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首页> 外文期刊>Journal of atmospheric and oceanic technology >Assimilating Coherent Doppler Lidar Measurements into a Model of the Atmospheric Boundary Layer. Part Ⅰ: Algorithm Development and Sensitivity to Measurement Error
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Assimilating Coherent Doppler Lidar Measurements into a Model of the Atmospheric Boundary Layer. Part Ⅰ: Algorithm Development and Sensitivity to Measurement Error

机译:将相干多普勒激光雷达测量同化为大气边界层模型。第一部分:算法开发和对测量误差的敏感性

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A four-dimensional variational data assimilation (4DVAR) algorithm for retrieval of spatially and temporally resolved velocity and thermodynamic fields within the atmospheric boundary layer (ABL) is described and applied to a coherent Doppler lidar dataset. The adjoint method is used to find the initialization of an ABL model that gives the best fit to radial velocity measurements from the Doppler lidar. The adjoint equations are derived by assuming that subgrid-scale fluxes can be represented as general functions of the resolved-scale rates of strain and potential temperature gradients. For this study, particular attention is paid to the treatment of real measurement error. Radial velocity precision as a function of the signal-to-noise ratio (SNR) is estimated from time series analysis of real fixed beam data, and this information is used in the evaluation of the cost function. The cost function is evaluated by interpolating the model output to the observation coordinates. As a result, the error covariance matrix retains its diagonal structure and the form of the cost function is simplified. The retrieval method is applied to Doppler lidar data collected under convective conditions during the Cooperative Atmosphere/Surface Exchange Study (CASES-99) field program. The impact of the SNR-dependent measurement error is investigated by comparing a retrieval using equally weighted data to a retrieval using the estimated velocity precisions. At near range the fields are well correlated. However, at longer range, as the velocity precision exceeds the standard deviation of the measurements, the correlation decreases rapidly. Furthermore, retrievals using equally weighted data produce higher variances.
机译:描述了一种用于检索大气边界层(ABL)内时空分辨的速度和热力学场的三维变分数据同化(4DVAR)算法,并将其应用于相干多普勒激光雷达数据集。伴随方法用于查找ABL模型的初始化,该模型最适合多普勒激光雷达的径向速度测量。通过假设子网格尺度通量可以表示为应变和潜在温度梯度的分辨尺度速率的一般函数,可以得出伴随方程。对于本研究,要特别注意实际测量误差的处理。径向速度精度是信噪比(SNR)的函数,它是根据实际固定束数据的时间序列分析估算的,该信息用于评估成本函数。通过将模型输出内插到观测坐标来评估成本函数。结果,误差协方差矩阵保持其对角线结构,简化了成本函数的形式。该检索方法适用于在合作大气/表面交换研究(CASES-99)野外计划期间在对流条件下收集的多普勒激光雷达数据。通过比较使用均等加权数据的检索结果与使用估计速度精度的检索结果,来研究与SNR有关的测量误差的影响。在近距离范围内,这些场具有很好的相关性。但是,在更长的范围内,随着速度精度超过测量的标准偏差,相关性会迅速降低。此外,使用相等加权的数据进行检索会产生更高的方差。

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