Atmospheric new particle formation: real and apparent growth of neutral and charged particles

In this study we have provided simple analytical formulae to estimate the growth rate of a nucleation mode due to self-coagulation and the apparent growth rate due to coagulation scavenging by larger particles. These formulae were used on a set of simulations covering a wide range of atmospheric con...

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Main Authors: J. Leppä, T. Anttila, V.-M. Kerminen, M. Kulmala, K. E. J. Lehtinen
Format: Article
Language:English
Published: Copernicus Publications 2011-05-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/11/4939/2011/acp-11-4939-2011.pdf
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author J. Leppä
T. Anttila
V.-M. Kerminen
M. Kulmala
K. E. J. Lehtinen
author_facet J. Leppä
T. Anttila
V.-M. Kerminen
M. Kulmala
K. E. J. Lehtinen
author_sort J. Leppä
collection DOAJ
description In this study we have provided simple analytical formulae to estimate the growth rate of a nucleation mode due to self-coagulation and the apparent growth rate due to coagulation scavenging by larger particles. These formulae were used on a set of simulations covering a wide range of atmospheric conditions. The modal growth rates were determined from the simulation results by summing the contribution of each process, by calculating the increase rate in the count mean diameter of the mode and by following the peak concentration of the mode. The results of these three methods were compared with each other and the means used to estimate the growth rate due to self-coagulation and coagulation scavenging were found to give accurate values. We also investigated the role of charged particles and electric interactions in the growth of a nucleation mode. Charged particles were found to increase the growth rate due to both self-coagulation and coagulation scavenging by a factor of ~1.5 to 2. In case of increased condensation onto charged particles, the total condensational growth rate of a nucleation mode may increase significantly in the very early steps of the growth. The analytical formulae provided by this paper were designed to provide the growth rates due to different processes from aerosol dynamic simulations, but the same principles can be used to determine the growth rates from measurement data.
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spelling doaj.art-8e408a8447434181933940f5752be0be2022-12-22T00:02:18ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242011-05-0111104939495510.5194/acp-11-4939-2011Atmospheric new particle formation: real and apparent growth of neutral and charged particlesJ. LeppäT. AnttilaV.-M. KerminenM. KulmalaK. E. J. LehtinenIn this study we have provided simple analytical formulae to estimate the growth rate of a nucleation mode due to self-coagulation and the apparent growth rate due to coagulation scavenging by larger particles. These formulae were used on a set of simulations covering a wide range of atmospheric conditions. The modal growth rates were determined from the simulation results by summing the contribution of each process, by calculating the increase rate in the count mean diameter of the mode and by following the peak concentration of the mode. The results of these three methods were compared with each other and the means used to estimate the growth rate due to self-coagulation and coagulation scavenging were found to give accurate values. We also investigated the role of charged particles and electric interactions in the growth of a nucleation mode. Charged particles were found to increase the growth rate due to both self-coagulation and coagulation scavenging by a factor of ~1.5 to 2. In case of increased condensation onto charged particles, the total condensational growth rate of a nucleation mode may increase significantly in the very early steps of the growth. The analytical formulae provided by this paper were designed to provide the growth rates due to different processes from aerosol dynamic simulations, but the same principles can be used to determine the growth rates from measurement data.http://www.atmos-chem-phys.net/11/4939/2011/acp-11-4939-2011.pdf
spellingShingle J. Leppä
T. Anttila
V.-M. Kerminen
M. Kulmala
K. E. J. Lehtinen
Atmospheric new particle formation: real and apparent growth of neutral and charged particles
Atmospheric Chemistry and Physics
title Atmospheric new particle formation: real and apparent growth of neutral and charged particles
title_full Atmospheric new particle formation: real and apparent growth of neutral and charged particles
title_fullStr Atmospheric new particle formation: real and apparent growth of neutral and charged particles
title_full_unstemmed Atmospheric new particle formation: real and apparent growth of neutral and charged particles
title_short Atmospheric new particle formation: real and apparent growth of neutral and charged particles
title_sort atmospheric new particle formation real and apparent growth of neutral and charged particles
url http://www.atmos-chem-phys.net/11/4939/2011/acp-11-4939-2011.pdf
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AT tanttila atmosphericnewparticleformationrealandapparentgrowthofneutralandchargedparticles
AT vmkerminen atmosphericnewparticleformationrealandapparentgrowthofneutralandchargedparticles
AT mkulmala atmosphericnewparticleformationrealandapparentgrowthofneutralandchargedparticles
AT kejlehtinen atmosphericnewparticleformationrealandapparentgrowthofneutralandchargedparticles