 17.97 (N = 256, R2=0.87)
Leg D: Ocorrected = 1.121 * Oobserved - 44.95 (N = 23, R2=0.95)
Optical Backscatter

The data were calibrated using the SeaBird software, based on a laboratory formazin calibration. No additional calibrations have been applied.

Data Reduction

Once all screening and calibration procedures were completed, the data set was binned to 2 db (casts deeper than 100 db) or 1 db (casts shallower than 100 db). The binning algorithm excluded any data points flagged suspect and attempted linear interpolation over gaps up to 3 bins wide. If any gaps larger than this were encountered, the data in the gaps were set null.

Downcast values corresponding to the bottle firing depths were incorporated into the database. Oxygen saturations were computed using the algorithm of Benson and Krause (1984).

References

Benson B.B. and Krause D. jnr. 1984. The concentration and isotopic fractionation of oxygen dissolved in fresh water and seawater in equilibrium with the atmosphere. Limnol. Oceanogr. 29, pp.620-632.

Fofonoff N.P., Millard R.C. 1982. Algorithms for computation of fundamental properties of seawater. UNESCO Technical Papers in Marine Science. 44.


Project Information

Ocean Margin EXchange (OMEX) II - II

Introduction

OMEX was a European multidisciplinary oceanographic research project that studied and quantified the exchange processes of carbon and associated elements between the continental shelf of western Europe and the open Atlantic Ocean. The project ran in two phases known as OMEX I (1993-1996) and OMEX II - II (1997-2000), with a bridging phase OMEX II - I (1996-1997). The project was supported by the European Union under the second and third phases of its MArine Science and Technology Programme (MAST) through contracts MAS2-CT93-0069 and MAS3-CT97-0076. It was led by Professor Roland Wollast from Université Libre de Bruxelles, Belgium and involved more than 100 scientists from 10 European countries.

Scientific Objectives

The aim of the Ocean Margin EXchange (OMEX) project was to gain a better understanding of the physical, chemical and biological processes occurring at the ocean margins in order to quantify fluxes of energy and matter (carbon, nutrients and other trace elements) across this boundary. The research culminated in the development of quantitative budgets for the areas studied using an approach based on both field measurements and modeling.

OMEX II - II (1997-2000)

The second phase of OMEX concentrated exclusively on the Iberian Margin, although RV Belgica did make some measurements on La Chapelle Bank whilst on passage to Zeebrugge. This is a narrow-shelf environment, which contrasts sharply with the broad shelf adjacent to the Goban Spur. This phase of the project was also strongly multidisciplinary in approach, covering physics, chemistry, biology and geology.

There were a total of 33 OMEX II - II research cruises, plus 23 CPR tows, most of which were instrumented. Some of these cruises took place before the official project start date of June 1997.

Data Availability

Field data collected during OMEX II - II have been published by BODC as a CD-ROM product, entitled:

  • OMEX II Project Data Set (three discs)

Further descriptions of this product and order forms may be found on the BODC web site.

The data are also held in BODC's databases and subsets may be obtained by request from BODC.


Data Activity or Cruise Information

Cruise

Cruise Name BG9815D
Departure Date 1998-07-10
Arrival Date 1998-07-14
Principal Scientist(s)Michel Frankignoulle (University of Liège Department of Astrophysics Geophysics and Oceanography)
Ship RV Belgica

Complete Cruise Metadata Report is available here


Fixed Station Information

Fixed Station Information

Station NameOMEX II-II Repeat Section LC
CategoryOffshore route/traverse

OMEX II-II Repeat Section LC

Section LC was one of ten repeat sections sampled during the Ocean Margin EXchange (OMEX) II-II project between July 1997 and September 1999.

The CTD measurements collected at repeat section LC, on the La Chapelle Bank, lie within a box bounded by co-ordinates 47 ° 9.2'N, 07 ° 24.4'W at the southwest corner and 47 ° 45.4'N, 07 ° 4.5'W at the northeast corner.

Cruises occupying section LC

Cruise Start Date End Date
RV Belgica 9714D 02/07/1997 07/07/1997
RV Belgica 9815D 10/07/1998 14/07/1998
RV Belgica 9919A 30/08/1999 03/09/1999

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: OMEX II-II Repeat Section LC

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
863034CTD or STD cast1997-07-03 12:16:0047.15317 N, 7.40383 WRV Belgica BG9714D
863046CTD or STD cast1997-07-03 14:28:0047.15717 N, 7.40683 WRV Belgica BG9714D
863058CTD or STD cast1997-07-03 15:47:0047.21583 N, 7.36317 WRV Belgica BG9714D
863071CTD or STD cast1997-07-03 16:54:0047.27417 N, 7.33317 WRV Belgica BG9714D
863083CTD or STD cast1997-07-03 17:59:0047.33817 N, 7.3025 WRV Belgica BG9714D
863095CTD or STD cast1997-07-03 19:13:0047.40183 N, 7.27117 WRV Belgica BG9714D
863102CTD or STD cast1997-07-04 04:03:0047.4015 N, 7.26767 WRV Belgica BG9714D
863114CTD or STD cast1997-07-04 06:12:0047.3985 N, 7.26967 WRV Belgica BG9714D
863126CTD or STD cast1997-07-04 10:06:0047.39767 N, 7.26733 WRV Belgica BG9714D
863138CTD or STD cast1997-07-04 14:38:0047.40267 N, 7.272 WRV Belgica BG9714D
863151CTD or STD cast1997-07-04 18:11:0047.39833 N, 7.27083 WRV Belgica BG9714D
863163CTD or STD cast1997-07-05 00:13:0047.46083 N, 7.24267 WRV Belgica BG9714D
863175CTD or STD cast1997-07-05 01:26:0047.52817 N, 7.21017 WRV Belgica BG9714D
863187CTD or STD cast1997-07-05 02:29:0047.58933 N, 7.174 WRV Belgica BG9714D
863199CTD or STD cast1997-07-05 05:06:0047.64117 N, 7.13483 WRV Belgica BG9714D
865342CTD or STD cast1998-07-11 04:16:0047.28 N, 7.342 WRV Belgica BG9815D
865366CTD or STD cast1998-07-11 05:58:0047.39967 N, 7.27633 WRV Belgica BG9815D
865378CTD or STD cast1998-07-11 06:54:0047.46433 N, 7.231 WRV Belgica BG9815D
865391CTD or STD cast1998-07-11 07:56:0047.51867 N, 7.1915 WRV Belgica BG9815D
865409CTD or STD cast1998-07-11 12:11:0047.51517 N, 7.21867 WRV Belgica BG9815D
865410CTD or STD cast1998-07-11 13:21:0047.52067 N, 7.20933 WRV Belgica BG9815D
865422CTD or STD cast1998-07-11 14:21:0047.52483 N, 7.217 WRV Belgica BG9815D
865434CTD or STD cast1998-07-11 15:11:0047.52317 N, 7.20717 WRV Belgica BG9815D
865446CTD or STD cast1998-07-11 16:16:0047.52533 N, 7.20283 WRV Belgica BG9815D
865458CTD or STD cast1998-07-11 17:11:0047.52667 N, 7.20567 WRV Belgica BG9815D
865471CTD or STD cast1998-07-11 18:09:0047.5255 N, 7.2015 WRV Belgica BG9815D
865483CTD or STD cast1998-07-11 19:07:0047.52133 N, 7.20133 WRV Belgica BG9815D
865495CTD or STD cast1998-07-11 20:08:0047.5215 N, 7.20567 WRV Belgica BG9815D
865502CTD or STD cast1998-07-11 21:09:0047.51833 N, 7.206 WRV Belgica BG9815D
865514CTD or STD cast1998-07-11 22:12:0047.517 N, 7.20617 WRV Belgica BG9815D
865526CTD or STD cast1998-07-11 23:08:0047.50967 N, 7.2145 WRV Belgica BG9815D
865538CTD or STD cast1998-07-12 00:18:0047.522 N, 7.23183 WRV Belgica BG9815D
865551CTD or STD cast1998-07-12 04:09:0047.5275 N, 7.2105 WRV Belgica BG9815D
865563CTD or STD cast1998-07-12 06:11:0047.58883 N, 7.17317 WRV Belgica BG9815D
865575CTD or STD cast1998-07-12 06:54:0047.64083 N, 7.14233 WRV Belgica BG9815D
865587CTD or STD cast1998-07-12 07:39:0047.69267 N, 7.10583 WRV Belgica BG9815D
865599CTD or STD cast1998-07-12 08:27:0047.75233 N, 7.07567 WRV Belgica BG9815D
865606CTD or STD cast1999-09-01 07:52:0047.757 N, 7.08217 WRV Belgica BG9919A
865618CTD or STD cast1999-09-01 08:52:0047.698 N, 7.11317 WRV Belgica BG9919A
865631CTD or STD cast1999-09-01 09:27:0047.64083 N, 7.143 WRV Belgica BG9919A
865643CTD or STD cast1999-09-01 10:05:0047.58333 N, 7.17233 WRV Belgica BG9919A
865655CTD or STD cast1999-09-01 11:15:0047.52 N, 7.19633 WRV Belgica BG9919A
865667CTD or STD cast1999-09-01 13:05:0047.51933 N, 7.19917 WRV Belgica BG9919A
865679CTD or STD cast1999-09-01 15:03:0047.526 N, 7.21033 WRV Belgica BG9919A
865680CTD or STD cast1999-09-01 17:03:0047.52467 N, 7.21017 WRV Belgica BG9919A
865692CTD or STD cast1999-09-01 19:05:0047.52717 N, 7.20267 WRV Belgica BG9919A
865711CTD or STD cast1999-09-01 21:04:0047.52383 N, 7.20683 WRV Belgica BG9919A
865723CTD or STD cast1999-09-01 23:00:0047.52217 N, 7.213 WRV Belgica BG9919A
865735CTD or STD cast1999-09-02 04:06:0047.524 N, 7.2075 WRV Belgica BG9919A
865747CTD or STD cast1999-09-02 08:07:0047.5235 N, 7.20417 WRV Belgica BG9919A
865759CTD or STD cast1999-09-02 09:43:0047.46317 N, 7.23417 WRV Belgica BG9919A
865760CTD or STD cast1999-09-02 11:11:0047.39483 N, 7.27117 WRV Belgica BG9919A
865772CTD or STD cast1999-09-02 11:58:0047.34233 N, 7.30033 WRV Belgica BG9919A
865784CTD or STD cast1999-09-02 12:44:0047.28383 N, 7.33483 WRV Belgica BG9919A