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Global tropospheric halogen (Cl, Br, I) chemistry and its impact on oxidants

对流层 化学 臭氧 卤素 大气化学 对流层臭氧 激进的 大气科学 混合比 氮氧化物 化学输运模型 光化学 燃烧 物理化学 有机化学 地质学 烷基
作者
Xuan Wang,Daniel J. Jacob,William B. Downs,Shumenghui Zhai,Lei Zhu,Viral Shah,Christopher D. Holmes,Tomás Sherwen,Becky Alexander,M. J. Evans,Sebastian D. Eastham,J. A. Neuman,P. R. Veres,Theodore K. Koenig,Rainer Volkamer,L. G. Huey,Thomas J. Bannan,Carl J. Percival,Hochang B. Lee,Joel A. Thornton
出处
期刊:Atmospheric Chemistry and Physics 卷期号:21 (18): 13973-13996 被引量:70
标识
DOI:10.5194/acp-21-13973-2021
摘要

Abstract. We present an updated mechanism for tropospheric halogen (Cl + Br + I) chemistry in the GEOS-Chem global atmospheric chemical transport model and apply it to investigate halogen radical cycling and implications for tropospheric oxidants. Improved representation of HOBr heterogeneous chemistry and its pH dependence in our simulation leads to less efficient recycling and mobilization of bromine radicals and enables the model to include mechanistic sea salt aerosol debromination without generating excessive BrO. The resulting global mean tropospheric BrO mixing ratio is 0.19 ppt (parts per trillion), lower than previous versions of GEOS-Chem. Model BrO shows variable consistency and biases in comparison to surface and aircraft observations in marine air, which are often near or below the detection limit. The model underestimates the daytime measurements of Cl2 and BrCl from the ATom aircraft campaign over the Pacific and Atlantic, which if correct would imply a very large missing primary source of chlorine radicals. Model IO is highest in the marine boundary layer and uniform in the free troposphere, with a global mean tropospheric mixing ratio of 0.08 ppt, and shows consistency with surface and aircraft observations. The modeled global mean tropospheric concentration of Cl atoms is 630 cm−3, contributing 0.8 % of the global oxidation of methane, 14 % of ethane, 8 % of propane, and 7 % of higher alkanes. Halogen chemistry decreases the global tropospheric burden of ozone by 11 %, NOx by 6 %, and OH by 4 %. Most of the ozone decrease is driven by iodine-catalyzed loss. The resulting GEOS-Chem ozone simulation is unbiased in the Southern Hemisphere but too low in the Northern Hemisphere.
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