首页> 外文期刊>Atmospheric Measurement Techniques >A reassessment of the discrepancies in the annual variation of iδ/iD-Hsub2/subO in the tropical lower stratosphere between the MIPAS and ACE-FTS satellite data sets
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A reassessment of the discrepancies in the annual variation of iδ/iD-Hsub2/subO in the tropical lower stratosphere between the MIPAS and ACE-FTS satellite data sets

机译:在MIPA和ACE-FTS卫星数据集之间的热带较低平流层中,在热带较低平流层中的年度变化中的年变化中的差异重新评估

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The annual variation of δD in the tropical lower stratosphere is a critical indicator for the relative importance of different processes contributing to the transport of water vapour through the cold tropical tropopause region into the stratosphere. Distinct observational discrepancies of the δD annual variation were visible in the works of Steinwagner et?al. (2010) and Randel et?al. (2012). Steinwagner et?al. (2010) analysed MIPAS (Michelson Interferometer for Passive Atmospheric Sounding) observations retrieved with the IMK/IAA (Institut für Meteorologie und Klimaforschung in Karlsruhe, Germany, in collaboration with the Instituto de Astrofísica de Andalucía in Granada, Spain) processor, while Randel et?al. (2012) focused on ACE-FTS (Atmospheric Chemistry Experiment Fourier Transform Spectrometer) observations. Here we reassess the discrepancies based on newer MIPAS (IMK/IAA) and ACE-FTS data sets, also showing for completeness results from SMR (Sub-Millimetre Radiometer) observations and a ECHAM/MESSy (European Centre for Medium-Range Weather Forecasts Hamburg and Modular Earth Submodel System) Atmospheric Chemistry (EMAC) simulation (Eichinger et?al.,?2015b). Similar to the old analyses, the MIPAS data set yields a pronounced annual variation (maximum about 75 ‰), while that derived from the ACE-FTS data set is rather weak (maximum about 25 ‰). While all data sets exhibit the phase progression typical for the tape recorder, the annual maximum in the ACE-FTS data set precedes that in the MIPAS data set by 2?to?3?months. We critically consider several possible reasons for the observed discrepancies, focusing primarily on the MIPAS data set. We show that the δD annual variation in the MIPAS data up to an altitude of 40 hPa is substantially impacted by a “start altitude effect”, i.e. dependency between the lowermost altitude where MIPAS retrievals are possible and retrieved data at higher altitudes. In itself this effect does not explain the differences with the ACE-FTS data. In addition, there is a mismatch in the vertical resolution of the MIPAS HDO and H2O data (being consistently better for HDO), which actually results in an artificial tape-recorder-like signal in δD. Considering these MIPAS characteristics largely removes any discrepancies between the MIPAS and ACE-FTS data sets and shows that the MIPAS data are consistent with a δD tape recorder signal with an amplitude of about 25 ‰ in the lowermost stratosphere.
机译:热带较低平流层中ΔD的年变化是对不同流程的相对重要性,对水蒸气通过冷热带对流博阿博地区进入平流层的不同过程的相对重要性的关键指标。斯坦瓦尔et et?al的作品中可见ΔD年变异的明显观察差异。 (2010)和兰德尔et?al。 (2012)。 Steinwagner等? (2010)分析了MIPAS(Michelson干涉仪为被动大气发出声音)与IMK / IAA检索的观察结果(InstitutfürMeteorologieund Klimaforschung在德国Karlsruhe),与西班牙格拉纳达的伊斯坦特·斯特罗毕(西班牙)加工机构合作,而兰德尔·埃特?al。 (2012)专注于ACE-FTS(大气化学实验傅立叶变换光谱仪)观察。在这里,我们重新评估了基于较新的MIPAS(IMK / IAA)和ACE-FTS数据集的差异,也显示SMR(亚毫米辐射计)观察和ECHAM /凌乱的完整性结果(欧洲中等范围天气预报汉堡中心和模块化的地球子模型系统)大气化学(emac)模拟(Eichinger等,eichinger等,?2015b)。与旧分析类似,MIPAS数据集产生明显的年度变化(最大约75‰),而源自ACE-FTS数据集的源于弱(最大约25‰)。虽然所有数据集呈现典型的磁带录音机的阶段进展,但ACE-FTS数据集中的年度最大值在2次设置的MIPA数据中之前?到?3?月份。我们批判地考虑了观察到的差异的几种可能原因,主要关注MIPA数据集。我们表明,MIPA数据的ΔD年度变化高于40hPa的高度基本上受到“启动高度效应”的影响,即最下面的高度之间的依赖性,其中MIPAS检索可以在较高海拔地区检索数据。本身本身不会解释与ACE-FTS数据的差异。另外,MIPA HDO和H2O数据的垂直分辨率存在不匹配(对HDO始终如一),其实际上导致ΔD中的人工带式信号。考虑到这些MIPAS特性在很大程度上消除了MIPA和ACE-FTS数据集之间的任何差异,并且表明MIPA数据与最低平流层中幅度约为25的ΔD磁带录像机信号。

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