Interpreting the ultraviolet aerosol index observed with the OMI satellite instrument to understand absorption by organic aerosols: implications for atmospheric oxidation and direct radiative effects

被引:106
作者
Hammer, Melanie S. [1 ]
Martin, Randall V. [1 ,2 ]
van Donkelaar, Aaron [1 ]
Buchard, Virginie [3 ,4 ]
Torres, Omar [3 ]
Ridley, David A. [5 ]
Spurr, Robert J. D. [6 ]
机构
[1] Dalhousie Univ, Dept Phys & Atmospher Sci, Halifax, NS, Canada
[2] Harvard Smithsonian Ctr Astrophys, 60 Garden St, Cambridge, MA 02138 USA
[3] NASA, Goddard Space Flight Ctr, Greenbelt, MD USA
[4] Univ Space Res Assoc, GESTAR, Columbia, MD USA
[5] MIT, Dept Civil & Environm Engn, 77 Massachusetts Ave, Cambridge, MA 02139 USA
[6] RT Solut Inc, 9 Channing St, Cambridge, MA USA
关键词
COMPLEX REFRACTIVE-INDEXES; SINGLE SCATTERING ALBEDO; BROWN CARBON AEROSOL; LIGHT-ABSORPTION; BLACK CARBON; SPECTRAL DEPENDENCE; ANGSTROM EXPONENT; TROPOSPHERIC CHEMISTRY; GLOBAL DISTRIBUTION; PARTICULATE MATTER;
D O I
10.5194/acp-16-2507-2016
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Satellite observations of the ultraviolet aerosol index (UVAI) are sensitive to absorption of solar radiation by aerosols; this absorption affects photolysis frequencies and radiative forcing. We develop a global simulation of the UVAI using the 3-D chemical transport model GEOS-Chem coupled with the Vector Linearized Discrete Ordinate Radiative Transfer model (VLIDORT). The simulation is applied to interpret UVAI observations from the Ozone Monitoring Instrument (OMI) for the year 2007. Simulated and observed values are highly consistent in regions where mineral dust dominates the UVAI, but a large negative bias (0-.32 to -0.97) exists between simulated and observed values in biomass burning regions. We determine effective optical properties for absorbing organic aerosol, known as brown carbon (BrC), and implement them into GEOS-Chem to better represent observed UVAI values over biomass burning regions. The inclusion of absorbing BrC decreases the mean bias between simulated and OMI UVAI values from -0.57 to -0.09 over West Africa in January, from -0.32 to +0.0002 over South Asia in April, from -0.97 to -0.22 over southern Africa in July, and from -0.50 to +0.33 over South America in September. The spectral dependence of absorption after including BrC in the model is broadly consistent with reported observations for biomass burning aerosol, with absorbing ngstrm exponent (AAE) values ranging from 2.9 in the ultraviolet (UV) to 1.3 across the UV-Near IR spectrum. We assess the effect of the additional UV absorption by BrC on atmospheric photochemistry by examining tropospheric hydroxyl radical (OH) concentrations in GEOS-Chem. The inclusion of BrC decreases OH by up to 30% over South America in September, up to 20% over southern Africa in July, and up to 15% over other biomass burning regions. Global annual mean OH concentrations in GEOS-Chem decrease due to the presence of absorbing BrC, increasing the methyl chloroform lifetime from 5.62 to 5.68 years, thus reducing the bias against observed values. We calculate the direct radiative effect (DRE) of BrC using GEOS-Chem coupled with the radiative transfer model RRTMG (GC-RT). Treating organic aerosol as containing more strongly absorbing BrC changes the global annual mean all-sky top of atmosphere (TOA) DRE by +0.03 Wm(-2) and all-sky surface DRE by -0.08 Wm(-2). Regional changes of up to +0.3 Wm(-2) at TOA and down to -1.5 W m(-2) at the surface are found over major biomass burning regions.
引用
收藏
页码:2507 / 2523
页数:17
相关论文
共 89 条
[31]   Contrasting the direct radiative effect and direct radiative forcing of aerosols [J].
Heald, C. L. ;
Ridley, D. A. ;
Kroll, J. H. ;
Barrett, S. R. H. ;
Cady-Pereira, K. E. ;
Alvarado, M. J. ;
Holmes, C. D. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (11) :5513-5527
[32]   Global modeling of secondary organic aerosol formation from aromatic hydrocarbons: high- vs. low-yield pathways [J].
Henze, D. K. ;
Seinfeld, J. H. ;
Ng, N. L. ;
Kroll, J. H. ;
Fu, T. -M. ;
Jacob, D. J. ;
Heald, C. L. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2008, 8 (09) :2405-2420
[33]   Global secondary organic aerosol from isoprene oxidation [J].
Henze, Daven K. ;
Seinfeld, John H. .
GEOPHYSICAL RESEARCH LETTERS, 2006, 33 (09)
[34]   Global distribution of UV-absorbing aerosols from Nimbus 7/TOMS data [J].
Herman, JR ;
Bhartia, PK ;
Torres, O ;
Hsu, C ;
Seftor, C ;
Celarier, E .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D14) :16911-16922
[35]   Radiative forcing by long-lived greenhouse gases: Calculations with the AER radiative transfer models [J].
Iacono, Michael J. ;
Delamere, Jennifer S. ;
Mlawer, Eli J. ;
Shephard, Mark W. ;
Clough, Shepard A. ;
Collins, William D. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D13)
[36]   Studying the effects of aerosols on vertical photolysis rate coefficient and temperature profiles over an urban airshed [J].
Jacobson, MZ .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1998, 103 (D9) :10593-10604
[37]   Global distribution of sea salt aerosols: new constraints from in situ and remote sensing observations [J].
Jaegle, L. ;
Quinn, P. K. ;
Bates, T. S. ;
Alexander, B. ;
Lin, J. -T. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (07) :3137-3157
[38]   Satellite-based evidence of wavelength-dependent aerosol absorption in biomass burning smoke inferred from Ozone Monitoring Instrument [J].
Jethva, H. ;
Torres, O. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (20) :10541-10551
[39]  
Jo D., 2015, ATMOS CHEM PHYS DISC, V15, P27805
[40]   Contribution of organic carbon to wood smoke particulate matter absorption of solar radiation [J].
Kirchstetter, T. W. ;
Thatcher, T. L. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2012, 12 (14) :6067-6072