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Causes and importance of new particle formation in the present-day and preindustrial atmospheres

  • Hamish Gordon
  • , Jasper Kirkby
  • , Urs Baltensperger
  • , Federico Bianchi
  • , Martin Breitenlechner
  • , Joachim Curtius
  • , Antonio Dias
  • , Josef Dommen
  • , Neil M. Donahue
  • , Eimear M. Dunne
  • , Jonathan Duplissy
  • , Sebastian Ehrhart
  • , Richard C. Flagan
  • , Carla Frege
  • , Claudia Fuchs
  • , Armin Hansel
  • , Christopher R. Hoyle
  • , Markku Kulmala
  • , Andreas Kurten
  • , Katrianne Lehtipalo
  • Vladimir Makhmutov, Ugo Molteni, Matti P. Rissanen, Yuri Stozkhov, Jasmin Trostl, Georgios Tsagkogeorgas, Robert Wagner, Christina Williamson, Daniela Wimmer, Paul M. Winkler, Chao Yan, Ken S. Carslaw

Tutkimustuotos: ArtikkeliTieteellinenvertaisarvioitu

319 Sitaatiot (Scopus)

Abstrakti

New particle formation has been estimated to produce around half of cloud-forming particles in the present-day atmosphere, via gas-to-particle conversion. Here we assess the importance of new particle formation (NPF) for both the present-day and the preindustrial atmospheres. We use a global aerosol model with parametrizations of NPF from previously published CLOUD chamber experiments involving sulfuric acid, ammonia, organic molecules, and ions. We find that NPF produces around 67.2CCN0.2 at the level of low clouds in the preindustrial atmosphere (estimated uncertainty range 45-84 and 54estimated uncertainty range 38-66. Concerning causes, we find that the importance of biogenic volatile organic compounds (BVOCs) in NPF and CCN formation is greater than previously thought. Removing BVOCs and hence all secondary organic aerosol from our model reduces low-cloud-level CCN concentrations at 0.26day atmosphere and 41 we estimate that 40.2induced NPF, compared with 27 although we caution that the ion-induced fraction of NPF involving BVOCs is poorly measured at present. Our model suggests that the effect of changes in cosmic ray intensity on CCN is small and unlikely to be comparable to the effect of large variations in natural primary aerosol emissions.Plain Language Summary New particle formation in the atmosphere is the process by which gas molecules collide and stick together to form atmospheric aerosol particles. Aerosols act as seeds for cloud droplets, so the concentration of aerosols in the atmosphere affects the properties of clouds. It is important to understand how aerosols affect clouds because they reflect a lot of incoming solar radiation away from Earth's surface, so changes in cloud properties can affect the climate. Before the Industrial Revolution, aerosol concentrations were significantly lower than they are today. In this article, we show using global model simulations that new particle formation was a more important mechanism for aerosol production than it is now. We also study the importance of gases emitted by vegetation, and of atmospheric ions made by radon gas or cosmic rays, in preindustrial aerosol formation. We find that the contribution of ions and vegetation to new particle formation was also greater in the preindustrial period than it is today. However, the effect on particle formation of variations in ion concentration due to changes in the intensity of cosmic rays reaching Earth was small.
AlkuperäiskieliEnglanti
Sivut8739-8760
Sivumäärä22
JulkaisuJournal of Geophysical Research: Atmospheres
Vuosikerta122
Numero16
DOI - pysyväislinkit
TilaJulkaistu - 1 elok. 2017
Julkaistu ulkoisestiKyllä
OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

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