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Aerosols and boundary layer structure over Arctic sea ice based on airborne lidar and dropsonde measurements

机译:基于机载激光雷达和探空仪测量的北极海冰上的气溶胶和边界层结构

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摘要

The atmosphere over the Arctic Ocean is strongly influenced by the distribution of sea ice and open water. Leads in the sea ice produce strong convective fluxes of sensible and latent heat and release aerosol particles into the atmosphere. They increase the occurrence of clouds and modify the structure and characteristics of the atmospheric boundary layer (ABL) and thereby influence the Arctic climate.ududIn the course of this study aircraft measurements were performed over the western Arctic Ocean as part of the campaign PAMARCMIP 2012 of the Alfred Wegener Institute for Polar and Marine Research (AWI). Backscatter from aerosols and clouds within the lower troposphere and the ABL were measured with the nadir pointing Airborne Mobile Aerosol Lidar (AMALi) and dropsondes were launched to obtain profiles of meteorological variables. Furthermore, in situ measurements of aerosol properties, meteorological variables and turbulence were part of the campaign. The measurements covered a broad range of atmospheric and sea ice conditions. ududIn this thesis, properties of the ABL over Arctic sea ice with a focus on the influence of open leads are studied based on the data from the PAMARCMIP campaign. The height of the ABL is determined by different methods that are applied to dropsonde and AMALi backscatter profiles. ABL heights are compared for different flights representing different conditions of the atmosphere and of sea ice and open water influence. The different criteria for ABL height that are applied show large variation in terms of agreement among each other, depending on the characteristics of the ABL and its history. It is shown that ABL height determination from lidar backscatter by methods commonly used under mid-latitude conditions is applicable to the Arctic ABL only under certain conditions. Aerosol or clouds within the ABL are needed as a tracer for ABL height detection from backscatter. Hence an aerosol source close to the surface is necessary, that is typically found under the present influence of open water and therefore convective conditions. However it is not always possible to distinguish residual layers from the actual ABL. Stable boundary layers are generally difficult to detect.ududTo illustrate the complexity of the Arctic ABL and processes therein, four case studies are analyzed each of which represents a snapshot of the interplay between atmosphere and underlying sea ice or water surface. Influences of leads and open water on the aerosol and clouds within the ABL are identified and discussed. Leads are observed to cause the formation of fog and cloud layers within the ABL by humidity emission. Furthermore they decrease the stability and increase the height of the ABL and consequently facilitate entrainment of air and aerosol layers from the free troposphere.
机译:北冰洋上的大气层受到海冰和开放水域分布的强烈影响。海冰中的铅产生显热和潜热的强对流,并将气溶胶颗粒释放到大气中。它们增加了云的出现,并改变了大气边界层(ABL)的结构和特征,从而影响了北极的气候。 ud ud在此项研究过程中,作为战役的一部分,在北冰洋西部进行了飞机测量Alfred Wegener极地与海洋研究学院(AWI)的PAMARCMIP 2012。用天底指向空降机动气溶胶激光雷达(AMALi)测量了对流层下部和ABL内的气溶胶和云的反向散射,并发射了探空仪以获取气象变量的资料。此外,对气溶胶特性,气象变量和湍流的原位测量也是该运动的一部分。这些测量涵盖了广泛的大气和海冰条件。 ud ud在这篇论文中,基于PAMARCMIP活动的数据,研究了北极海冰上ABL的性质,重点是开放引线的影响。 ABL的高度由应用于探空仪和AMALi背向散射剖面的不同方法确定。比较了代表不同气氛,海冰和开阔水域条件的不同飞行的ABL高度。根据ABL的特征及其历史,所采用的ABL高度不同标准在彼此之间的一致性方面显示出很大的差异。结果表明,通过在中纬度条件下通常使用的方法从激光雷达后向散射确定ABL高度仅适用于某些条件下的北极ABL。需要使用ABL内的气溶胶或云作为示踪剂,以从反向散射检测ABL高度。因此,靠近表面的气溶胶源是必要的,这通常是在当前开放水域和对流条件的影响下发现的。但是,并非总是可能将剩余层与实际ABL区分开。稳定的边界层通常难以检测。 ud ud为了说明北极ABL及其过程的复杂性,分析了四个案例研究,每个案例研究都代表了大气与底层海冰或水面之间相互作用的快照。铅和开放水对ABL内气溶胶和云的影响已被确定和讨论。观察到铅通过湿气发射在ABL内引起雾和云层的形成。此外,它们降低了稳定性并增加了ABL的高度,因此有利于从自由对流层夹带空气和气溶胶层。

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    Schmidt Lukas;

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  • 年度 2014
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