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PANGAEA.
Data Publisher for Earth & Environmental Science
Abstract:
During a 4-week measurement campaign (ISLAS2022) in March and April 2022, we collected a comprehensive dataset characterizing the atmospheric water vapour and precipitation isotope composition within weather systems in the European Arctic and sub-Arctic. Focusing on an area covering the Nordic Seas and Northern Scandinavia, stable water isotope measurements with cavity ring-down spectrometers (CRDS) were taken from a research aircraft stationed at Kiruna, Sweden; from a Research Vessel going from Tromsø to the western ice edge in Greenland, and from measurements at supersites at Andenes on the Lofoten archipelago, Abisko, and Kiruna. Water vapour and precipitation isotope measurements from different sites and platforms were complemented by additional instrumentation to characterize the atmospheric conditions. Advanced instrumentation included wind LIDAR, ground-based vertical-pointing rain radar, and aerosol measurements at Andenes, two-directional depolarising aerosol LIDAR and horizontal cloud RADAR on the aircraft. Controlled meteorological balloons were launched from Ny-Ålesund, Svalbard into cold-air outbreak conditions. Surface precipitation samples were collected from a surface network including Abisko, Andenes, Kiruna, Longyearbyen, Ny-Ålesund, Jan Mayen, Bjørnøya, Tarfala, Ålesund, and Bergen. Surface snow was repeatedly sampled along a detailed transect from Kiruna to Lofoten archipelago. Citizen science snow sampling contributed to distributed surface snow sampling in Northern Scandinavia. All stable water isotope measurements have been calibrated onto the VSMOW-SLAP scale. The data from the ISLAS2022 measurement campaign enables the comprehensive assessment of air mass transformation and water turnover during cold-air outbreak conditions using stable water isotopes as a constraint.
Keyword(s):
aerosols; ALOMAR; cavity ring-down spectroscopy; INPs; ISLAS; Norway; precipitation; profiles; stable water isotopes; water vapor
Related to:
Gjelsvik, Astrid Bragstad; David, Robert Oscar; Carlsen, Tim; Hellmuth, Franziska; Hofer, Stefan; McGraw, Zachary; Sodemann, Harald; Storelvmo, Trude (2025): Using a region-specific ice-nucleating particle parameterization improves the representation of Arctic clouds in a global climate model. Atmospheric Chemistry and Physics, 25(3), 1617-1637, https://doi.org/10.5194/acp-25-1617-2025
Sodemann, Harald; Thurnherr, Iris; Seidl, Andrew Walter; Dekhtyareva, Alena; Johannessen, Aina; Kähnert, Marvin; Steinslid, Mari B; Løklingholm, Sander; Hole, Lars Robert; Voss, Paul; Papritz, Lukas; Dütsch, Marina; David, Robert Oscar; Carlsen, Tim; Chandler, David M; Chazette, Patrick; Totems, Julien; Schwarzenboeck, Alfons; Hellmuth, Franziska; Delanoe, Julien; ISLAS2022 Team (2025): Coordinated observations of the water cycle of marine cold-air outbreaks in the European Arctic during the ISLAS 2022 field campaign. https://doi.org/10.5194/egusphere-egu24-14866
Funding:
European Research Council (ERC), grant/award no. 758005: Mixed-phase clouds and climate (MC2) – from process-level understanding to large-scale impacts
European Research Council (ERC), grant/award no. 773245: ISLAS: Isotopic links to atmospheric water's sources
Coverage:
Median Latitude: 68.930294 * Median Longitude: 16.441561 * South-bound Latitude: 43.541214 * West-bound Longitude: -19.120740 * North-bound Latitude: 78.937685 * East-bound Longitude: 35.590240
Date/Time Start: 2022-02-18T06:55:00 * Date/Time End: 2024-04-09T00:00:00
License:
Creative Commons Attribution 4.0 International (CC-BY-4.0) (License comes into effect after moratorium ends)
Size:
30 datasets

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Datasets listed in this bundled publication

  1. Sodemann, H; Seidl, AW (in review): Calibrated stable isotope measurements in water vapour at Abisko, Sweden during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997094
  2. Sodemann, H; Seidl, AW; Thurnherr, I (in review): Calibrated stable isotope measurements in water vapour at the ALOMAR mountain observatory at Andenes, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997095
  3. Sodemann, H; Seidl, AW; Thurnherr, I (in review): Lidar ceilometer measurements taken at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997110
  4. David, RO; Gjelsvik, AB; Hellmuth, F et al. (in review): INP (ice-nucleating particle) concentrations observed in air at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997445
  5. David, RO; Hellmuth, F; Gjelsvik, AB et al. (in review): INP (ice-nucleating particle) concentrations observed in precipitation at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997448
  6. Sodemann, H; Seidl, AW; Thurnherr, I (in review): Micro rain radar (MRR) measurements at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997111
  7. David, RO; Carlsen, T; Gjelsvik, AB et al. (in review): Size-resolved aerosol particle number concentrations observed in air at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997097
  8. Sodemann, H; Seidl, AW; Thurnherr, I (in review): Parsivel disdrometer measurements at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997099
  9. Sodemann, H; Carlsen, T; Flügge, M (in review): Meteorological tower data from Oksebåsen near the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997098
  10. Sodemann, H; Kahnert, M; Thurnherr, I et al. (in review): Quality-controlled and gap-filled Lagrangian atmospheric measurements from Controlled Meteorological Balloons launched at Ny-Ålesund during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997054
  11. Sodemann, H; Chandler, DM; Thurnherr, I et al. (in review): Calibrated stable water isotope measurements of precipitation, surface snow, and sea water in Northern Scandinavia during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997301
  12. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Calibrated stable isotope measurements in water vapour on the Norwegian Sea during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997444
  13. Thurnherr, I; Aemisegger, F; Sodemann, H et al. (in review): Calibrated stable isotope measurements in water vapour at Kiruna, Sweden during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997096
  14. Sodemann, H; Seidl, AW (in review): Radiosondes launched from Andenes, Bjørnøya, Ny-Ålesund, and Jan Mayen, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997318
  15. David, RO; Hellmuth, F; Gjelsvik, AB et al. (in review): INP (ice-nucleating particle) concentrations observed in surface snow along inland transects in Northern Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997456
  16. Sodemann, H; Seeling, A; Seidl, AW et al. (in review): Wind lidar vertical profiles taken at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997332
  17. Sodemann, H; Seeling, A; Seidl, AW et al. (in review): Range-height wind lidar measurements taken towards NW at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997460
  18. Sodemann, H; Seeling, A; Seidl, AW et al. (in review): Range-height wind lidar measurements taken towards N at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997461
  19. Sodemann, H; Seeling, A; Seidl, AW et al. (in review): Range-height wind lidar measurements taken towards NE at the coast of Andøya, Norway during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997462
  20. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight01 (2022-03-11) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997172
  21. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight02 (2022-03-22) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997174
  22. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight03 (2022-03-24) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997180
  23. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight04 (2022-03-24) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997181
  24. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight05 (2022-03-26) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997184
  25. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight06 (2022-03-26) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997185
  26. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight07 (2022-03-29) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997186
  27. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight08 (2022-03-30) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997187
  28. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight09 (2022-03-31) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997188
  29. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight10 (2022-04-03) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997195
  30. Sodemann, H; Dekhtyareva, A; Seidl, AW et al. (in review): Flight11 (2022-04-03) of ISLAS2022 during March and April 2022. https://doi.pangaea.de/10.1594/PANGAEA.997196