Constraining nucleation, condensation, and chemistry in oxidation flow reactors using size-distribution measurements and aerosol microphysical modeling

Oxidation flow reactors (OFRs) allow the concentration of a given atmospheric oxidant to be increased beyond ambient levels in order to study secondary organic aerosol (SOA) formation and aging over varying periods of equivalent aging by that oxidant. Previous studies have used these reactors to determine the bulk OA mass and chemical evolution. To our knowledge, no OFR study has focused on the interpretation of the evolving aerosol size distributions. In this study, we use size-distribution measurements of the OFR and an aerosol microphysics model to learn about size-dependent processes in the OFR. Specifically, we use OFR exposures between 0.09 and 0.9 equivalent days of OH aging from the 2011 BEACHON-RoMBAS and GoAmazon2014/5 field campaigns. We use simulations in the TOMAS (TwO-Moment Aerosol Sectional) microphysics box model to constrain the following parameters in the OFR: (1) the rate constant of gas-phase functionalization reactions of organic compounds with OH, (2) the rate constant of gas-phase fragmentation reactions of organic compounds with OH, (3) the reactive uptake coefficient for heterogeneous fragmentation reactions with OH, (4) the nucleation rate constants for three different nucleation schemes, and (5) an effective accommodation coefficient that accounts for possible particle diffusion limitations of particles larger than 60 nm in diameter.

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Copyright 2018 Authors. This work is licensed under a Creative Commons Attribution 4.0 International license.


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Author Hodshire, Anna L.
Palm, Brett B.
Alexander, M. Lizabeth
Bian, Qijing
Campuzano-Jost, Pedro
Cross, Eben S.
Day, Douglas A.
de Sá, Suzane S.
Guenther, Alex B.
Hansel, Armin
Hunter, James F.
Jud, Werner
Karl, Thomas
Kim, Saewung
Kroll, Jesse H.
Park, Jeong-Hoo
Peng, Zhe
Seco, Roger
Smith, James N.
Jimenez, Jose L.
Pierce, Jeffrey R.
Publisher UCAR/NCAR - Library
Publication Date 2018-08-28T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Resource Version N/A
Topic Category geoscientificInformation
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Metadata Date 2023-08-18T18:11:46.541831
Metadata Record Identifier edu.ucar.opensky::articles:21913
Metadata Language eng; USA
Suggested Citation Hodshire, Anna L., Palm, Brett B., Alexander, M. Lizabeth, Bian, Qijing, Campuzano-Jost, Pedro, Cross, Eben S., Day, Douglas A., de Sá, Suzane S., Guenther, Alex B., Hansel, Armin, Hunter, James F., Jud, Werner, Karl, Thomas, Kim, Saewung, Kroll, Jesse H., Park, Jeong-Hoo, Peng, Zhe, Seco, Roger, Smith, James N., Jimenez, Jose L., Pierce, Jeffrey R.. (2018). Constraining nucleation, condensation, and chemistry in oxidation flow reactors using size-distribution measurements and aerosol microphysical modeling. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d77h1nfj. Accessed 28 June 2025.

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