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Water vapour variability within a convective boundary layer assessed by Large Eddy Simulations and IHOP_2002 observations

机译:通过大涡模拟和IHOP_2002观测评估了对流边界层内的水蒸气变化

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摘要

This study presents a comprehensive analysis of the variability of water vapour in a growing convective boundary-layer (CBL) over land, highlighting the complex links between advection, convective activity and moisture heterogeneity in the boundary layer. A Large-eddy Simulation (LES) is designed, based on observations, and validated, using an independent data-set collected during the International H2O Project (IHOP_2002) field-experiment. Ample information about the moisture distribution in space and time, as well as other important CBL parameters are acquired by mesonet stations, balloon soundings, instruments on-board two aircraft and the DLR airborne water-vapour differential-absorption lidar. Because it can deliver two-dimensional cross-sections at high spatial resolution (140 m horizontal, 200 m vertical), the airborne lidar offers valuable insights of small-scale moisture-variability throughout the CBL. The LES is able to reproduce the development of the CBL in the morning and early afternoon, as assessed by comparisons of simulated mean profiles of key meteorological variables with sounding data. Simulated profiles of the variance of water-vapour mixing-ratio were found to be in good agreement with the lidar-derived counterparts. Finally, probability-density functions of potential temperature, vertical velocity and water-vapour mixing-ratio calculated from the LES show great consistency with those derived from aircraft in situ measurements in the middle of the CBL. Downdraughts entrained from above the CBL are governing the scale of moisture variability. Characteristic length-scales are found to be larger for water-vapour mixing-ratio than for temperature\udThe observed water-vapour variability exhibits contributions from different scales. The influence of the mesoscale (larger than LES domain size, i.e. 10 km) on the smaller-scale variability is assessed using LES and observations. The small-scale variability of water vapour is found to be important and to be driven by the dynamics of the CBL. Both lidar observations and LES evidence that dry downdraughts entrained from above the CBL are governing the scale of moisture variability. Characteristic length-scales are found to be larger for water-vapour mixing-ratio than for temperature and vertical velocity. In particular, intrusions of drier free-troposphere air from above the growing CBL impose a marked negative skewness on the water-vapour distribution within it, both as observed and in the simulation. Copyright © 2005 Royal Meteorological Society.
机译:这项研究对陆地上不断增长的对流边界层(CBL)中水蒸气的变化进行了综合分析,强调了边界层中对流,对流活动和水分非均质性之间的复杂联系。使用国际H2O项目(IHOP_2002)现场实验期间收集的独立数据集,基于观察结果设计并验证了大涡模拟(LES)。元音台,气球测深仪,两架飞机上的仪器以及DLR机载水蒸气差分吸收激光雷达可获取有关时空中水分分布以及其他重要CBL参数的大量信息。由于机载激光雷达能够以高空间分辨率(水平140 m,垂直200 m)提供二维横截面,因此可为整个CBL的小规模湿度变化提供有价值的见解。通过比较关键气象变量的模拟平均剖面和测深数据,评估得出,LES能够再现早晨和下午初CBL的发展。发现水蒸气混合比方差的模拟轮廓与激光雷达衍生的对应物吻合良好。最后,由LES计算出的潜在温度,垂直速度和水汽混合比的概率密度函数与CBL中部飞机现场测量得出的那些具有高度一致性。从CBL上方夹带的下沉气流控制着湿度变化的规模。发现水蒸气混合比的特征长度尺度大于温度\ ud。观察到的水蒸气变异性表现出来自不同尺度的贡献。使用LES和观测资料评估了中尺度(大于LES域的大小,即10 km)对较小尺度变异性的影响。发现水蒸气的小规模变化很重要,并且受CBL动力学的驱动。激光雷达的观测结果和LES都证明,从CBL上方夹带的干燥下沉正在控制湿度变化的规模。发现水蒸气混合比的特征长度尺度大于温度和垂直速度的特征尺度。尤其是,从生长的CBL上方侵入较干燥的对流层空气,无论是在观测还是在模拟中,都对其内部的水蒸气分布造成明显的负偏度。版权所有©2005皇家气象学会。

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