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  4. Studying the impact of radioactive charging on the microphysical evolution and transport of radioactive aerosols with the TOMAS-RC v1 framework
 
research article

Studying the impact of radioactive charging on the microphysical evolution and transport of radioactive aerosols with the TOMAS-RC v1 framework

Vasilakos, P.
•
Kim, Y. Η.
•
Pierce, J. R.
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2018
Journal of Environmental Radioactivity

Radioactive charging can significantly impact the way radioactive aerosols behave, and as a result their lifetime, but such effects are neglected in predictive model studies of radioactive plumes. The objective of this work is to determine the influence of radioactive charging on the vertical transport of radioactive aerosols in the atmosphere, through its effect on coagulation and deposition, as well as quantifying the impact of this charging on aerosol lifetime. The TwO-Moment Aerosol Sectional (TOMAS) microphysical model was extended to account for radioactive charging effects on coagulation in a computationally efficient way. The expanded model, TOMAS-RC (TOMAS with Radioactive Charging effects), was then used to simulate the microphysical evolution and deposition of radioactive aerosol (containing the isotopes 131I and 137Cs) in a number of idealized atmospheric transport experiments. Results indicate that radioactive charging can facilitate or suppress coagulation of radioactive aerosols, thus influencing the deposition patterns and total amount of radioactive aerosol mass available for long-range transport. Sensitivity simulations to uncertain parameters affirm the potential importance of radioactive charging effects. An important finding is that charging of neutral, coarse mode aerosol from background radiation can reduce coagulation rates and extend its lifetime in the atmosphere by up to a factor of 2. © 2018

  • Details
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Type
research article
DOI
10.1016/j.jenvrad.2018.06.014
Author(s)
Vasilakos, P.
Kim, Y. Η.
Pierce, J. R.
Yiacoumi, S.
Tsouris, C.
Nenes, Athanasios  
Date Issued

2018

Publisher

Elsevier Ltd

Published in
Journal of Environmental Radioactivity
Volume

192

Start page

150

End page

159

Subjects

Aerosol lifetime

•

Coagulation

•

Deposition

•

Nuclear plant accidents

•

Radioactive charging

•

Aerosols

•

Coagulation

•

Deposition

•

Radioactivity

•

Uncertainty analysis

•

Atmospheric transport

•

Background radiation

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Computationally efficient

•

Long range transport

•

Microphysical models

•

Nuclear plant

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Sensitivity Simulation

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Uncertain parameters

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Atmospheric movements

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LAPI  
Available on Infoscience
October 15, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/148846
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