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Transport and residence times of tropospheric aerosols inferred from a global three-dimensional simulation of Pb-210A global three-dimensional model is used to investigate the transport and tropospheric residence time of Pb-210, an aerosol tracer produced in the atmosphere by radioactive decay of Rn-222 emitted from soils. The model uses meteorological input with 4 deg x 5 deg horizontal resolution and 4-hour temporal resolution from the Goddard Institute for Space Studies general circulation model (GCM). It computes aerosol scavenging by convective precipitation as part of the wet convective mass transport operator in order to capture the coupling between vertical transport and rainout. Scavenging in convective precipitation accounts for 74% of the global Pb-210 sink in the model; scavenging in large-scale precipitation accounts for 12%, and scavenging in dry deposition accounts for 14%. The model captures 63% of the variance of yearly mean Pb-210 concentrations measured at 85 sites around the world with negligible mean bias, lending support to the computation of aerosol scavenging. There are, however, a number of regional and seasonal discrepancies that reflect in part anomalies in GCM precipitation. Computed residence times with respect to deposition for Pb-210 aerosol in the tropospheric column are about 5 days at southern midlatitudes and 10-15 days in the tropics; values at northern midlatitudes vary from about 5 days in winter to 10 days in summer. The residence time of Pb-210 produced in the lowest 0.5 km of atmosphere is on average four times shorter than that of Pb-210 produced in the upper atmosphere. Both model and observations indicate a weaker decrease of Pb-210 concentrations between the continental mixed layer and the free troposphere than is observed for total aerosol concentrations; an explanation is that Rn-222 is transported to high altitudes in wet convective updrafts, while aerosols and soluble precursors of aerosols are scavenged by precipitation in the updrafts. Thus Pb-210 is not simply a tracer of aerosols produced in the continental boundary layer, but also of aerosols derived from insoluble precursors emitted from the surface of continents. One may draw an analogy between Pb-210 and nitrate, whose precursor NO(sub x) is sparingly soluble, and explain in this manner the strong correlation observed between nitrate and Pb-210 concentrations over the oceans.
Document ID
19950039669
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Balkanski, Yves J.
(Harvard University Cambridge, MA, United States)
Jacob, Daniel J.
(Harvard University Cambridge, MA, United States)
Gardner, Geraldine M.
(Harvard University Cambridge, MA, United States)
Graustein, William C.
(Yale University New Haven, CT, United States)
Turekian, Karl K.
(Yale University New Haven, CT, United States)
Date Acquired
August 16, 2013
Publication Date
November 20, 1993
Publication Information
Publication: Journal of Geophysical Research
Volume: 98
Issue: D11
ISSN: 0148-0227
Subject Category
Environment Pollution
Accession Number
95A71268
Funding Number(s)
CONTRACT_GRANT: NSF ATM-90-12950
CONTRACT_GRANT: NSF ATM-86-13751
CONTRACT_GRANT: NSF ATM-89-22971
CONTRACT_GRANT: NAGW-2632
Distribution Limits
Public
Copyright
Other

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