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Experimental investigation of the stable water isotope distribution in an Alpine lake environment (L-WAIVE)

机译:高寒湖环境中稳定水同位素分布的实验研究(L-FAIVE)

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In order to gain understanding on the vertical structure of atmospheric water vapour above mountain lakes and to assess its link with the isotopic composition of the lake water and with small-scale dynamics (i.e. valley winds, thermal convection above complex terrain), the L-WAIVE (Lacustrine-Water vApor Isotope inVentory Experiment) field campaign was conducted in the Annecy valley in the French Alps during 10?d in June 2019. This field campaign was based on an original experimental synergy between a suite of ground-based, boat-borne, and two ultra-light aircraft (ULA) measuring platforms implemented to characterize the thermodynamic and isotopic composition above and in the lake. A cavity ring-down spectrometer and an in-cloud liquid water collector were deployed aboard one of the ULA to characterize the vertical distribution of the main stable water isotopes (H 2 16 O, H 2 18 O and H 2 H 16 O) both in the air and in shallow cumulus clouds. The temporal evolution of the meteorological structures of the low troposphere was derived from an airborne Rayleigh–Mie lidar (embarked on a second ULA), a ground-based Raman lidar, and a wind lidar. ULA flight patterns were repeated several times per day to capture the diurnal evolution as well as the variability associated with the different weather events encountered during the field campaign, which influenced the humidity field, cloud conditions, and slope wind regimes in the valley. In parallel, throughout the campaign, liquid water samples of rain, at the air–lake water interface, and at 2?m depth in the lake were taken. A significant variability of the isotopic composition was observed along time, depending on weather conditions, linked to the transition from the valley boundary layer towards the free troposphere, the valley wind intensity, and the vertical thermal stability. Thus, significant gradients of isotopic content have been revealed at the transition to the free troposphere, at altitudes between 2.5 and 3.5?km. The influence of the lake on the atmosphere isotopic composition is difficult to isolate from other contributions, especially in the presence of thermal instabilities and valley winds. Nevertheless, such an effect appears to be detectable in a layer of about 300?m thickness above the lake in light wind conditions. We also noted similar isotopic compositions in cloud drops and rainwater.
机译:为了了解山湖上方大气水蒸气的垂直结构,并评估其与湖水同位素组成的联系,小规模动态(即谷风,复杂地形上的热对流),L-豁免(Lapustrine-Water Vapor Isopope Inventory实验)在2019年6月在10岁阿尔卑斯山的Annecy Valley中进行了现场运动。该领域的竞选基于一个基于地面,船只套件之间的原始实验协同作用拥有两种超级轻型飞机(ULA)测量平台,以表征在湖面和湖面上方的热力学和同位素组合物。将腔翻录光谱仪和云液进入液体收集器展开,以表征主稳定水同位素的垂直分布(H 2 16 O,H 2 18 O和H 2 H 16 O)在空中和浅层云中。低对流层气象结构的时间演变是从空中瑞利·米德尔(爬过第二ULA),基于地面的拉曼·莱达和风潮汐的空气传播。 Ula飞行模式每天重复几次,以捕获日间演变以及与现场运动期间遇到的不同天气事件相关的可变性,这影响了谷谷的湿度场,云条件和坡度风力制度。在整个竞选中,在空中湖水界面的整个竞选中,液体水样,并在湖中的2?M深度。根据天气状况观察同位素组合物的显着变化,取决于天气条件,与从谷边界层向自由对流层,谷风强度和垂直热稳定性的转变连接。因此,在对自由对流层的过渡时显示出显着的同位素含量的显着梯度,在2.5和3.5的高度之间。湖泊对大气同位素组成的影响难以与其他贡献隔离,特别是在存在热稳定性和谷风中。然而,这种效果似乎可以在湖泊的明亮风条件下方的约300μm厚的层中可检测到。我们还注意到云下降和雨水中类似的同位素组合物。

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