Vertical distributions of aerosol optical properties during the spring 2016 ARIAs airborne campaign in the North China Plain
-
Published:2018-06-28
Issue:12
Volume:18
Page:8995-9010
-
ISSN:1680-7324
-
Container-title:Atmospheric Chemistry and Physics
-
language:en
-
Short-container-title:Atmos. Chem. Phys.
Author:
Wang Fei, Li ZhanqingORCID, Ren XinrongORCID, Jiang Qi, He HaoORCID, Dickerson Russell R.ORCID, Dong Xiaobo, Lv Feng
Abstract
Abstract. Vertical distributions of aerosol optical properties derived from
measurements made during 11 aircraft flights over the North China Plain (NCP)
in May–June 2016 during the Air Chemistry Research In Asia (ARIAs) were
analyzed. Aerosol optical data from in situ aircraft measurements show good
correlation with ground-based measurements. The regional variability of
aerosol optical profiles such as aerosol scattering and backscattering,
absorption, extinction, single scattering albedo (SSA), and the
Ångström exponent (α) are thoroughly
characterized for the first time over the NCP. The SSA at 550 nm showed a regional mean value of
0.85 ± 0.02 with moderate to strong absorption and the α ranged
from 0.49 to 2.53 (median 1.53), indicating both mineral dust and
accumulation-mode aerosols. Most of the aerosol particles were located in the lowest 2 km
of the atmosphere. We describe three typical planetary boundary layer (PBL)
scenarios and associated transport pathways as well as the correlation
between aerosol scattering coefficients and relative humidity (RH). Aerosol
scattering coefficients decreased slowly with height in the clean PBL
condition, but decreased sharply above the PBL under polluted conditions,
which showed a strong correlation (R2 ≥ 0.78) with ambient RH.
Back-trajectory analysis shows that clean air masses generally originated
from the distant northwestern part of China, while most of the polluted air
masses were from the heavily polluted interior and coastal areas near the
campaign region.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference84 articles.
1. Anderson, T. L. and Ogren, J. A.: Determining Aerosol Radiative Properties
Using the TSI 3563 Integrating Nephelometer, Aerosol Sci. Tech., 29, 57–69,
1998. 2. Anderson, T. L., Masonis, S. J., Covert, D. S., Ahlquist, N. C., Howell, S.
G., Clarke, A. D., and Mcnaughton, C. S.: Variability of aerosol optical
properties derived from in situ aircraft measurements during ACE-Asia, J.
Geophys. Res.-Atmos., 108, 8647, https://doi.org/10.1029/2002JD003247, 2003. 3. Anderson, T. L., Covert, D. S., Marshall, S. F., Laucks, M. L., Charlson, R.
J., Waggoner, A. P., Ogren, J. A., Caldow, R., Holm, R. L., and Quant, F. R.:
Performance Characteristics of a High-Sensitivity, Three-Wavelength, Total
Scatter/Backscatter Nephelometer, J. Atmos. Ocean. Tech., 13, 967–986, 2009. 4. Andreae, M. O. and Rosenfeld, D.: Aerosol–cloud–precipitation interactions.
Part 1. The nature and sources of cloud-active aerosols, Earth-Sci. Rev., 89,
13–41, 2008. 5. Babu, S. S., Nair, V. S., Gogoi, M. M., and Moorthy, K. K.: Seasonal
variation of vertical distribution of aerosol single scattering albedo over
Indian sub-continent: RAWEX aircraft observations, Atmos. Environ., 125,
312–323, 2016.
Cited by
28 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|