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Development and airborne operation of a compact water isotope ratio infrared spectrometer

机译:紧凑型水同位素比红外光谱仪的研制与空中运行

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A sensitive laser spectrometer, named IRIS (water isotope ratio infrared spectrometer), was developed for the in situ detection of the isotopic composition of water vapour in the upper troposphere and the lower stratosphere. Isotope ratio measurements can be used to quantify troposphere-stratosphere exchange, and to study the water chemistry in the stratosphere. IRIS is based on the technique of optical feedback cavity-enhanced absorption spectroscopy. It uses a room temperature near-infrared laser, and does not require cryogenic cooling of laser or detectors. The instrument weighs 51 kg including its support structure. Airborne operation was demonstrated during three flights aboard the European M55-Geophysica stratospheric research aircraft, as part of the AMMA/SCOUT-03 (African Monsoon Multidisciplinary Analysis/Stratospheric Climate links with emphasis on the Upper Troposphere and lower stratosphere) campaign in Burkina Faso in August 2006. One-second averaged, vertical profiles of δ~2H, δ~(17)O and δ~(18)O in the upper troposphere are shown, as are the δ~(17)O~(18)O and δ~2H-δ~(18)O relations. The data are discussed with reference to a Rayleigh distillation model. As expected, there is no indication of non-mass-dependent fractionation (also known as mass-independent fractionation) in the troposphere. Furthermore, improvements to the thermal management system and a move to a (cryogen-free) longer-wavelength laser source are discussed, which together should result in approximately two orders of magnitude improvement of the sensitivity.
机译:开发了一种灵敏的激光光谱仪,称为IRIS(水同位素比红外光谱仪),用于在对流层上层和平流层下层中水蒸气的同位素组成的原位检测。同位素比率测量可用于量化对流层-平流层交换,并研究平流层中的水化学。 IRIS基于光反馈腔增强吸收光谱技术。它使用室温近红外激光,并且不需要对激光或探测器进行低温冷却。包括支撑结构在内,该仪器重51千克。在欧洲M55-地球物理平流层研究飞机上进行的三次飞行中,空中飞行操作得到了证明,这是AMMA / SCOUT-03(非洲季风多学科分析/平流层气候联系,重点是对流层和平流层以下)活动的一部分, 2006年8月。显示了对流层上层δ〜2H,δ〜(17)O和δ〜(18)O的一秒平均垂直分布,以及δ〜(17)O〜(18)O和δ〜2H-δ〜(18)O关系。参考瑞利蒸馏模型讨论数据。正如预期的那样,没有迹象表明对流层中存在非质量相关的分离(也称为质量无关的分离)。此外,还讨论了对热管理系统的改进以及向(无低温源)长波长激光源的迁移,这将共同导致灵敏度提高大约两个数量级。

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