Articles | Volume 4, issue 3
https://doi.org/10.5194/amt-4-571-2011
https://doi.org/10.5194/amt-4-571-2011
Research article
 | 
18 Mar 2011
Research article |  | 18 Mar 2011

On transport phenomena and equilibration time scales in thermodenuders

R. Saleh, A. Shihadeh, and A. Khlystov

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Subject: Aerosols | Technique: In Situ Measurement | Topic: Instruments and Platforms
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Cited articles

An, W. J., Pathak, R. K., Lee, B. H., and Pandis, S. N.: Aerosol volatility measurement using an improved thermodenuder: {A}pplication to secondary organic aerosol, J. Aerosol Sci., 38, 305–314, 2007.
Bardouki, H., Liakakou, H., Economou, C., Sciare, J., Smolik, J., Zdimal, V., Eleftheriadis, K., Lazaridis, M., Dye, C., and Mihalopoulos, N.: Chemical composition of size-resolved atmospheric aerosols in the eastern {M}editerranean during summer and winter, Atmos. Environ., 37, 195–208, 2003.
Cappa, C. D.: A model of aerosol evaporation kinetics in a thermodenuder, Atmos. Meas. Tech., 3, 579–592, https://doi.org/10.5194/amt-3-579-2010, 2010.
Cappa, C. D. and Jimenez, J. L.: Quantitative estimates of the volatility of ambient organic aerosol, Atmos. Chem. Phys., 10, 5409–5424, https://doi.org/10.5194/acp-10-5409-2010, 2010.
Chow, J., Watson, J., Fujita, E., Lu, Z., Lawson, D., and Ashbaugh, L.: Temporal and spatial variations of {PM}2.5 and {PM}10 aerosol in the {S}outhern {C}alifornia {A}ir {Q}uality {S}tudy, Atmos. Environ., 28, 2061–2080, 1994.