A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation

A new method for describing externally mixed particles, the Detailed Aerosol Mixing State (DAMS) representation, is presented in this study. This novel method classifies aerosols by both composition and size, using a user-specified mixing criterion to define boundaries between compositional populati...

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Main Authors: J. Lu, F. M. Bowman
Format: Article
Language:English
Published: Copernicus Publications 2010-04-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/10/4033/2010/acp-10-4033-2010.pdf
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spelling doaj-a0d6ab6d00d740dca236d8cf61cf699d2020-11-24T22:59:16ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242010-04-011084033404610.5194/acp-10-4033-2010A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulationJ. LuF. M. BowmanA new method for describing externally mixed particles, the Detailed Aerosol Mixing State (DAMS) representation, is presented in this study. This novel method classifies aerosols by both composition and size, using a user-specified mixing criterion to define boundaries between compositional populations. Interactions between aerosol mixing state, semivolatile partitioning, and coagulation are investigated with a Lagrangian box model that incorporates the DAMS approach. Model results predict that mixing state affects the amount and types of semivolatile organics that partition to available aerosol phases, causing external mixtures to produce a more size-varying composition than internal mixtures. Both coagulation and condensation contribute to the mixing of emitted particles, producing a collection of multiple compositionally distinct aerosol populations that exists somewhere between the extremes of a strictly external or internal mixture. The selection of mixing criteria has a significant impact on the size and type of individual populations that compose the modeled aerosol mixture. Computational demands for external mixture modeling are significant and can be controlled by limiting the number of aerosol populations used in the model. http://www.atmos-chem-phys.net/10/4033/2010/acp-10-4033-2010.pdf
collection DOAJ
language English
format Article
sources DOAJ
author J. Lu
F. M. Bowman
spellingShingle J. Lu
F. M. Bowman
A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
Atmospheric Chemistry and Physics
author_facet J. Lu
F. M. Bowman
author_sort J. Lu
title A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
title_short A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
title_full A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
title_fullStr A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
title_full_unstemmed A detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
title_sort detailed aerosol mixing state model for investigating interactions between mixing state, semivolatile partitioning, and coagulation
publisher Copernicus Publications
series Atmospheric Chemistry and Physics
issn 1680-7316
1680-7324
publishDate 2010-04-01
description A new method for describing externally mixed particles, the Detailed Aerosol Mixing State (DAMS) representation, is presented in this study. This novel method classifies aerosols by both composition and size, using a user-specified mixing criterion to define boundaries between compositional populations. Interactions between aerosol mixing state, semivolatile partitioning, and coagulation are investigated with a Lagrangian box model that incorporates the DAMS approach. Model results predict that mixing state affects the amount and types of semivolatile organics that partition to available aerosol phases, causing external mixtures to produce a more size-varying composition than internal mixtures. Both coagulation and condensation contribute to the mixing of emitted particles, producing a collection of multiple compositionally distinct aerosol populations that exists somewhere between the extremes of a strictly external or internal mixture. The selection of mixing criteria has a significant impact on the size and type of individual populations that compose the modeled aerosol mixture. Computational demands for external mixture modeling are significant and can be controlled by limiting the number of aerosol populations used in the model.
url http://www.atmos-chem-phys.net/10/4033/2010/acp-10-4033-2010.pdf
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