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Citation
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HERO ID
3024191
Reference Type
Journal Article
Title
The "dual-spot" Aethalometer: an improved measurement of aerosol black carbon with real-time loading compensation
Author(s)
Drinovec, L; Mocnik, G; Zotter, P; Prevot, ASH; Ruckstuhl, C; Coz, E; Rupakheti, M; Sciare, J; Mueller, T; Wiedensohler, A; Hansen, ADA
Year
2015
Is Peer Reviewed?
Yes
Journal
Atmospheric Measurement Techniques
ISSN:
1867-1381
EISSN:
1867-8548
Volume
8
Issue
5
Page Numbers
1965-1979
DOI
10.5194/amt-8-1965-2015
Web of Science Id
WOS:000355288900004
URL
https://www.atmos-meas-tech.net/8/1965/2015/
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Abstract
Aerosol black carbon is a unique primary tracer for combustion emissions. It affects the optical properties of the atmosphere and is recognized as the second most important anthropogenic forcing agent for climate change. It is the primary tracer for adverse health effects caused by air pollution. For the accurate determination of mass equivalent black carbon concentrations in the air and for source apportionment of the concentrations, optical measurements by filter-based absorption photometers must take into account the "filter loading effect". We present a new real-time loading effect compensation algorithm based on a two parallel spot measurement of optical absorption. This algorithm has been incorporated into the new Aethalometer model AE33. Intercomparison studies show excellent reproducibility of the AE33 measurements and very good agreement with post-processed data obtained using earlier Aethalometer models and other filter-based absorption photometers. The real-time loading effect compensation algorithm provides the high-quality data necessary for real-time source apportionment and for determination of the temporal variation of the compensation parameter k.
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NAAQS
•
ISA-PM (2019)
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