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Als unzerschnittene verkehrsarme Räume (UZVR) werden Räume definiert, die nicht durch technogene Elemente zerschnittenen werden. Die Polygondaten stammen aus der Landschaftsinformationssammlung (LINFOS) des Landesamtes für Natur, Umwelt und Klima Nordrhein-Westfalen (LANUK) und werden direkt aus dem Layer „uzvr_polygon“ des LINFOS-WFS bezogen: https://www.wfs.nrw.de/umwelt/linfos
Wasserschutzzonen sind Bereiche zum Schutz des Grundwassers und oberirdischer Gewässer. Sie sind in unterschiedliche Zonen eingeteilt, in denen besondere Ge- und Verbote gelten. Die Grenzen der festgesetzten Wasserschutzzonen wurden durch die Veröffentlichung im Amtsblatt bindend. Daneben gibt es geplante oder nicht festgesetzte Wasserschutzzonen sowie Sonderschutzzonen. Der Datensatz zeigt die Schutzzonen in den Kreisen Kleve, Wesel und Viersen sowie der kreisfreien Stadt Krefeld. Folgende Unterteilung wird dargestellt: - festgelegt: Zone I, II, IIIa, IIIa1, IIIa2, IIIb und IIIc - geplant (Abgrenzung nicht flurstücksscharf): Zone I, II, IIIa und IIIb - Sonderschutzzone
In addition to data collection by the logger units, nutrients are measured at 23 locations. Sampling occurs every 14 days at each site. Samples are taken from a water depth of approximately 0.5 meters, filtered (filter size 40 µm), and cooled for further transport. Furthermore, on the sampling day, salinity and temperature are measured at the respective locations using the WTW Cond 3110. After each tour, the water samples are frozen at -20 °C at GEOMAR for later analysis. Since 2020/2021, the analyses have been conducted by Research Area 3: Marine Ecology, FE Experimental Ecology. GEOMAR, Kiel. The samples are analyzed for the concentration of dissolved inorganic nutrients (total oxidized nitrogen, nitrite, ammonium, phosphate and silicate) by UV/VIS spectroscopy using a continuous flow analyzer (type QuAAtro 30; comp. SEAL Analytical, Hamburg, Germany, equipped with a SEAL XY-2 autosampler). Quality control for nutrient measurements is ensured by certified reference material (CRM) by KANSO TECHNOS CO, LTD, Osaka, Japan. Standard analysis methods developed by SEAL Analytical were followed.
Kompensationsflächenkataster Die unteren Naturschutzbehörden sind dazu verpflichtet, ein Ausgleichs- und Ersatzflächenkataster zu führen. Die Aufstellung des Katasters ermöglicht es, unter anderem einen graphischen Überblick über vorhandene Ausgleichs- und Ersatzflächen (Kompensationsflächen) zu erlangen. So können z.B. Doppelbelegungen ausgeschlossen werden, da die Fläche nun nicht mehr für andere Ausgleichs- und Ersatzflächenmaßnahmen herangezogen werden kann. Außerdem spielt die Erfassung solcher Flächen bei Planungen eine wichtige Rolle: Es werden Standortentscheidungen für Eingriffe, aber auch für Ausgleich beeinflusst. Gem. § 34 Abs. 1 Landesnaturschutzgesetz NRW (LNatSchG NRW) werden jedoch nur Flächen aufgenommen, die größer als 500 m² sind. Im Rahmen des Ausgleichs- und Ersatzflächenkataster sind auch die nach § 34 Absatz 5 des Bundesnaturschutzgesetzes durchgeführten Maßnahmen zur Sicherung des Zusammenhangs des Netzes Natura 2000 (Kohärenzsicherungsmaßnahmen), die nach § 44 Absatz 5 des Bundesnaturschutzgesetzes durchgeführten vorgezogenen Ausgleichsmaßnahmen (CEF-Maßnahmen) sowie die nach § 53 durchgeführten Schadensbegrenzungsmaßnahmen gesondert auszuweisen. CEF-Maßnahme - CEF-Maßnahmen (continuous ecological functionality-measures), auch vorgezogene Ausgleichsmaßnahmen genannt, sind Maßnahmen des Artenschutzes, die vor geplanten oder notwendigen Eingriffen stattfinden müssen. Sie sollen eine ökologisch-funktionale Kontinuität betroffener Tierarten oder Populationen sichern. Ersatzaufforstung – Ersatzaufforstungen sind Kompensationsmaßnahmen, bei denen Wald, der an anderer Stelle verloren gegangen ist, wiederhergestellt wird. Ein Waldersatz nach dem Landesforstgesetz stellt auch eine ökologische Aufwertung dar. Kohärenzsicherungsmaßnahme - Als Kohärenzsicherungsmaßnahmen werden Maßnahmen bezeichnet, die der Erhaltung des Zusammenhangs des Europäischen Schutzgebietsnetzwerkes Natura 2000 (EU-Vogelschutzgebiete und FFH-Gebiete) dienen. Maßnahmen zur Kohärenzsicherung zielen darauf ab, für die betroffenen Lebensraumtypen und Arten an anderer Stelle eine Verbesserung ihres Erhaltungszustands zu erreichen. Kompensationsfläche - Für Eingriffe in Natur und Landschaft werden Ausgleichs- oder Ersatzmaßnahmen vorgeschrieben, die geeignet sind, die jeweiligen Eingriffe in den Naturhaushalt wiedergutzumachen. Die gesetzlichen Anforderungen an die Handhabung der Eingriffsregelung sind den §§ 13 – 18 Bundesnaturschutzgesetz sowie den §§ 30-34 des Landesnaturschutzgesetzes Nordrhein-Westfalen zu entnehmen. Für die Anforderungen der Eingriffsregelung im Rahmen der kommunalen Bauleitplanung gelten die Vorschriften des Baugesetzbuches. Ausgleichsmaßnahmen werden direkt am Ort des Eingriffs durchgeführt, bei Ersatzmaßnahmen werden die beeinträchtigten Funktionen des Naturhaushalts an anderer Stelle in dem betroffenen Naturraum in gleichwertiger Weise wiederhergestellt und das Landschaftsbild landschaftsgerecht neugestaltet. Ökokontofläche – In Ökokonten sind Kompensationsflächen zusammengefasst, auf denen bereits im Vorfeld von Eingriffen Maßnahmen zur ökologischen Kompensation durchgeführt und bewertet werden. Bei Bedarf können diese Flächen einem Eingriff zugeordnet und durch die Eingriffsverursachenden gegenfinanziert werden. Diese Flächen stehen nur intern zur Verfügung. Schadenbegrenzungsmaßnahme – Schadenbegrenzungsmaßnahmen nach § 53 LNatSchG sind Maßnahmen des Naturschutzes und der Landschaftspflege, die gewährleisten, dass erhebliche Auswirkungen auf ein Natura 2000-Gebiet ausbleiben. Sie werden im Rahmen einer FFH-Verträglichkeitsprüfung festgelegt. Diese Flächen stehen nur intern zur Verfügung.
The here presented data time-series are connected to the publication "Environmental parameters of shallow water habitats in the SW Baltic Sea" (Franz, M. et al. 2019b). Since 2019 a number of stations were added, and, hence, new time-series started. Every year a new dataset will be published including both, old and new stations. The following abstract is revised from Franz, M. et al. (2019b): The coastal areas of the Baltic Sea represent highly variable environments. In order to record the environmental conditions in shallow water habitats of the SW Baltic Sea, a monitoring program was established. The monitoring sites are located along the Baltic Sea coast of Schleswig-Holstein, Germany. Along the coast, 23 stations were established, where samplings for dissolved inorganic nutrient concentrations are conducted. Here, twice per month, water samples are collected in a water depth of 0.5 m. The samples are analysed for the concentration of dissolved inorganic nutrients (total oxidized nitrogen, nitrite, ammonia, phosphate and silicate) by UV/VIS spectroscopy using a continuous flow analyser (type QuAAtro 30; comp. SEAL Analytical, Hamburg, Germany. The system is equipped with a SEAL XY-2 autosampler). Quality control for nutrient measurements is ensured by certified reference material (CRM) by KANSO TECHNOS CO, LTD, Osaka, Japan. Additionally, at four shallow water stations (Booknis Eck, Bülk, Behrensdorf and Katharinenhof) temperature, salinity and dissolved oxygen are continuously logged at 2-3 m depth by self-contained data loggers. These are: (I) MiniDOT loggers (Precision Measurement Engineering; http://pme.com; ±10 µmol L-1 or ±5 % saturation) including antifouling copper option (copper plate and mesh) to measure dissolved oxygen concentration and (II) DST CT salinity & temperature loggers (Star-Oddi; http://star-oddi.com; ±1.5 mS cm-1) to record the conductivity. Both sensor types additionally record water temperature with an accuracy of ± 0.1 °C. The sampling interval was set to 30 minutes for all parameters. Another seven stations for continuous recordings of environmental parameters (again: temperature, salinity, dissolved oxygen) with the same two types of sensors were installed at 4-6 m depth in the context to the long-term monitoring project RegLocDiv (Regional-Local-Diversity) by M. Wahl (Franz, M. et al. 2019a) and included into this data set. These stations are at: Falshoeft, Booknis Eck, Schoenberg, Westermakesdorf, Staberhuk, Kellenhusen and Salzhaff (abandoned in 2023). Since 2021, in the context of implementing a reef monitoring to fulfil obligations by the EU Habitats Directive, step-by-step, eleven further stations were installed at reefs in the Schleswig-Holstein Baltic Sea. These are at: Platengrund (14 m depth) and Mittelgrund (8 m) (both since 2021), at Walkyriengrund (9 m), Brodtener Ufer (8 m), Außenschlei (11 m), Kalkgrund (8 m), Stollergrund (7.5 m) and Flueggesand (10 m) (all since 2022), as well as at Gabelsflach (10 m), Sagasbank (8.5 m) and Stabehuk (11.5 m) (all since 2023). Again, at all of these 11 stations, temperature, salinity and dissolved oxygen are continuously logged by self-contained data loggers: Conductivity (and temperature) is logged by HOBO® Salt Water Conductivity/Salinity Data Logger (Onset Computer Corporation, Bourne, MA, USA; https://www.onsetcomp.com) using the U2X protective housing to prevent fouling on the sensors. The same MiniDOT loggers (Precision Measurement Engineering) as at the above mentioned more shallow stations (including antifouling copper plate and mesh) are used to measure dissolved oxygen concentration. Dissolved oxygen concentration data measured by the MiniDOT loggers are corrected for a depth of 5 m (or 2,5 m on the shallow stations) using the software provided by the manufacturer. Additionally, a manual compensation for salinity was calculated (see details in Franz, M. et al. 2019b). Quality control was carried out by spike and gradient tests, following recommendations of SeaDataNet quality control procedures (see https://seadatanet.org/Standards/Data-Quality-Control). All data values were flagged according to applied quality checks using the following flags: 1 = Pass, 2 = Suspect, 3 = Fail, 4 = Visually suspect, 5 = Salinity compensation fail (further explanations can be found in Franz, M. et al. 2019b). The project is funded by the LfU (Landesamt für Umwelt, Schleswig-Holstein, Germany). Main responsible persons are C. Hiebenthal, C. Lieberum, F. Weinberger and R. Karez. Responsible for the nutrient analysis: N. Stärck; Responsible for taking the water samples: C. Lieberum and D. Bürger.
In addition to data collection by the logger units, nutrients are measured at 23 locations. Sampling occurs every 14 days at each site. Samples are taken from a water depth of approximately 0.5 meters, filtered (filter size 40 µm), and cooled for further transport. Furthermore, on the sampling day, salinity and temperature are measured at the respective locations using the WTW Cond 3110. After each tour, the water samples are frozen at -20 °C at GEOMAR for later analysis. Since 2020/2021, the analyses have been conducted by Research Area 3: Marine Ecology, FE Experimental Ecology. GEOMAR, Kiel. The samples are analyzed for the concentration of dissolved inorganic nutrients (total oxidized nitrogen, nitrite, ammonium, phosphate and silicate) by UV/VIS spectroscopy using a continuous flow analyzer (type QuAAtro 30; comp. SEAL Analytical, Hamburg, Germany, equipped with a SEAL XY-2 autosampler). Quality control for nutrient measurements is ensured by certified reference material (CRM) by KANSO TECHNOS CO, LTD, Osaka, Japan. Standard analysis methods developed by SEAL Analytical were followed.
In addition to data collection by the logger units, nutrients are measured at 23 locations. Sampling occurs every 14 days at each site. Samples are taken from a water depth of approximately 0.5 meters, filtered (filter size 40 µm), and cooled for further transport. Furthermore, on the sampling day, salinity and temperature are measured at the respective locations using the WTW Cond 3110. After each tour, the water samples are frozen at -20 °C at GEOMAR for later analysis. Since 2020/2021, the analyses have been conducted by Research Area 3: Marine Ecology, FE Experimental Ecology. GEOMAR, Kiel. The samples are analyzed for the concentration of dissolved inorganic nutrients (total oxidized nitrogen, nitrite, ammonium, phosphate and silicate) by UV/VIS spectroscopy using a continuous flow analyzer (type QuAAtro 30; comp. SEAL Analytical, Hamburg, Germany, equipped with a SEAL XY-2 autosampler). Quality control for nutrient measurements is ensured by certified reference material (CRM) by KANSO TECHNOS CO, LTD, Osaka, Japan. Standard analysis methods developed by SEAL Analytical were followed.
In addition to data collection by the logger units, nutrients are measured at 23 locations. Sampling occurs every 14 days at each site. Samples are taken from a water depth of approximately 0.5 meters, filtered (filter size 40 µm), and cooled for further transport. Furthermore, on the sampling day, salinity and temperature are measured at the respective locations using the WTW Cond 3110. After each tour, the water samples are frozen at -20 °C at GEOMAR for later analysis. Since 2020/2021, the analyses have been conducted by Research Area 3: Marine Ecology, FE Experimental Ecology. GEOMAR, Kiel. The samples are analyzed for the concentration of dissolved inorganic nutrients (total oxidized nitrogen, nitrite, ammonium, phosphate and silicate) by UV/VIS spectroscopy using a continuous flow analyzer (type QuAAtro 30; comp. SEAL Analytical, Hamburg, Germany, equipped with a SEAL XY-2 autosampler). Quality control for nutrient measurements is ensured by certified reference material (CRM) by KANSO TECHNOS CO, LTD, Osaka, Japan. Standard analysis methods developed by SEAL Analytical were followed.
Additionally, at four shallow water stations (Booknis Eck, Buelk, Behrensdorf and Katharinenhof) temperature, salinity and dissolved oxygen are continuously logged at 2-3 m depth by self-contained data loggers. These are: (I) MiniDOT loggers (Precision Measurement Engineering; http://pme.com; ±10 µmol L-1 or ±5 % saturation) including copper antifouling option (copper plate and mesh) to measure dissolved oxygen concentration and (II) DST CT salinity & temperature loggers (Star-Oddi; http://star-oddi.com; ±1.5 mS cm-1) to record the conductivity. Both sensor types additionally record water temperature with an accuracy of ± 0.1 °C. The sampling interval was set to 30 minutes for all parameters. In context of the long-term monitoring project RegLocDiv (Regional-Local-Diversity) by M. Wahl (Franz, M. et al. 2019a), another seven stations were equipped with the same two types of sensors at 4-6 m depth to continuously record environmental parameters (again: temperature, salinity, dissolved oxygen) and included into this data set. These stations are at: Falshoeft, Booknis Eck, Schoenberg, Westermarkelsdorf, Staberhuk, Kellenhusen and Salzhaff (abandoned in 2023). Since 2021, in the context of implementing a reef monitoring to fulfil obligations by the EU Habitats Directive, step-by-step, eleven further stations were installed at reefs in the Schleswig-Holstein Baltic Sea. These are at: Platengrund (14 m depth) and Mittelgrund (8 m) (both since 2021), at Walkyriengrund (9 m), Brodtener Ufer (8 m), Außenschlei (11 m), Kalkgrund (8 m), Stollergrund (7.5 m) and Flueggesand (10 m) (all since 2022), as well as at Gabelsflach (10 m), Sagasbank (8.5 m) and Stabehuk (11.5 m) (all since 2023). Again, at all of these 11 stations, temperature, salinity and dissolved oxygen are continuously logged by self-contained data loggers: Conductivity (and temperature) is logged by HOBO® Salt Water Conductivity/Salinity Data Logger (Onset Computer Corporation, Bourne, MA, USA; https://www.onsetcomp.com) using the U2X protective housing to prevent fouling on the sensors. The same MiniDOT loggers (Precision Measurement Engineering) as at the above mentioned more shallow stations (including antifouling copper plate and mesh) are used to measure dissolved oxygen concentration. Dissolved oxygen concentration data measured by the MiniDOT loggers are corrected for a depth of 10 m (or 2,5 m on the shallow stations) using the software provided by the manufacturer. Additionally, a manual compensation for salinity was calculated (see details in Franz, M. et al. 2019b). Quality control was carried out by spike and gradient tests, following recommendations of SeaDataNet quality control procedures (see https://seadatanet.org/Standards/Data-Quality-Control). All data values were flagged according to applied quality checks using the following flags: 1 = Pass, 2 = Suspect, 3 = Fail, 4 = Visually suspect, 5 = Salinity compensation fail (further explanations can be found in Franz, M. et al. 2019b).
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