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Steuerrandmessungen Elbe und Jade/Weser 2012

Die BAW (Bundesanstalt für Wasserbau) führt im Auftrag der WSV (Wasserstraßen- und Schifffahrtsverwaltung des Bundes) umfangreiche F&E-Untersuchungen (Forschung- und Entwicklung) zur Klimafolgenforschung sowie zur Auswirkung geplanter Ausbaumaßnahmen an Seeschifffahrtsstraßen durch. Hierfür werden hochauflösende dreidimensionale numerische Simulationsmodelle eingesetzt. Die Aussagefähigkeit und Qualität der Simulationsergebnisse ist hierbei entscheidend von der Güte der Steuerung an den Modellrändern abhängig. Die Modelltopographie (= "Rechengitter") und die verwendeten hydrologischen Bedingungen auf den Modellrändern sollten möglichst einen identischen Zeitraum repräsentieren. Da die Modelltopographien für die Modellgebiete des "Jade-Weser" und des "Elbe" - Modells der BAW im Jahr 2012 neu aufgebaut worden sind, ist im Sommer 2012 ein Messprogramm zur Erfassung der hydrologischen Randbedingungen durchgeführt worden. Zu diesem Zweck hat die BAW - Dienstort Hamburg ein Messnetz aus insgesamt 13 Beobachtungsstationen entlang der Steueränder der numerischen Modellsysteme eingerichtet. Mindestens über den Zeitraum eines "Nipp-Spring-Zyklus" (~ 14 Tage) wurden in verschiedenen Gerätekonfigurationen folgende Parameter gemessen: CTD-Messungen (Conductivity, Temperature, Depth): - Wasserspiegelauslenkung (Tidekurve) - Salinität - Temperatur - Trübung (teilweise) Für Zwecke der Modellvalidierung sind auf einem ca. 10 km parallel in das Modellgebiet verschobenen Rand ADCP-Messungen (Acoustic Doppler Current Profiler): - Strömungs- und - Seegangsmessungen (teilweise) durchgeführt worden. Soweit verfügbar sind Daten der von der WSV betriebenen Pegelstationen einbezogen worden. Für meterologische Informationen stehen Daten des DWD zur Verfügung (Quelle: Deutscher Wetterdienst).

Intensives Waldmonitoring ( IWM , Level II )

Das ICP-Forests-Programm agiert im Rahmen des UNECE-Übereinkommens über weiträumige grenzüberschreitende Luftverunreinigungen (Genfer Luftreinhaltekonvention, CLRTAP). Das Level-II-Monitoring ergänzt seit 1995 das Level-I-Monitoring. Hier werden Daten über Baumwachstum, Bodenvegetation, Bodenlösung, Bodenfestphase, nasse Deposition, Luftqualität, meteorologische Parameter, Phänologie, Streufall, Nadel- / Blattanalysen und sichtbare Ozonschäden erhoben, die umfänglich und hinsichtlich ihrer zeitlichen Auflösung weit über den Erhebungsrahmen des extensiven Waldmonitorings (Level I) hinausgehen. Die Daten werden in Deutschland auf ca. 50 - 90 Plots (Anzahl variiert je nach Parameter) erhoben. Verteilung Probenahmestandorte: Verteilung systematisch, so dass die Hauptwaldtypen Europas repräsentiert sind (kein Raster) Probenahmemethode: Die Probenahme für chemische Analysen erfolgt grundsätzlich nach Tiefenstufen. Satellitenbeprobung im Radius von 25 m mit einem inneren intensiver zu beprobenden Radius von 3 m. Für alle anderen Erhebungen ausführliche Angaben im ICP-Forests-Manual: https://www.icp-forests.net/monitoring-and-research/icp-forests-manual Entnahmetiefen: 0 bis 10 cm 20 bis 40 cm 40 bis 80 cm Untersuchungsmethode: Analysemethoden sind einheitlich festgelegt im ICP-Forests-Manual (s.o.). Untersuchungshäufigkeit: - bodenchemische Parameter alle 10 Jahre - Boden-Lösung fortlaufend - Blattnährstoffgehalte alle 2 Jahre - Baumdurchmesser und -höhen alle 5 Jahre - Boden-Vegetation mindestens alle 5 Jahre - atmosphärische Deposition fortlaufend - Bedingungen der Umgebungsluft fortlaufend - meteorologische Parameter fortlaufend - Phänologie mehrmals pro Jahr - Streufall fortlaufend - sichtbare Ozonschäden einmal pro Jahr - Kronenzustand jährlich Arbeitsgruppen / Gremien: - Expert Panel on soil and soils solution - Forest Soil Coordination Centre - Expert Panel on foliage and litterfall - Forest Foliar Coordinating Centre - Expert Panel on forest growth - Expert Panel on deposition - Working Group on ambient air quality - Expert Panel on crown condition - Ad hoc group on assessment of biotic damage causes - Expert panel on meteorology and phenology - Expert panel on biodiversity and ground vegetation - Quality Assurance Committee - Project Coordinating Group (PCG) - Scientific Advisory Group (SAG)

Physical oceanography during RV HEINCKE cruise HE601

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV Heincke cruise HE601. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV Heincke (hdl:10013/epic.47427). The processing report for this dataset is linked below.

METOP GOME-2 - Cloud Top Pressure (CTP) - Global

Gridded Level 3 cloud top pressure derived from Metop/GOME observations. Cloud physical properties (cloud fraction, cloud top height, cloud optical thickness) are derived from GOME/GOME-2 observations using the OCRA (Optical Cloud Recognition Algorithm) and ROCINN (Retrieval of Cloud Information using Neural Networks). For more details please refer to relevant peer-review papers listed on the GOME and GOME-2 documentation pages: https://atmos.eoc.dlr.de/app/docs/ The Global Ozone Monitoring Experiment-2 (GOME-2) instrument continues the long-term monitoring of atmospheric trace gas constituents started with GOME / ERS-2 and SCIAMACHY / Envisat. Three instruments operate on board EUMETSAT's Meteorological Operational satellites MetOp-A, -B, and -C, launched in 2006, 2012, and 2018, respectively. GOME-2 measures a range of atmospheric trace constituents, with the emphasis on global ozone distribution. Furthermore, cloud properties and intensities of ultraviolet radiation are retrieved. These data are crucial for monitoring the atmospheric composition and the detection of pollutants. DLR generates operational GOME-2 / MetOp products in the framework of EUMETSAT's Satellite Application Facility on Atmospheric Composition Monitoring (AC-SAF).

Physical oceanography during RV MARIA S. MERIAN cruise MSM123

Physical oceanography data was acquired by a ship-based Seabird SBE911plus CTD-Rosette system onboard RV MARIA S. MERIAN during research cruise MSM123. The CTD system is comprised of a Seabird SBE911plus including dual respectively redundant sensor and pump packages. The SBE11plus Deck Unit remains on board in a laboratory and supplies on one hand power to the SBE9plus underwater unit, on the other hand data telemetry between the SBE9plus and a measurement PC. The SBE9plus underwater unit itself holds a pressure sensor and is interfacing with dual SEB3 temperature, SBE4 conductivity and SBE43 oxygen sensors, as well as two SBE5 pumps to provide a pumped water supply past each sensor. The system also carries an optical FLNTU sensor to measure a combination of back-scattering, turbidity, and chlorophyll-a. To quantify the photo-synthetically active radiation a PAR sensor is installed as well.

Physical oceanography during RV HEINCKE cruise HE607

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV Heincke cruise HE607. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV Heincke (hdl:10013/epic.47427). The processing report for this dataset is linked below.

Physical oceanography during RV HEINCKE cruise HE651

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV HEINCKE cruise HE651. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV HEINCKE (hdl:10013/epic.47427). The processing report for this dataset is linked below.

Physical oceanography during RV HEINCKE cruise HE663

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV HEINCKE cruise HE663. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV HEINCKE (hdl:10013/epic.47427). The processing report for this dataset is linked below.

Physical oceanography during RV HEINCKE cruise HE660

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV HEINCKE cruise HE660. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV HEINCKE (hdl:10013/epic.47427). The processing report for this dataset is linked below.

Physical oceanography during RV HEINCKE cruise HE659

Conductivity-temperature-depth profiles were measured using a Seabird SBE 911plus CTD during RV HEINCKE cruise HE659. The CTD was equipped with duplicate sensors for temperature (SBE3plus), conductivity (SBE4) and oxygen (SBE43). Additional sensors such as a WET Labs C-Star transmissometer, a WET Labs ECO-AFL fluorometer and an altimeter (PSA-916 Teledyne (Benthos)) were mounted to the CTD. Temperature, conductivity and oxygen sensors are calibrated by the manufacturer once a year before being mounted in January. They are used throughout the year and no post-cruise or in-situ calibration is applied. All other sensors are calibrated irregularly. Data were connected to the station book of the specific cruise as available in the DSHIP database. Processing of the data including removal of obvious outliers followed the procedures described in CTD Processing Logbook of RV HEINCKE (hdl:10013/epic.47427). The processing report for this dataset is linked below.

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