globalchange  > 气候变化事实与影响
DOI: 10.1016/j.atmosenv.2017.01.033
Scopus记录号: 2-s2.0-85010392541
论文题名:
Variation of the vertical distribution of Nabro volcano aerosol layers in the stratosphere observed by LIDAR
作者: Noh Y; M; , Shin D; H; , M�ller D
刊名: Atmospheric Environment
ISSN: 0168-2563
EISSN: 1573-515X
出版年: 2017
卷: 154
起始页码: 1
结束页码: 8
语种: 英语
英文关键词: Depolarization ratio ; Lidar ; Nabro volcano ; Stratospheric aerosol ; Volcanic aerosol
Scopus关键词: Atmospheric aerosols ; Backscattering ; Depolarization ; Optical radar ; Sea level ; Troposphere ; Volcanoes ; Aerosol optical depths ; Backscatter coefficients ; Depolarization ratio ; Lower stratosphere ; Stratospheric aerosols ; Vertical distributions ; Volcanic aerosols ; Volcanic ash particles ; Aerosols ; advection ; backscatter ; lidar ; measurement method ; optical depth ; Raman spectroscopy ; stratosphere-troposphere interaction ; vertical distribution ; volcanic aerosol ; volcanic ash ; volcanic eruption ; volcanic gas ; aerosol ; Africa ; Article ; depolarization ; Eritrea ; gas ; Korea ; North Africa ; optical depth ; plume ; priority journal ; receptor potential ; stratosphere ; troposphere ; volcanic ash ; volcano ; Eritrea ; Eritrea ; Kwangju [South Korea] ; Nabro Volcano ; South Korea ; Southern Red Sea
Scopus学科分类: Environmental Science: Water Science and Technology ; Earth and Planetary Sciences: Earth-Surface Processes ; Environmental Science: Environmental Chemistry
英文摘要: We present results of the vertical distribution variation of volcanic aerosol layers in the upper troposphere and lower stratosphere. The data were taken with our multiwavelength aerosol Raman lidar at Gwangju (35.10� N, 126.53� E), Korea. The volcanic ash particles and gases were released around 12 June 2011 during the eruption of the Nabro volcano (13.37� N, 41.7� E) in Eritrea, east Africa. Forward trajectory computations show that the volcanic aerosols were advected from North Africa to East Asia. The first measurement of the aerosol layer over Korea was on 19 June 2011. The aerosol layers appeared between 15 km and 17 km height asl (above sea level). The maximum value of the aerosol layer of the particle backscatter coefficient (1.5 � 0.3 Mm−1sr−1) and the linear particle depolarization ratio at 532 nm (2.2%) were observed at 16.4 km height asl. We continuously probed the upper troposphere and lower stratosphere for this volcanic aerosol layer during the following 6 months, until December 2011. The volcanic aerosol layer showed a single-peak of the particle backscatter coefficient and a comparably narrow vertical thickness at our observation site at the beginning of our observation period (i.e. comparably soon after the initial eruption period). After that initial period the vertical distribution of the plume changed. Multiple peaks and a comparably broad geometrical thickness developed with progressing observation time. The vertical thickness of the volcanic aerosol layer expanded up to 10 km by 3 August 2011. The linear particle depolarization ratios were larger in the lower part of the aerosol layer than the upper part of the aerosol layer. We observed a strong variation of the AOD (aerosol optical depth) in the first two months of our lidar observations. After these two months the AOD gradually decreased with time from September to December 20111 and the maximum particle backscatter coefficients consistently decreased. The corresponding e-folding decay time of the layer AOD was 117 days. � 2017 Elsevier Ltd
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/82283
Appears in Collections:气候变化事实与影响

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作者单位: International Environmental Research Center, Gwangju Institute of Science and Technology (GIST), South Korea; National Institute of Environmental Research, Kyungseo-dong, Seo-gu, Incheon, South Korea; University of Hertfordshire, College Lane, Hatfield, United Kingdom

Recommended Citation:
Noh Y,M,, Shin D,et al. Variation of the vertical distribution of Nabro volcano aerosol layers in the stratosphere observed by LIDAR[J]. Atmospheric Environment,2017-01-01,154
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