Escape rate: a Lagrangian measure of particle deposition from the atmosphere

Author:

Haszpra T.ORCID,Tél T.

Abstract

Abstract. Due to rising or descending air and due to gravity, aerosol particles carry out a complicated, chaotic motion and move downwards on average. We simulate the motion of aerosol particles with an atmospheric dispersion model called the Real Particle Lagrangian Trajectory (RePLaT) model, i.e., by solving Newton's equation and by taking into account the impacts of precipitation and turbulent diffusion where necessary, particularly in the planetary boundary layer. Particles reaching the surface are considered to have escaped from the atmosphere. The number of non-escaped particles decreases with time. The short-term and long-term decay are found to be exponential and are characterized by escape rates. The reciprocal values of the short-term and long-term escape rates provide estimates of the average residence time of typical particles, and of exceptional ones that become convected or remain in the free atmosphere for an extremely long time, respectively. The escape rates of particles of different sizes are determined and found to vary in a broad range. The increase is roughly exponential with the particle size. These investigations provide a Lagrangian foundation for the concept of deposition rates.

Funder

European Commission

Publisher

Copernicus GmbH

Subject

General Medicine

Reference31 articles.

1. D'Amours, R. and Malo, A.: A zeroth order Lagrangian Particle Dispersion Model MLDP0, Meteorological Service of Canada, Canadian Meteorological Centre, Environmental Emergency Response Section, internal report, 2004.

2. Dee, D. P., Uppala, S. M., Simmons, A. J., Berrisford, P., Poli, P., Kobayashi, S., Andrae, U., Balmaseda, M. A., Balsamo, G., Bauer, P., Bechtold, P., Beljaars, A. C. M., van de Berg, L., Bidlot, J., Bormann, N., Delsol, C., Dragani, R., Fuentes, M., Geer, A. J., Haimberger, L., Healy, S. B., Hersbach, H., Hólm, E. V., Isaksen, L., Kållberg, P., Köhler, M., Matricardi, M., McNally, A. P., Monge-Sanz, B. M., Morcrette, J.-J., Park, B.-K., Peubey, C., de Rosnay, P., Tavolato, C., Thépaut, J.-N., and Vitart, F.: The ERA-Interim Reanalysis: Configuration performance of the data assimilation system, Quart. J. Roy. Meteor. Soc., 137, 553–597, 2011.

3. Draxler, R. R. and Hess, G. D.: An overview of the HYSPLIT_4 modeling system for trajectories, dispersion and deposition, Australian Meteorological Magazine, 47, 295–308, 1998.

4. Draxler, R. R. and Hess, G. D.: Description of the HYSPLIT_4 modeling system, Air Resources Laboratory, Silver Spring, Maryland, NOAA Technical Memorandum ERL ARL-224, 2004.

5. Drótos, G. and Tél, T.: Chaotic saddles in a gravitational field: The case of inertial particles in finite domains, Phys. Rev. E, 83, 056203, https://doi.org/10.1103/PhysRevE.83.056203, 2011.

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