Editing Specification report of common test protocols and intercomparison methodologies

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<div class="figure">
 
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[[File:EP-D1.2-Fig4bis-First-NEMO-float.jpg|left]]
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[[File:EP-D1.2-Fig4bis-First-NEMO-float.jpg]]
<div style="width:400px;">Figure: First profiling float (NEMO model) equipped with a standalone KM CONTROS HydroC sensor and its battery pack – GEOMAR and KM CONTROS collaboration - 2010 data agree better than 3 µatm with both the reference pCO<sub>2</sub> system and the pCO<sub>2</sub> calculated from discrete DIC and TA measurements.</div></div>
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Figure: First profiling float (NEMO model) equipped with a standalone KM CONTROS HydroC sensor and its battery pack – GEOMAR and KM CONTROS collaboration - 2010 data agree better than 3 µatm with both the reference pCO<sub>2</sub> system and the pCO<sub>2</sub> calculated from discrete DIC and TA measurements.</div>
  
 
In collaboration with the Laboratoire d'Océanographie de Villefranche-sur-Mer (LOV), a proof-of-concept float (PROVOR) implementation of a CONTROS HydroFlash® O2 optode was successfully achieved (see Fig. 5A and 5B). This step was necessary as a precursor for planned field work on pCO<sub>2</sub> optodes from CONTROS at that time, as those were meant to be based on the same instrument type. Therefore, the CONTROS HydroFlash® O2 optode was entirely integrated in the top structure, power supply and data string transmission of the float besides the other sensors, namely a CTD and Aanderaa optode.
 
In collaboration with the Laboratoire d'Océanographie de Villefranche-sur-Mer (LOV), a proof-of-concept float (PROVOR) implementation of a CONTROS HydroFlash® O2 optode was successfully achieved (see Fig. 5A and 5B). This step was necessary as a precursor for planned field work on pCO<sub>2</sub> optodes from CONTROS at that time, as those were meant to be based on the same instrument type. Therefore, the CONTROS HydroFlash® O2 optode was entirely integrated in the top structure, power supply and data string transmission of the float besides the other sensors, namely a CTD and Aanderaa optode.
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Overall, the collaboration with the LOV and results from the test gained important information for both GEOMAR scientists and CONTROS developers. This test revealed an issue with the sun-shading of HydroFlash® O2 optode, while for the rest of the profiles data was successfully recorded without peculiarities. Further tests could not be carried out.
 
Overall, the collaboration with the LOV and results from the test gained important information for both GEOMAR scientists and CONTROS developers. This test revealed an issue with the sun-shading of HydroFlash® O2 optode, while for the rest of the profiles data was successfully recorded without peculiarities. Further tests could not be carried out.
  
<div class="figure" id="figure5">
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<div class=figure" id="figure5">
 
[[File:EP-D1.2-Fig5A-HydroFlash-optode.jpg|alt=5(A)]]
 
[[File:EP-D1.2-Fig5A-HydroFlash-optode.jpg|alt=5(A)]]
 
[[File:EP-D1.2-Fig5B-PROVOR-float.jpg|alt=5(B)]]
 
[[File:EP-D1.2-Fig5B-PROVOR-float.jpg|alt=5(B)]]
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[[File:EP-D1.2-Fig5C-First-optode-profile.jpg|alt=5(C)]]
 
[[File:EP-D1.2-Fig5C-First-optode-profile.jpg|alt=5(C)]]
  
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A first prototype of a planar pCO<sub>2</sub> mini sensor spot optode (SN DCO2-1116-001) provided by CONTROS, was initially tested in the course of a research cruise (R/V Meteor cruise M133) across the South Atlantic (15.12.2016 – 13.1.2017). The spot optode was integrated in a custom-made flow-through chamber with simultaneous temperature recording. Fig. 6.A schematically shows all underway measurements during M133 in which the pCO<sub>2</sub> prototype was integrated (flow line 5d, red box). Optical, continuous pCO<sub>2</sub> measurements with this prototype were carried out throughout the cruise using a measuring interval of 30 seconds. In total, data were recorded for 17 days. For comparison, an Aanderaa pCO<sub>2</sub> optode sensor (model 4797) was installed in the flow-through chamber SOOGuard. Part of the full setup is shown in Fig. 6.B.
 
A first prototype of a planar pCO<sub>2</sub> mini sensor spot optode (SN DCO2-1116-001) provided by CONTROS, was initially tested in the course of a research cruise (R/V Meteor cruise M133) across the South Atlantic (15.12.2016 – 13.1.2017). The spot optode was integrated in a custom-made flow-through chamber with simultaneous temperature recording. Fig. 6.A schematically shows all underway measurements during M133 in which the pCO<sub>2</sub> prototype was integrated (flow line 5d, red box). Optical, continuous pCO<sub>2</sub> measurements with this prototype were carried out throughout the cruise using a measuring interval of 30 seconds. In total, data were recorded for 17 days. For comparison, an Aanderaa pCO<sub>2</sub> optode sensor (model 4797) was installed in the flow-through chamber SOOGuard. Part of the full setup is shown in Fig. 6.B.
  
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[[File:EP-D1.2-Fig6A-M133-measurements.png]]
 
[[File:EP-D1.2-Fig6A-M133-measurements.png]]
 
[[File:EP-D1.2-Fig6B-pCO2-GO-arrangement.jpg]]
 
[[File:EP-D1.2-Fig6B-pCO2-GO-arrangement.jpg]]
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Similar observations have been made elsewhere and points at the not satisfactory level the optode technology has reached with respect to pCO<sub>2</sub>.
 
Similar observations have been made elsewhere and points at the not satisfactory level the optode technology has reached with respect to pCO<sub>2</sub>.
  
<div class="figure" id="figure7">
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<div class=figure" id="figure7">
 
[[File:EP-D1.2-Fig7-M133-pCO2-data.PNG]]
 
[[File:EP-D1.2-Fig7-M133-pCO2-data.PNG]]
  

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