Der WFS-Dienst Hintergrundwerte von Böden liefert die beiden Layer "Hintergrundwerte Anorganik" und "Hintergrundwerte Organik". Der erste Layer "Hintergrundwerte Anorganik" enthält die aggregierten Leitsubstrate der Bodenbildung. Die Leitsubstrate dienen zur Zusammenfassung der Böden nach ihrem Ausgangsgestein bei der Berechnung von Hintergrundwerten für anorganische Stoffe. Für die Auswertung der Hintergrundwerte Anorganik wurden Analysedaten für 16 Elemente von ca. 19.000 Standorten mit bis zu 40.000 Proben aus dem Fachinformationssystem Boden herangezogen. Der zweite Layer "Hintergrundwerte Organik" basiert auf der Karte der Raumkategorien für den Landesentwicklungsplan (LEP) von 2013. Dieser teilt Sachsen in drei Raumkategorien ein, welche die Grundage für die Berechnung von Hintergrundwerten für organische Stoffe bilden. Die Leitsubstrate dienen zur Zusammenfassung der Böden. Für die Auswertung der Hintergrundwerte wurden je nach Stoff Analysedaten aus dem Fachinformationssystem Boden von bis zu 2.300 Proben an 2.200 Standorten für 10 Einzelstoffe bzw. Stoffgruppen herangezogen.
This product displays the Cloud Optical Thickness (COT) around the globe. Clouds play a crucial role in the Earth's climate system and have significant effects on trace gas retrievals. The cloud optical thickness is retrieved from the O2-A band using the ROCINN algorithm. The TROPOMI instrument aboard the SENTINEL-5P space craft is a nadir-viewing, imaging spectrometer covering wavelength bands between the ultraviolet and the shortwave infra-red. TROPOMI's purpose is to measure atmospheric properties and constituents. It is contributing to monitoring air quality and providing critical information to services and decision makers. The instrument uses passive remote sensing techniques by measuring the Top Of Atmosphere (TOA) solar radiation reflected by and radiated from the earth and its atmosphere. The four spectrometers of TROPOMI cover the ultraviolet (UV), visible (VIS), Near Infra-Red (NIR) and Short Wavelength Infra-Red (SWIR) domains of the electromagnetic spectrum, allowing operational retrieval of the following trace gas constituents: Ozone (O3), Nitrogen Dioxide (NO2), Sulfur Dioxide (SO2), Formaldehyde (HCHO), Carbon Monoxide (CO) and Methane (CH4). Within the INPULS project, innovative algorithms and processors for the generation of Level 3 and Level 4 products, improved data discovery and access technologies as well as server-side analytics for the users are developed.
Ozone vertical column density in Dobson Units as derived from Sentinel-5P/TROPOMI observations. The stratospheric ozone layer protects the biosphere from harmful solar ultraviolet radiation. Ozone in troposphere can pose risks to the health of humans, animals, and vegetation. The TROPOMI instrument aboard the SENTINEL-5P space craft is a nadir-viewing, imaging spectrometer covering wavelength bands between the ultraviolet and the shortwave infra-red. TROPOMI's purpose is to measure atmospheric properties and constituents. It is contributing to monitoring air quality and providing critical information to services and decision makers. The instrument uses passive remote sensing techniques by measuring the Top Of Atmosphere (TOA) solar radiation reflected by and radiated from the earth and its atmosphere. The four spectrometers of TROPOMI cover the ultraviolet (UV), visible (VIS), Near Infra-Red (NIR) and Short Wavelength Infra-Red (SWIR) domains of the electromagnetic spectrum, allowing operational retrieval of the following trace gas constituents: Ozone (O3), Nitrogen Dioxide (NO2), Sulfur Dioxide (SO2), Formaldehyde (HCHO), Carbon Monoxide (CO) and Methane (CH4). Daily observations are binned onto a regular latitude-longitude grid. Within the INPULS project, innovative algorithms and processors for the generation of Level 3 and Level 4 products, improved data discovery and access technologies as well as server-side analytics for the users are developed.
DWD’s fully automatic MOSMIX product optimizes and interprets the forecast calculations of the NWP models ICON (DWD) and IFS (ECMWF), combines these and calculates statistically optimized weather forecasts in terms of point forecasts (PFCs). Thus, statistically corrected, updated forecasts for the next ten days are calculated for about 5400 locations around the world. Most forecasting locations are spread over Germany and Europe. MOSMIX forecasts (PFCs) include nearly all common meteorological parameters measured by weather stations. For further information please refer to: [in German: https://www.dwd.de/DE/leistungen/met_verfahren_mosmix/met_verfahren_mosmix.html ] [in English: https://www.dwd.de/EN/ourservices/met_application_mosmix/met_application_mosmix.html ]
DWD’s fully automatic MOSMIX product optimizes and interprets the forecast calculations of the NWP models ICON (DWD) and IFS (ECMWF), combines these and calculates statistically optimized weather forecasts in terms of point forecasts (PFCs). Thus, statistically corrected, updated forecasts for the next ten days are calculated for about 5400 locations around the world. Most forecasting locations are spread over Germany and Europe. MOSMIX forecasts (PFCs) include nearly all common meteorological parameters measured by weather stations. For further information please refer to: [in German: https://www.dwd.de/DE/leistungen/met_verfahren_mosmix/met_verfahren_mosmix.html ] [in English: https://www.dwd.de/EN/ourservices/met_application_mosmix/met_application_mosmix.html ]
Aerosol optical depth (AOD) as derived from TROPOMI observations. AOD describes the attenuation of the transmitted radiant power by the absence of aerosols. Attenuation can be caused by absorption and/or scattering. AOD is the primary parameter to evaluate the impact of aerosols on weather and climate. Daily AOD observations are binned onto a regular latitude-longitude grid. The TROPOMI instrument onboard the Copernicus SENTINEL-5 Precursor satellite is a nadir-viewing, imaging spectrometer that provides global measurements of atmospheric properties and constituents on a daily basis. It is contributing to monitoring air quality and climate, providing critical information to services and decision makers. The instrument uses passive remote sensing techniques by measuring the top of atmosphere solar radiation reflected by and radiated from the earth and its atmosphere. The four spectrometers of TROPOMI cover the ultraviolet (UV), visible (VIS), Near Infra-Red (NIR) and Short Wavelength Infra-Red (SWIR) domains of the electromagnetic spectrum. The operational trace gas products generated at DLR on behave ESA are: Ozone (O3), Nitrogen Dioxide (NO2), Sulfur Dioxide (SO2), Formaldehyde (HCHO), Carbon Monoxide (CO) and Methane (CH4), together with clouds and aerosol properties. This product is created in the scope of the project INPULS. It develops (a) innovative retrieval algorithms and processors for the generation of value-added products from the atmospheric Copernicus missions Sentinel-5 Precursor, Sentinel-4, and Sentinel-5, (b) cloud-based (re)processing systems, (c) improved data discovery and access technologies as well as server-side analytics for the users, and (d) data visualization services.
DWD’s fully automatic MOSMIX product optimizes and interprets the forecast calculations of the NWP models ICON (DWD) and IFS (ECMWF), combines these and calculates statistically optimized weather forecasts in terms of point forecasts (PFCs). Thus, statistically corrected, updated forecasts for the next ten days are calculated for about 5400 locations around the world. Most forecasting locations are spread over Germany and Europe. MOSMIX forecasts (PFCs) include nearly all common meteorological parameters measured by weather stations. For further information please refer to: [in German: https://www.dwd.de/DE/leistungen/met_verfahren_mosmix/met_verfahren_mosmix.html ] [in English: https://www.dwd.de/EN/ourservices/met_application_mosmix/met_application_mosmix.html ]
Hinweis: Seit Dezember 2o24 erfasst der LGV die AFIS/ALKIS/ATKIS Daten bundeseinheitlich in der AdV-Referenzversion 7.1 im AFIS-ALKIS-ATKIS-Anwendungsschemas (AAA-AS) Version 7.1.2. Bei Fragen zu inhaltlichen Veränderungen wenden Sie sich an das Funktionspostfach: geobasisdaten@gv.hamburg.de Das Digitale Basis-Landschaftsmodell (Basis-DLM) orientiert sich am Basismaßstab 1: 25 000. Es wird für alle Objekte eine Lagegenauigkeit von ± 3 m angestrebt. Es hat eine Informationstiefe, die über die Darstellung der Digitalen Stadtkarte von Hamburg (1: 20 000) hinausgeht. Der Inhalt und die Modellierung der Landschaft des Basis-DLM sind im ATKIS®-Objektartenkatalog (ATKIS®-OK Basis-DLM) beschrieben. Die Erfassung der Objektarten, Namen, Attribute und Referenzen erfolgte in drei aufeinander folgenden Realisierungsstufen, die im ATKIS®-OK Basis-DLM ausgewiesen sind. In Hamburg stehen die Realisierungsstufen für die gesamte Landesfläche seit 2007 aktuell zur Verfügung. Seit Oktober 2009 wird das Basis-DLM im bundeseinheitlichen AAA-Modell geführt. Die Objektarten sind ATKIS-OK enthalten (siehe Verweis). Besonders geeignet als geometrische und semantische Bezugsgrundlage für den Aufbau von Geoinformationssystemen und zur Verknüpfung mit raumbezogenen fachspezifischen Daten für Fachinformationssysteme, zur rechnergestützten Verschneidung und Analyse mit thematischen Informationen, für Raumplanungen aller Art und zur Ableitung von topographischen und thematischen Karten. Anwendungsgebiete sind alle Aufgabenbereiche, für deren Fragestellungen ein Raumbezug erforderlich ist, unter anderem Energie-, Forst- und Landwirtschaft, Verwaltung, Demographie, Wohnungswesen, Landnutzungs-, Regional- und Streckenplanung, Straßenbau und Bewirtschaftung, Facility Management, Verkehrsnavigation und Flottenmanagement, Transport, Bergbau, Gewässerkunde und Wasserwirtschaft, Ökologie, Umweltschutz, Militär, Geologie und Geodäsie, aber auch Kultur, Erholung und Freizeit sowie Kommunikation.
DWD’s fully automatic MOSMIX product optimizes and interprets the forecast calculations of the NWP models ICON (DWD) and IFS (ECMWF), combines these and calculates statistically optimized weather forecasts in terms of point forecasts (PFCs). Thus, statistically corrected, updated forecasts for the next ten days are calculated for about 5400 locations around the world. Most forecasting locations are spread over Germany and Europe. MOSMIX forecasts (PFCs) include nearly all common meteorological parameters measured by weather stations. For further information please refer to: [in German: https://www.dwd.de/DE/leistungen/met_verfahren_mosmix/met_verfahren_mosmix.html ] [in English: https://www.dwd.de/EN/ourservices/met_application_mosmix/met_application_mosmix.html ]
Water Vapour (H2O) concentration (globally) as derived from Sentinel-5P/TROPOMI observations. H2O is the most abundant greenhouse gas in the atmosphere. In addition it is one of the most powerful drivers for weather phenomena in the troposphere. Daily observations are binned onto a regular latitude-longitude grid. The TROPOMI instrument aboard the SENTINEL-5P space craft is a nadir-viewing, imaging spectrometer covering wavelength bands between the ultraviolet and the shortwave infra-red. TROPOMI's purpose is to measure atmospheric properties and constituents. It is contributing to monitoring air quality and providing critical information to services and decision makers. The instrument uses passive remote sensing techniques by measuring the Top Of Atmosphere (TOA) solar radiation reflected by and radiated from the earth and its atmosphere. The four spectrometers of TROPOMI cover the ultraviolet (UV), visible (VIS), Near Infra-Red (NIR) and Short Wavelength Infra-Red (SWIR) domains of the electromagnetic spectrum, allowing operational retrieval of the following trace gas constituents: Ozone (O3), Nitrogen Dioxide (NO2), Sulfur Dioxide (SO2), Water Vapour (H2O), Carbon Monoxide (CO) and Methane (CH4). Within the INPULS project, innovative algorithms and processors for the generation of Level 3 and Level 4 products, improved data discovery and access technologies as well as server-side analytics for the users are developed.
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