Articles | Volume 24, issue 2
https://doi.org/10.5194/acp-24-1429-2024
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
https://doi.org/10.5194/acp-24-1429-2024
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
An overview of the vertical structure of the atmospheric boundary layer in the central Arctic during MOSAiC
Dept. of Atmospheric and Oceanic Sciences, University of Colorado Boulder, Boulder, CO, USA
Cooperative Institute for Research in Environmental Sciences, University of Colorado Boulder, Boulder, CO, USA
National Snow and Ice Data Center, University of Colorado Boulder, Boulder, CO, USA
John J. Cassano
Dept. of Atmospheric and Oceanic Sciences, University of Colorado Boulder, Boulder, CO, USA
Cooperative Institute for Research in Environmental Sciences, University of Colorado Boulder, Boulder, CO, USA
National Snow and Ice Data Center, University of Colorado Boulder, Boulder, CO, USA
Sandro Dahlke
Department of Physics of the Atmosphere, Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research, Potsdam, Germany
Mckenzie Dice
Dept. of Atmospheric and Oceanic Sciences, University of Colorado Boulder, Boulder, CO, USA
Cooperative Institute for Research in Environmental Sciences, University of Colorado Boulder, Boulder, CO, USA
National Snow and Ice Data Center, University of Colorado Boulder, Boulder, CO, USA
Christopher J. Cox
NOAA Physical Sciences Laboratory, Boulder, CO, USA
Gijs de Boer
Cooperative Institute for Research in Environmental Sciences, University of Colorado Boulder, Boulder, CO, USA
NOAA Physical Sciences Laboratory, Boulder, CO, USA
Integrated Remote and In Situ Sensing, University of Colorado Boulder, Boulder, CO, USA
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Cited
9 citations as recorded by crossref.
- ALICENET – an Italian network of automated lidar ceilometers for four-dimensional aerosol monitoring: infrastructure, data processing, and applications A. Bellini et al. https://doi.org/10.5194/amt-17-6119-2024
- Observations of high-time-resolution and size-resolved aerosol chemical composition and microphysics in the central Arctic: implications for climate-relevant particle properties B. Heutte et al. https://doi.org/10.5194/acp-25-2207-2025
- Evaluation of the Coupled Arctic Forecast System’s representation of the Arctic atmospheric boundary layer vertical structure during MOSAiC G. Jozef et al. https://doi.org/10.1525/elementa.2023.00136
- Measurement report: Validation of multi-satellite remote sensing products and potential source apportionment of BrO and IO in the Arctic using ship-based DOAS Q. Zhang et al. https://doi.org/10.5194/acp-26-8387-2026
- Atmospheric Boundary Layer Stability in Urban Beijing: Insights from Meteorological Tower and Doppler Wind Lidar L. Wang et al. https://doi.org/10.3390/rs16224246
- Contribution of free tropospheric aerosols to Arctic low-level cloud droplets formation and longwave radiative forcing R. Pohorsky et al. https://doi.org/10.5194/acp-26-10331-2026
- Tethered balloon-borne measurements to characterise the evolution of the Arctic atmospheric boundary layer at the Villum Research Station H. Dorff et al. https://doi.org/10.5194/essd-18-2799-2026
- Forcing for varying boundary layer stability across Antarctica M. Dice et al. https://doi.org/10.5194/wcd-5-369-2024
- Annual cycle of surface-coupling effects on Arctic mixed-phase clouds during MOSAiC H. Griesche et al. https://doi.org/10.5194/acp-26-7141-2026
9 citations as recorded by crossref.
- ALICENET – an Italian network of automated lidar ceilometers for four-dimensional aerosol monitoring: infrastructure, data processing, and applications A. Bellini et al. https://doi.org/10.5194/amt-17-6119-2024
- Observations of high-time-resolution and size-resolved aerosol chemical composition and microphysics in the central Arctic: implications for climate-relevant particle properties B. Heutte et al. https://doi.org/10.5194/acp-25-2207-2025
- Evaluation of the Coupled Arctic Forecast System’s representation of the Arctic atmospheric boundary layer vertical structure during MOSAiC G. Jozef et al. https://doi.org/10.1525/elementa.2023.00136
- Measurement report: Validation of multi-satellite remote sensing products and potential source apportionment of BrO and IO in the Arctic using ship-based DOAS Q. Zhang et al. https://doi.org/10.5194/acp-26-8387-2026
- Atmospheric Boundary Layer Stability in Urban Beijing: Insights from Meteorological Tower and Doppler Wind Lidar L. Wang et al. https://doi.org/10.3390/rs16224246
- Contribution of free tropospheric aerosols to Arctic low-level cloud droplets formation and longwave radiative forcing R. Pohorsky et al. https://doi.org/10.5194/acp-26-10331-2026
- Tethered balloon-borne measurements to characterise the evolution of the Arctic atmospheric boundary layer at the Villum Research Station H. Dorff et al. https://doi.org/10.5194/essd-18-2799-2026
- Forcing for varying boundary layer stability across Antarctica M. Dice et al. https://doi.org/10.5194/wcd-5-369-2024
- Annual cycle of surface-coupling effects on Arctic mixed-phase clouds during MOSAiC H. Griesche et al. https://doi.org/10.5194/acp-26-7141-2026
Saved (final revised paper)
Latest update: 25 Sep 2026
Short summary
Observations collected during MOSAiC were used to identify the range in vertical structure and stability of the central Arctic lower atmosphere through a self-organizing map analysis. Characteristics of wind features (such as low-level jets) and atmospheric moisture features (such as clouds) were analyzed in the context of the varying vertical structure and stability. Thus, the results of this paper give an overview of the thermodynamic and kinematic features of the central Arctic atmosphere.
Observations collected during MOSAiC were used to identify the range in vertical structure and...
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