Estimation of sea spray aerosol surface area over the Southern Ocean using scattering measurements

Moore, K. A., Alexander, S. P., Humphries, R. S., Jensen, J. B., Protat, A., et al. (2022). Estimation of sea spray aerosol surface area over the Southern Ocean using scattering measurements. Journal of Geophysical Research: Atmospheres, doi:https://doi.org/10.1029/2022JD037009

Title Estimation of sea spray aerosol surface area over the Southern Ocean using scattering measurements
Genre Article
Author(s) K. A. Moore, S. P. Alexander, R. S. Humphries, Jørgen B. Jensen, A. Protat, John Michael Reeves, K. J. Sanchez, S. M. Kreidenweis, P. J. DeMott
Abstract This study focuses on methods to estimate dry marine aerosol surface area (SA) from bulk optical measurements. Aerosol SA is used in many models' ice nucleating particle (INP) parameterizations, as well as influencing particle light scattering, hygroscopic growth, and reactivity, but direct observations are scarce in the Southern Ocean (SO). Two campaigns jointly conducted in austral summer 2018 provided co-located measurements of aerosol SA from particle size distributions and lidar to evaluate SA estimation methods in this region. Mie theory calculations based on measured size distributions were used to test a proposed approximation for dry aerosol SA, which relies on estimating effective scattering efficiency (Q) as a function of angstrom ngstrom exponent (a). For distributions with dry a < 1, Q = 2 was found to be a good approximation within +/- 50%, but for distributions with dry a > 1, an assumption of Q = 3 as in some prior studies underestimates dry aerosol SA by a factor of 2 or more. We propose a new relationship between dry a and Q, which can be used for -0.2 < a < 2, and suggest a = 0.8 as the cutoff between primary and secondary marine aerosol-dominated distributions. Application of a published methodology to retrieve dry marine aerosol SA from lidar extinction profiles overestimated aerosol SA by a factor of 3-5 during these campaigns. Using Microtops aerosol optical thickness measurements, we derive alternative lidar conversion parameters from our observations, applicable to marine aerosol over the SO.
Publication Title Journal of Geophysical Research: Atmospheres
Publication Date Nov 27, 2022
Publisher's Version of Record https://doi.org/10.1029/2022JD037009
OpenSky Citable URL https://n2t.org/ark:/85065/d7kh0s77
OpenSky Listing View on OpenSky
EOL Affiliations EOLVISITORS, RAF

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