Enhanced water vapor in Asian dust layer: Entrainment processes and implication for aerosol optical properties

The entrainment process of water vapor into the dust layer during Asian dust events and the effect of water vapor associated with the Asian dust layer (ADL) on aerosol hygroscopic properties are investigated. The entrainment processes of water vapor into the ADL is examined by using a PSU/NCAR MM5 t...

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Veröffentlicht in:Atmospheric environment (1994) 2006-04, Vol.40 (13), p.2409-2421
Hauptverfasser: Yoon, Soon-Chang, Kim, Sang-Woo, Kim, Jiyoung, Sohn, Byung-Ju, Jefferson, Anne, Choi, Suk-Jin, Cha, Dong-Hyun, Lee, Dong-Kyou, Anderson, Theodore L., Doherty, Sarah J., Weber, Rodney J.
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container_end_page 2421
container_issue 13
container_start_page 2409
container_title Atmospheric environment (1994)
container_volume 40
creator Yoon, Soon-Chang
Kim, Sang-Woo
Kim, Jiyoung
Sohn, Byung-Ju
Jefferson, Anne
Choi, Suk-Jin
Cha, Dong-Hyun
Lee, Dong-Kyou
Anderson, Theodore L.
Doherty, Sarah J.
Weber, Rodney J.
description The entrainment process of water vapor into the dust layer during Asian dust events and the effect of water vapor associated with the Asian dust layer (ADL) on aerosol hygroscopic properties are investigated. The entrainment processes of water vapor into the ADL is examined by using a PSU/NCAR MM5 together with the backward trajectory model, radiosonde data, and remotely sensed aerosol vertical distribution data. Two dust events in the spring of 1998 and 2001 are examined in detail. The results reveal that the water vapor mixing ratio (WVMR) derived by the MM5 fits in well with the WVMR observed by radiosonde, and is well coincident with the aerosol extinction coefficient ( σ ep) measured by the micro-pulse lidar. The temporal evolution of the vertical distributions of WVMR and σ ep exhibited similar features. On the basis of a well simulation of the enhanced water vapor within the dust layer by the MM5, we trace the dust storms to examine the entrainment mechanism. The enhancement of WVMR within the ADL was initiated over the mountainous areas. The relatively moist air mass in the well-developed mixing layer over the mountainous areas is advected upward from the boundary layer by an ascending motion. However, a large portion of the water vapor within the ADL is enhanced over the edge of a highland and the plains in China. This is well supported by the simulated WVMR and the wind vectors. Aircraft-based in situ measurements of the chemical and optical properties of aerosol enable a quantitative estimation of the effect of the enhanced WVMR on the aerosol hygroscopic properties. The submicron aerosol accompanied by the dust storm caused an increase of aerosol scattering through water uptakes during the transport. This increase could be explained by the chemical fact that water-soluble submicron pollution aerosols are enriched in the ADL.
doi_str_mv 10.1016/j.atmosenv.2005.12.018
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subjects Aerosol light scattering hygroscopic growth
Asian dust
Earth, ocean, space
Entrainment process of water vapor
Exact sciences and technology
External geophysics
Meteorology
Particles and aerosols
PSU/NCAR MM5
Water-soluble submicron pollution aerosols
title Enhanced water vapor in Asian dust layer: Entrainment processes and implication for aerosol optical properties
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