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Intercomparison of the representations of the atmospheric chemistry of pre-industrial methane and ozone in earth system and other global chemistry-transport models

机译:地球系统预工业甲烷和臭氧的大气化学的代表的依照性和其他全球化学输送模型

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摘要

An intercomparison has been set up to study the representation of the atmospheric chemistry of the pre-industrial troposphere in earth system and other global tropospheric chemistry-transport models. The intercomparison employed a constrained box model and utilised tropospheric trace gas composition data for the preindustrial times at ninety mid-latitude surface locations. Incremental additions of four organic compounds: methane, ethane, acetone and propane, were used to perturb the constrained box model and generate responses in hydroxyl radicals and tropospheric ozone at each location and with each chemical mechanism. Although the responses agreed well across the chemical mechanisms from the selected earth system and other global tropospheric chemistry-transport models, there were differences in the detailed responses between the chemical mechanisms that could be tracked down by sensitivity analysis to differences in the representation of C-1-C-3 chemistry. Inter-mechanism ranges in NOx compensation points were about 0.17 +/- 0.12 when expressed relative to the inter-mechanism average. Monte Carlo uncertainty analysis carried out with a single chemical mechanism put the intra-mechanism range a factor of three higher at 0.50 +/- 0.12. Similar differences between inter-mechanism and intra-mechanism ranges were found for hydroxyl radical depletion but were up to a factor of six wider for ozone formation from incremental additions of organic compounds. The cause of the discrepancies between the interand intra-mechanism ranges was found to be the large uncertainties that are present in the laboratory determinations of the rate coefficients and product channel branching ratios of some key chemical reactions involving organic peroxy radicals and hydroperoxides. Whilst these large uncertainties are present in the laboratory determinations, there will be irreducible uncertainties in the predictions from the earth system and other chemistry-transport models of methane and tropospheric ozone trends since pre-industrial times and hence their contributions to the radiative forcing of climate change. Further definitive laboratory studies of the reaction rates and product yields of the reactions of the simple organic peroxy radicals and hydroperoxides are required to resolve and reduce current uncertainties in earth system and chemistry-transport model predictions.
机译:已经建立了一项依据,研究了地球系统和其他全球对流层化学输送模型的工业前对流层大气化学的代表。该互通的盒子模型采用受约束的箱体模型,并在九十个中纬度表面位置使用对流层痕量气体成分数据。增量添加四种有机化合物:甲烷,乙烷,丙酮和丙烷,用于扰乱受约束的箱体模型,并在每个位置和每个化学机制中产生羟基自由基和对流层臭氧的反应。虽然对所选地球系统和其他全球对流层化学传输模型的化学机制相同的反应,但化学机制之间的详细反应差异差异,可以通过敏感性分析对C-表示的表示差异进行敏感性分析来跟踪1-c-3化学。在相对于机构间平均水平表达时,NOx补偿点中的机构间距约为0.17 +/- 0.12。用单一化学机制进行的蒙特卡罗不确定性分析将机构内部范围置于0.50 +/- 0.12的倍数。发现机构间和机构内部范围之间的类似差异用于羟基自由基耗尽,但是从增量添加有机化合物的臭氧形成六个宽度六个宽。 interAland机构范围之间的差异的原因被发现是存在涉及有机过氧基团和氢过拓状物的一些关键化学反应的速率系数和产物通道支化比的实验室测定中存在的大不确定性。在实验室测定中存在这些大的不确定性,因此在地球系统和其他化学传输模型的预测中,甲烷和对流层臭氧趋势的预测中将存在不可挽回的不确定性,从工业期间时期,因此他们对气候辐射迫使促进气候的贡献改变。还需要对反应率和产物产量的进一步确定实验室研究简单的有机过氧基团和氢过拓的反应,以解决和降低地球系统中的电流不确定性和化学运输模型预测。

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  • 来源
    《Atmospheric environment》 |2021年第3期|118248.1-118248.15|共15页
  • 作者单位

    Rdscientific Newbury RG14 6LH Berks England;

    David D Parrish LLC Boulder CO USA;

    Univ Cambridge Dept Chem Lensfield Rd Cambridge CB2 LEW England|Natl Ctr Atmospher Sci Leeds W Yorkshire England;

    Japan Meteorol Agcy Meteorol Res Inst Tsukuba Ibaraki Japan;

    NASA Goddard Inst Space Studies New York NY 10025 USA|Columbia Univ Ctr Climate Syst Res New York NY USA;

    NASA Goddard Inst Space Studies New York NY 10025 USA|Columbia Univ Ctr Climate Syst Res New York NY USA;

    Duke Univ Nicholas Sch Environm Durham NC 27708 USA;

    NOAA Geophys Fluid Dynam Lab Princeton NJ USA;

    Univ Bristol Biogeochem Res Ctr Sch Chem Bristol BS8 1TS Avon England;

    Univ Bristol Biogeochem Res Ctr Sch Chem Bristol BS8 1TS Avon England|Univ Western Cape Dept Chem Robert Sobukwe Rd ZA-7375 Bellville South Africa;

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