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Light absorption of black carbon aerosols strongly influenced by particle morphology distribution

Datos Bibliográficos

ID15545864
AutoresYu Wu (0000-0002-1537-5492, Chinese Academy of Sciences), Tianhai Cheng (0000-0001-7889-9579, Aerospace Information Research Institute, autor de correspondencia), Lijuan Zheng (0000-0001-5811-6354, China Centre for Resources Satellite Data and Application)
Año2020
Volumen15
Número9
Páginas094051-094051
Fecha de publicación2020-07-06
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/aba2ff
OpenAlexW3038991614
IdiomaEN
Citas recibidas1
Referencias citadas48

Atmospheric black carbon (BC) is the most important aerosol contributor to global warming. However, there is a lack of understanding about the climate impact of BC aerosols because of systematic discrepancies between model and observation estimates of light absorption enhancements (Eabs) in atmospheric processes after emissions, and such discrepancies are transferred directly into large uncertainties of aerosol radiative forcing assessments. In this study, we quantify Eabs of atmospheric BC aerosols with diverse particle morphology distributions using a multi-dimensional aerosol model. We show that current widely used Mie method may overestimate BC Eabs by ∼50% because variations in particle morphology are not considered. Although absorption calculation can be improved by including complex particle morphology and heterogeneity in composition, we find that neglect of the diverse particle morphology distributions in modeling may lead to 15% ∼ 30% relative deviations on Eabs estimations of BC aerosol ensembles. The results thus imply that particle morphology distribution should be included in models to accurately represent the radiative effects of BC aerosols

Aerosol · Atmospheric sciences · Carbon black · Climate change · Climate model · Climatology · Forcing (mathematics · Meteorology · Optics · Particle (ecology · Physics · Radiative forcing · Radiative transfer · Air Quality and Health Impacts · Atmospheric aerosols and clouds · Atmospheric chemistry and aerosols · Chemistry · Environmental Science · Geology · Oceanography

  • Microphysical complexity of black carbon particles restricts their warming potential

    Open Access•Xiaofeng Huang, Xiao-Feng Huang et al.•One Earth•2023

  • Global and regional climate changes due to black carbon

    Open Access•V Ramanathan, Gregory R Carmichael et al.•Nature Geoscience•2008

Obras citantes distintas1
Citas por año0,33
Intervalo de citas2023 - 2023 (1)
Velocidad de citaciónhistorical
Altamente citadoNo
Tipos de citaNeutras: 1
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