烟灰
炭黑
烧焦
辐射传输
吸收(声学)
碳纤维
环境科学
环境化学
化学
分析化学(期刊)
材料科学
大气科学
计算物理学
燃烧
光学
物理
有机化学
复合材料
天然橡胶
复合数
作者
Huikun Liu,Qiyuan Wang,Jie Tian,Jin Wang,Ruixia Tian,Yong Zhang,Qian Zhang,Yonggang Xue,Hongmei Xu,Weikang Ran,Hui Su,Yongming Han,Junji Cao
摘要
Abstract Optical properties of elemental carbon (EC) are critical for climate modeling due to its strong light absorption. Elemental carbon consists of char‐EC and soot‐EC, which differ in mass absorption efficiency (MAE). However, the MAEs of these forms remain underexplored primarily due to the limited methods available for measurement, limiting the accuracy of EC climate impact assessments and leading distortions of EC radiative effect in the temporal and spatial distribution. In this study, we derived MAEs for char‐EC and soot‐EC using combined modeling methods based on observational data, revealing key differences. Soot‐EC generally has higher MAEs than char‐EC, except from biomass burning. Meteorological factors, such as relative humidity, also influence the MAEs of char‐EC and soot‐EC differently. The differences in sources and aging process lead to changes in the mass concentration and MAE of char‐EC and soot‐EC over time. Ignoring these differences can lead to discrepancies in the radiative effect from −9.1% to 18.7%. This study underscores the importance of considering the char‐EC and soot‐EC in accurate EC radiative effect estimates, and implies that optimizing the management of different black carbon emission sources would mitigate global warming to varying extents due to the divergence of the char/soot emission ratio and their MAE.
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