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Trend differences in lower stratospheric water vapour between Boulder and the zonal mean and their role in understanding fundamental observational discrepancies

机译:巨石与地区平均值较低的地段水蒸气的趋势差异及其在理解基础观测差异中的作用

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摘要

Trend estimates with different signs are reported in the literature for lower stratospheric water vapour considering the time period between the late 1980s and 2010. The NOAA (National Oceanic and Atmospheric Administration) frost point hygrometer (FPH) observations at Boulder (Colorado, 40.0 degrees N, 105.2 degrees W) indicate positive trends (about 0.1 to 0.45 ppmvdecade(-1)). On the contrary, negative trends (approximately -0.2 to -0.1 ppmvdecade(-1)) are derived from a merged zonal mean satellite data set for a latitude band around the Boulder latitude. Overall, the trend differences between the two data sets range from about 0.3 to 0.5 ppmvdecade(-1), depending on altitude. It has been proposed that a possible explanation for these discrepancies is a different temporal behaviour at Boulder and the zonal mean. In this work we investigate trend differences between Boulder and the zonal mean using primarily simulations from ECHAM/MESSy (European Centre for Medium-Range Weather Forecasts Hamburg/Modular Earth Submodel System) Atmospheric Chemistry (EMAC), WACCM (Whole Atmosphere Community Climate Model), CMAM (Canadian Middle Atmosphere Model) and CLaMS (Chemical Lagrangian Model of the Stratosphere). On shorter timescales we address this aspect also based on satellite observations from UARS/HALOE (Upper Atmosphere Research Satellite/Halogen Occultation Experiment), Envisat/MIPAS (Environmental Satellite/Michelson Interferometer for Passive Atmospheric Sounding) and Aura/MLS (Microwave Limb Sounder). Overall, both the simulations and observations exhibit trend differences between Boulder and the zonal mean. The differences are dependent on altitude and the time period considered. The model simulations indicate only small trend differences between Boulder and the zonal mean for the time period between the late 1980s and 2010. These are clearly not sufficient to explain the discrepancies between the trend estimates derived from the FPH observations and the merged zo
机译:在较低的地段水蒸气中报告了不同迹象的趋势估计,用于较低的地段水蒸气考虑到1980年代后期和2010年的时间段。博尔德的NOAA(国家海洋和大气管理)霜点湿度计(FPH)观察(科罗拉多州,40.0度,105.2°W)表示正趋势(约0.1至0.45 ppmvdecade(-1))。相反,负趋势(约-0.2至-0.1 ppmvdecade(-1))源自来自博尔德纬度周围的纬度带的合并的区域平均卫星数据集。总的来说,两个数据集之间的趋势差异范围为约0.3到0.5 ppmvdecade(-1),具体取决于高度。已经提出了对这些差异的可能解释是巨石处的不同时间行为,并且区内平均值。在这项工作中,我们研究了博尔德尔与群岛之间的趋势差异,主要使用回波/凌乱的模拟(欧洲的中等范围天气预报汉堡/模块化亚模型系统)大气化学(EMAC),WACCM(全部大气群落气候模型) ,CMAM(加拿大中大气模型)和蛤蜊(平流层的化学拉格朗日模型)。在较短的时间尺寸,我们解决了这方面,也基于来自UARS / HALOE的卫星观察(高层大气研究卫星/卤素掩星实验),Envisat / MIPAS(环境卫星/迈克森干涉仪为被动大气发出的环境卫星/ Michelson干涉仪)和Aura / MLS(微波肢体发声器) 。总体而言,模拟和观察都表现出巨石和区内平均值之间的趋势差异。差异取决于高度和考虑的时间段。模型模拟仅在20世纪80年代末和2010年之间的时间段之间只有小趋势差异。这些显然不足以解释从FPH观察和合并的Zo衍生的趋势估计之间的差异差异

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  • 来源
    《Atmospheric chemistry and physics》 |2018年第1期|共21页
  • 作者单位

    Karlsruhe Inst Technol Inst Meteorol &

    Climate Res Hermann von Helmholtz Pl 1 D-76344 Leopoldshafen Germany;

    NOAA Earth Syst Res Lab Global Monitoring Div 325 Broadway Boulder CO 80305 USA;

    NOAA Earth Syst Res Lab Global Monitoring Div 325 Broadway Boulder CO 80305 USA;

    Karlsruhe Inst Technol Inst Meteorol &

    Climate Res Hermann von Helmholtz Pl 1 D-76344 Leopoldshafen Germany;

    Karlsruhe Inst Technol Inst Meteorol &

    Climate Res Hermann von Helmholtz Pl 1 D-76344 Leopoldshafen Germany;

    Deutsch Zentrum Luft &

    Raumfahrt DLR Inst Phys Atmosphare D-82234 Oberpfaffenhofen Germany;

    Deutsch Zentrum Luft &

    Raumfahrt DLR Inst Phys Atmosphare D-82234 Oberpfaffenhofen Germany;

    Deutsch Zentrum Luft &

    Raumfahrt DLR Inst Phys Atmosphare D-82234 Oberpfaffenhofen Germany;

    Univ Colorado Atmospher Chem Observat &

    Modeling Lab POB 3000 Boulder CO 80305 USA;

    Karlsruhe Inst Technol Inst Meteorol &

    Climate Res Hermann von Helmholtz Pl 1 D-76344 Leopoldshafen Germany;

    Environm &

    Climate Change Canada Climate Res Branch 550 Sherbrooke Ouest Montreal PQ H3A 1B9 Canada;

    Forschungszentrum Julich Inst Energy &

    Climate Res Stratosphere IEK 7 Leo Brandt Str D-52425 Julich Germany;

    Jet Prop Lab 4800 Oak Grove Dr Pasadena CA 91109 USA;

    NASA Langley Res Ctr 21 Langley Blvd Hampton VA 23681 USA;

    Hampton Univ Ctr Atmospher Sci 23 Tyler St Hampton VA 23668 USA;

    Forschungszentrum Julich Inst Energy &

    Climate Res Stratosphere IEK 7 Leo Brandt Str D-52425 Julich Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 大气科学(气象学);
  • 关键词

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