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    Dilution of Boundary Layer Cloud Condensation Nucleus Concentrations by Free Tropospheric Entrainment During Marine Cold Air Outbreaks

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    Name:
    Geophysical Research Letters - ...
    Size:
    3.380Mb
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    Description:
    Final Published Version
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    Author
    Tornow, F.
    Ackerman, A.S.
    Fridlind, A.M.
    Cairns, B.
    Crosbie, E.C.
    Kirschler, S.
    Moore, R.H.
    Painemal, D.
    Robinson, C.E.
    Seethala, C.
    Shook, M.A.
    Voigt, C.
    Winstead, E.L.
    Ziemba, L.D.
    Zuidema, P.
    Sorooshian, A.
    Show allShow less
    Affiliation
    Department of Chemical and Environmental Engineering, University of Arizona
    Department of Hydrology and Atmospheric Sciences, University of Arizona
    Issue Date
    2022
    
    Metadata
    Show full item record
    Publisher
    John Wiley and Sons Inc
    Citation
    Tornow, F., Ackerman, A. S., Fridlind, A. M., Cairns, B., Crosbie, E. C., Kirschler, S., Moore, R. H., Painemal, D., Robinson, C. E., Seethala, C., Shook, M. A., Voigt, C., Winstead, E. L., Ziemba, L. D., Zuidema, P., & Sorooshian, A. (2022). Dilution of Boundary Layer Cloud Condensation Nucleus Concentrations by Free Tropospheric Entrainment During Marine Cold Air Outbreaks. Geophysical Research Letters, 49(11).
    Journal
    Geophysical Research Letters
    Rights
    Copyright © 2022. American Geophysical Union. All Rights Reserved.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Recent aircraft measurements over the northwest Atlantic enable an investigation of how entrainment from the free troposphere (FT) impacts cloud condensation nucleus (CCN) concentrations in the marine boundary layer (MBL) during cold-air outbreaks (CAOs), motivated by the role of CCN in mediating transitions from closed to open-cell regimes. Observations compiled over eight flights indicate predominantly far lesser CCN concentrations in the FT than in the MBL. For one flight, a fetch-dependent MBL-mean CCN budget is compiled from estimates of sea-surface fluxes, entrainment of FT air, and hydrometeor collision-coalescence, based on in-situ and remote-sensing measurements. Results indicate a dominant role of FT entrainment in reducing MBL CCN concentrations, consistent with satellite-observed trends in droplet number concentration upwind of CAO cloud-regime transitions over the northwest Atlantic. Relatively scant CCN may widely be associated with FT dry intrusions, and should accelerate cloud-regime transitions where underlying MBL air is CCN-rich, thereby reducing regional albedo. © 2022. American Geophysical Union. All Rights Reserved.
    Note
    6 month embargo; first published: 31 May 2022
    ISSN
    0094-8276
    DOI
    10.1029/2022GL098444
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1029/2022GL098444
    Scopus Count
    Collections
    UA Faculty Publications

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