The Arctic Research of the Composition of the Troposphere from Aircraft and Satellites (ARCTAS) mission: design, execution, and first results

Миссия «Исследование состава тропосферы в Арктике с помощью самолетов и спутников» (ARCTAS): разработка, проведение и первые результаты
Daniel J. Jacob, J. H. Crawford, Hal Maring, A. D. Clarke, Jack E. Dibb, L. K. Emmons, R. A. Ferrare, C. A. Hostetler, P. B. Russell, H. B. Singh, Anne M. Thompson, Glenn E. Shaw, E. McCauley, J. R. Pederson, Jenny A. Fisher
2010-06-14

ARCTAS missionArctic atmospheric compositionaerosol radiative forcingboreal forest firessatellite observations
Abstract. The NASA Arctic Research of the Composition of the Troposphere from Aircraft and Satellites (ARCTAS) mission was conducted in two 3-week deployments based in Alaska (April 2008) and western Canada (June–July 2008). Its goal was to better understand the factors driving current changes in Arctic atmospheric composition and climate, including (1) influx of mid-latitude pollution, (2) boreal forest fires, (3) aerosol radiative forcing, and (4) chemical processes. The June–July deployment was preceded by one week of flights over California (ARCTAS-CARB) focused on (1) improving state emission inventories for greenhouse gases and aerosols, (2) providing observations to test and improve models of ozone and aerosol pollution. ARCTAS involved three aircraft: a DC-8 with a detailed chemical payload, a P-3 with an extensive aerosol and radiometric payload, and a B-200 with aerosol remote sensing instrumentation. The aircraft data augmented satellite observations of Arctic atmospheric composition, in particular from the NASA A-Train. The spring phase (ARCTAS-A) revealed pervasive Asian pollution throughout the Arctic as well as significant European pollution below 2 km. Unusually large Siberian fires in April 2008 caused high concentrations of carbonaceous aerosols and also affected ozone. Satellite observations of BrO column hotspots were found not to be related to Arctic boundary layer events but instead to tropopause depressions, suggesting the presence of elevated inorganic bromine (5–10 pptv) in the lower stratosphere. Fresh fire plumes from Canada and California sampled during the summer phase (ARCTAS-B) indicated low NOx emission factors from the fires, rapid conversion of NOx to PAN, no significant secondary aerosol production, and no significant ozone enhancements except when mixed with urban pollution.
1
Fresh Canadian and Californian fire plumes showed low NOx emissions, rapid NOx-to-PAN conversion, no significant secondary aerosol production, and ozone enhancement only after mixing with urban pollution.
2
Satellite BrO column hotspots were linked to tropopause depressions rather than Arctic boundary-layer events, indicating 5–10 pptv inorganic bromine in the lower stratosphere.
3
Spring observations revealed pervasive Asian pollution across the Arctic and substantial European pollution below 2 km.
4
The ARCTAS mission combined two Arctic aircraft deployments, satellite observations, and a California campaign to investigate pollution, fires, aerosol forcing, and chemical processes.
5
Unusually large Siberian fires produced high carbonaceous aerosol concentrations and influenced Arctic ozone during April 2008.

Arctic atmospheric composition and climate, including pollution, boreal fire emissions, aerosols, ozone, and chemical processes

Drivers and atmospheric effects of pollution transport, boreal fires, aerosol radiative forcing, and chemical processes across the Arctic troposphere

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Publication Date
2010-06-14
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Authors
Daniel J. Jacob
J. H. Crawford
Hal Maring
A. D. Clarke
Jack E. Dibb
L. K. Emmons
R. A. Ferrare
C. A. Hostetler
P. B. Russell
H. B. Singh
Anne M. Thompson
Glenn E. Shaw
E. McCauley
J. R. Pederson
Jenny A. Fisher
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