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DOI10.1175/JCLI-D-17-0300.1
Impact of Snow Grain Shape and Black Carbon-Snow Internal Mixing on Snow Optical Properties: Parameterizations for Climate Models
He, Cenlin1,2,3; Takano, Yoshi1,2; Liou, Kuo-Nan1,2; Yang, Ping4; Li, Qinbin1,2; Chen, Fei3
2017-12-01
发表期刊JOURNAL OF CLIMATE
ISSN0894-8755
EISSN1520-0442
出版年2017
卷号30期号:24
文章类型Article
语种英语
国家USA
英文摘要

A set of parameterizations is developed for spectral single-scattering properties of clean and black carbon (BC)-contaminated snow based on geometric-optics surface wave (GOS) computations, which explicitly resolves BC-snow internal mixing and various snow grain shapes. GOS calculations show that, compared with nonspherical grains, volume-equivalent snow spheres show up to 20% larger asymmetry factors and hence stronger forward scattering, particularly at wavelengths <1 mu m. In contrast, snow grain sizes have a rather small impact on the asymmetry factor at wavelengths <1 mu m, whereas size effects are important at longer wavelengths. The snow asymmetry factor is parameterized as a function of effective size, aspect ratio, and shape factor and shows excellent agreement with GOS calculations. According to GOS calculations, the single-scattering coalbedo of pure snow is predominantly affected by grain sizes, rather than grain shapes, with higher values for larger grains. The snow single-scattering coalbedo is parameterized in terms of the effective size that combines shape and size effects, with an accuracy of >99%. Based on GOS calculations, BC-snow internal mixing enhances the snow single-scattering coalbedo at wavelengths <1 mu m, but it does not alter the snow asymmetry factor. The BC-induced enhancement ratio of snow single-scattering coalbedo, independent of snow grain size and shape, is parameterized as a function of BC concentration with an accuracy of >99%. Overall, in addition to snow grain size, both BC-snow internal mixing and snow grain shape play critical roles in quantifying BC effects on snow optical properties. The present parameterizations can be conveniently applied to snow, land surface, and climate models including snowpack radiative transfer processes.


领域气候变化
收录类别SCI-E
WOS记录号WOS:000423492500013
WOS关键词NONSPHERICAL ICE PARTICLE ; LIGHT-ABSORPTION ; CIRRUS CLOUDS ; INDEPENDENT SPHERES ; SCATTERING ; ALBEDO ; SIZE ; REPRESENTATION ; COLLECTION ; RADIATION
WOS类目Meteorology & Atmospheric Sciences
WOS研究方向Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/19786
专题气候变化
作者单位1.Univ Calif Los Angeles, Dept Atmospher & Ocean Sci, Los Angeles, CA 90095 USA;
2.Univ Calif Los Angeles, Joint Inst Reg Earth Syst Sci & Engn, Los Angeles, CA 90095 USA;
3.Natl Ctr Atmospher Res, POB 3000, Boulder, CO 80307 USA;
4.Texas A&M, Dept Atmospher Sci, College Stn, TX USA
推荐引用方式
GB/T 7714
He, Cenlin,Takano, Yoshi,Liou, Kuo-Nan,et al. Impact of Snow Grain Shape and Black Carbon-Snow Internal Mixing on Snow Optical Properties: Parameterizations for Climate Models[J]. JOURNAL OF CLIMATE,2017,30(24).
APA He, Cenlin,Takano, Yoshi,Liou, Kuo-Nan,Yang, Ping,Li, Qinbin,&Chen, Fei.(2017).Impact of Snow Grain Shape and Black Carbon-Snow Internal Mixing on Snow Optical Properties: Parameterizations for Climate Models.JOURNAL OF CLIMATE,30(24).
MLA He, Cenlin,et al."Impact of Snow Grain Shape and Black Carbon-Snow Internal Mixing on Snow Optical Properties: Parameterizations for Climate Models".JOURNAL OF CLIMATE 30.24(2017).
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