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Arctic low-level boundary layer clouds: in situ measurements and simulations of mono- and bimodal supercooled droplet size distributions at the top layer of liquid phase clouds

机译:北极低层边界层云:液相云顶层上单峰和双峰过冷液滴尺寸分布的原位测量和模拟

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Aircraft borne optical in situ size distribution measurements were performed within Arctic boundary layer clouds with a special emphasis on the cloud top layer during the VERtical Distribution of Ice in Arctic clouds (VERDI) campaign in April and May 2012. An instrumented Basler BT-67 research aircraft operated out of Inuvik over the Mackenzie River delta and the Beaufort Sea in the Northwest Territories of Canada. Besides the cloud particle and hydrometeor size spectrometers the aircraft was equipped with instrumentation for aerosol, radiation and other parameters. Inside the cloud, droplet size distributions with monomodal shapes were observed for predominantly liquid-phase Arctic stratocumulus. With increasing altitude inside the cloud the droplet mean diameters grew from 10 to 20 mu m. In the upper transition zone (i. e., adjacent to the cloud-free air aloft) changes from monomodal to bimodal droplet size distributions (Mode 1 with 20 mu m and Mode 2 with 10 mu m diameter) were observed. It is shown that droplets of both modes coexist in the same (small) air volume and the bimodal shape of the measured size distributions cannot be explained as an observational artifact caused by accumulating data point populations from different air volumes. The formation of the second size mode can be explained by (a) entrainment and activation/condensation of fresh aerosol particles, or (b) by differential evaporation processes occurring with cloud droplets engulfed in different eddies. Activation of entrained particles seemed a viable possibility as a layer of dry Arctic enhanced background aerosol (which was detected directly above the stratus cloud) might form a second mode of small cloud droplets. However, theoretical considerations and model calculations (adopting direct numerical simulation, DNS) revealed that, instead, turbulent mixing and evaporation of larger droplets are the most likely reasons for the formation of the second droplet size mode in the uppermost region of the clouds.
机译:在北极边界层云中进行了机载光学原位尺寸分布测量,特别是在2012年4月和5月北极冰层中的冰垂直分布(VERDI)活动期间,特别强调了云的顶层。仪器化的Basler BT-67研究这架飞机在加拿大西北地区的麦肯齐河三角洲和波弗特海沿伊努维克航行。除云颗粒和水凝物尺寸光谱仪外,飞机还配备了用于气溶胶,辐射和其他参数的仪器。在云内部,观察到主要是液相北极平流积云的具有单峰形状的液滴尺寸分布。随着云层内部高度的增加,液滴的平均直径从10微米增加到20微米。在上部过渡区(即,邻近无云的空中),观察到了从单峰到双峰液滴尺寸分布的变化(直径为20μm的模式1和直径为10μm的模式2)。结果表明,两种模式的液滴共存于相同的(小)风量中,并且所测量的尺寸分布的双峰形状不能解释为由累积来自不同风量的数据点种群而引起的观测伪影。第二尺寸模式的形成可以通过以下方式解释:(a)新鲜气溶胶颗粒的夹带和活化/凝结,或(b)通过在不同涡旋中吞噬的云滴而发生的差分蒸发过程来解释。夹带颗粒的激活似乎是可行的可能性,因为一层干燥的北极增强背景气溶胶(在层云正上方检测到)可能形成第二种小云滴模式。但是,理论上的考虑和模型计算(采用直接数值模拟,DNS)显示,相反,较大液滴的湍流混合和蒸发是在云的最上方区域形成第二个液滴尺寸模式的最可能原因。

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