Changes to simulated global atmospheric composition resulting from recent revisions to isoprene oxidation chemistry

被引:15
作者
Khan, M. Anwar H. [1 ]
Schlich, Billie-Louise [1 ]
Jenkin, Michael E. [2 ]
Cooke, Michael C. [1 ,6 ]
Derwent, Richard G. [3 ]
Neu, Jessica L. [4 ]
Percival, Carl J. [4 ]
Shallcross, Dudley E. [1 ,5 ]
机构
[1] Univ Bristol, Biogeochem Res Ctr, Sch Chem, Bristol BS8 1TS, Avon, England
[2] Atmospher Chem Serv, Okehampton EX20 4QB, Devon, England
[3] Rdscientific, Newbury, Berks, England
[4] CALTECH, NASA, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
[5] Univ Western Cape, Dept Chem, Robert Sobukwe Rd, ZA-7375 Bellville, South Africa
[6] Met Off, Exeter, Devon, England
关键词
Isoprene chemistry; HOx recycling; Oxidation cycle; Atmospheric lifetime; Equatorial region; SECONDARY ORGANIC AEROSOL; CRIEGEE INTERMEDIATE REACTIONS; TROPICAL RAIN-FOREST; NONMETHANE HYDROCARBONS; NITROGEN-OXIDES; CRI MECHANISM; UNITED-STATES; EMISSIONS; MODEL; FORMALDEHYDE;
D O I
10.1016/j.atmosenv.2020.117914
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Recent revisions to our understanding of the oxidation chemistry of isoprene have been incorporated into a well-established global atmospheric chemistry and transport model, STOCHEM-CRI. These revisions have previously been shown to increase the production and recycling of HOx radicals at lower NOx levels characteristic of the remote troposphere. The main aim of this study is to assess the resultant broader changes to atmospheric composition due to the recent revisions to isoprene oxidation chemistry. The impact of the increased isoprene -related HOx recycling is found to be significant on the reduction of volatile organic compounds (VOCs) lifetime, e.g. a decrease in isoprene's tropospheric burden by-17%. The analysis of lifetime reduction of the potent greenhouse gas, methane, associated with the increased HOx recycling, suggests its significant lifetime reduction by similar to 5% in terms of the current literature. The revisions to the isoprene chemistry also reduce the amount of ozone (by up to 10%), but provide a significant increase in NO3 (by up to 30%) over equatorial forested regions, which can alter the oxidizing capacity of the troposphere. The calculated mixing ratios of formic acid are decreased which in turn leads to an increase in the inferred concentrations of Criegee intermediates due to reduced loss through reaction with formic acid (up to 80%) over the dominant isoprene emitting regions.
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页数:10
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共 87 条
  • [71] Seinfeld J. H., 2006, ATMOSPHERIC CHEM PHY
  • [72] Isoprene emission from plants
    Sharkey, TD
    Yeh, SS
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 2001, 52 : 407 - 436
  • [73] The reaction of Criegee intermediate CH2OO with water dimer: primary products and atmospheric impact
    Sheps, Leonid
    Rotavera, Brandon
    Eskola, Arkke J.
    Osborn, David L.
    Taatjes, Craig A.
    Au, Kendrew
    Shallcross, Dudley E.
    Khan, M. Anwar H.
    Percival, Carl J.
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2017, 19 (33) : 21970 - 21979
  • [74] Global data set of biogenic VOC emissions calculated by the MEGAN model over the last 30 years
    Sindelarova, K.
    Granier, C.
    Bouarar, I.
    Guenther, A.
    Tilmes, S.
    Stavrakou, T.
    Muller, J. -F.
    Kuhn, U.
    Stefani, P.
    Knorr, W.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (17) : 9317 - 9341
  • [75] Global annual methane emission rate derived from its current atmospheric mixing ratio and estimated lifetime
    Sonnemann, G. R.
    Grygalashvyly, M.
    [J]. ANNALES GEOPHYSICAE, 2014, 32 (03) : 277 - 283
  • [76] Product analysis of the OH oxidation of isoprene and 1,3-butadiene in the presence of NO
    Sprengnether, M
    Demerjian, KL
    Donahue, NM
    Anderson, JG
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2002, 107 (D15) : ACH8 - 1
  • [77] Global emissions of non-methane hydrocarbons deduced from SCIAMACHY formaldehyde columns through 2003-2006
    Stavrakou, T.
    Mueller, J.-F.
    De Smedt, I.
    Van Roozendael, M.
    van der Werf, G. R.
    Giglio, L.
    Guenther, A.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (11) : 3663 - 3679
  • [78] Multimodel ensemble simulations of present-day and near-future tropospheric ozone
    Stevenson, DS
    Dentener, FJ
    Schultz, MG
    Ellingsen, K
    van Noije, TPC
    Wild, O
    Zeng, G
    Amann, M
    Atherton, CS
    Bell, N
    Bergmann, DJ
    Bey, I
    Butler, T
    Cofala, J
    Collins, WJ
    Derwent, RG
    Doherty, RM
    Drevet, J
    Eskes, HJ
    Fiore, AM
    Gauss, M
    Hauglustaine, DA
    Horowitz, LW
    Isaksen, ISA
    Krol, MC
    Lamarque, JF
    Lawrence, MG
    Montanaro, V
    Müller, JF
    Pitari, G
    Prather, MJ
    Pyle, JA
    Rast, S
    Rodriguez, JM
    Sanderson, MG
    Savage, NH
    Shindell, DT
    Strahan, SE
    Sudo, K
    Szopa, S
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D8)
  • [79] Using a reduced Common Representative Intermediates (CRIv2-R5) mechanism to simulate tropospheric ozone in a 3-D Lagrangian chemistry transport model
    Utembe, S. R.
    Cooke, M. C.
    Archibald, A. T.
    Jenkin, M. E.
    Derwent, R. G.
    Shallcross, D. E.
    [J]. ATMOSPHERIC ENVIRONMENT, 2010, 44 (13) : 1609 - 1622
  • [80] A Common Representative Intermediates (CRI) mechanism for VOC degradation. Part 2: Gas phase mechanism reduction
    Watson, L. A.
    Shallcross, D. E.
    Utembe, S. R.
    Jenkin, M. E.
    [J]. ATMOSPHERIC ENVIRONMENT, 2008, 42 (31) : 7196 - 7204