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A new numerical method for the solution of an internally mixed spatially homogeneous sectional model for aerosol nucleation and condensation is proposed.
Spectral radiation-transport model for aerosol species.
Currently, NICAM is implemented with a global 3D aerosol transport-radiation model, the Spectral Radiation-Transport Model for Aerosol Species (SPRINTARS) (described fully in Takemura et al. [2000], [2002], [2005], [2009]; Goto et al. [2011a]).
The first model uses an online dynamic core of the nonhydrostatic icosahedron atmospheric model (NICAM; Tomita and Satoh 2004; Satoh et al. 2008) coupled with the spectral radiation-transport model for aerosol species (SPRINTARS; Takemura et al. 2000; Dai et al. 2014); we will refer to this as the N-model.
So far, this interface has been employed in the framework connecting global-scale simulations using the spectral radiation transport model for aerosol species (SPRINTARS; e.g., Takemura et al. 2000) with regional-scale simulations using the Japan Meteorological Agency Non-Hydrostatic Model (JMA NHM; Saito et al. 2006) coupled with SBM (IG08).
Therefore, an animal model for aerosol exposure to MPXV is needed to test medical countermeasures.
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Furthermore, the experimental results were compared to theoretical models for aerosol formation processes.
A model for titania aerosol dynamics is developed accounting for the simultaneous gas phase and particle phase (surface) oxidation rate of TiCl4.
A mouse model of aerosol exposure and infection for three organisms was examined using this technique.
Rose, D. et al. Cloud condensation nuclei in polluted air and biomass burning smoke near the mega-city Guangzhou, China Part 1: Size-resolved measurements and implications for the modeling of aerosol particle hygroscopicity and CCN activity.
The data were found agree well with an existing semi-empirical model for porous foam aerosol penetration.
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