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High-resolution measurement of cloud microphysics and turbulence at a mountaintop station

机译:山顶站云微物质和湍流的高分辨率测量

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Mountain research stations are advantageous not only for long-term sampling of cloud properties but also for measurements that are prohibitively difficult to perform on airborne platforms due to the large true air speed or adverse factors such as weight and complexity of the equipment necessary. Some cloud–turbulence measurements, especially Lagrangian in nature, fall into this category. We report results from simultaneous, high-resolution and collocated measurements of cloud microphysical and turbulence properties during several warm cloud events at the Umweltforschungsstation Schneefernerhaus (UFS) on Zugspitze in the German Alps. The data gathered were found to be representative of observations made with similar instrumentation in free clouds. The observed turbulence shared all features known for high-Reynolds-number flows: it exhibited approximately Gaussian fluctuations for all three velocity components, a clearly defined inertial subrange following Kolmogorov scaling (power spectrum, and second- and third-order Eulerian structure functions), and highly intermittent velocity gradients, as well as approximately lognormal kinetic energy dissipation rates. The clouds were observed to have liquid water contents on the order of 1 g m?3 and size distributions typical of continental clouds, sometimes exhibiting long positive tails indicative of large drop production through turbulent mixing or coalescence growth. Dimensionless parameters relevant to cloud–turbulence interactions, the Stokes number and settling parameter are in the range typically observed in atmospheric clouds. Observed fluctuations in droplet number concentration and diameter suggest a preference for inhomogeneous mixing. Finally, enhanced variance in liquid water content fluctuations is observed at high frequencies, and the scale break occurs at a value consistent with the independently estimated phase relaxation time from microphysical measurements.
机译:山地研究站的有利不仅是对云属性的长期采样,而且还针对在空气速度或不良因素如必要的设备的重量和复杂性等诸如诸如设备的重量和复杂性的不利因素而对空机平台进行过度困难的测量。一些云湍流测量,特别是拉格朗日本质上,属于此类别。我们在德国阿尔卑斯州乌维尔富斯普伦斯斯坦克州斯坦士(UFS)的几个温暖的云事件中报告了同时,高分辨率和湍流性能的同步,高分辨率和湍流性能的结果。收集的数据被发现代表在自由云中使用类似仪器制成的观察结果。观察到的湍流共享所有已知的高雷诺数流量的功能:它对所有三个速度分量的大致高斯波动,一个明确定义的Kolmogorov缩放(功率谱和二阶和三阶欧洲结构函数)的明确定义的惯性子传达,和高度间歇的速度梯度,以及近似逻辑正式动能耗散速率。观察到云的液体含水量为1g m?3和典型的大陆云的尺寸分布,有时会通过湍流混合或聚结生长表现出大滴加的长阳性尾部。与云湍流相互作用相关的无量纲参数,Stokes数和沉降参数在大气云中通常观察到的范围内。观察到液滴数浓度和直径的波动表明了偏好混合的偏好。最后,在高频下观察到液体水含量波动的增强差异,并且在与微小测量的独立估计的相位松弛时间一致的值中发生缩放断裂。

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