伊利诺斯州厄巴纳上空上层中间层的重力波活动:激光雷达观测和重力波传播模式分析

Richard L. Collins , Xin Tao , Chester S. Gardner
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引用次数: 34

摘要

本文分析了美国伊利诺斯州厄巴纳市近2年57个夜晚375 h的中流层区域(≈80-105 km) Na风温激光雷达观测数据。这些观测产生了一组高分辨率的中高层重力波活动的季节性数据集。利用这些数据,我们测量了143个准单色重力波的Brunt-Väisälä周期、相对大气密度扰动及其谱和参数。直接测量Brunt-Väisälä周期可以精确计算密度测量的水平速度扰动和垂直位移扰动。水平速度和垂直位移、垂直波数谱、震级和指数表现出明显的季节和夜间变化。引力波振幅、波长和观测周期表现出与先前研究相似的系统关系,并且与MU雷达测量的内在引力波参数一致。在这里,我们根据引力波传播的扩散滤波理论模型对观测结果进行了详细的分析。垂波数谱的幅度、垂波数与频率谱联合的形式以及单色重力波参数之间的系统关系与扩散滤波模型一致。我们将这些结果与其他地点的各种雷达、激光雷达和气辉观测结果进行比较。这一观测研究表明,重力波场的复杂非线性相互作用可以成功地模拟为扩散阻尼过程,其中有效扩散系数是总波方差的函数。
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Gravity wave activity in the upper mesosphere over Urbana, Illinois: lidar observations and analysis of gravity wave propagation models

We analyze 375 h of Na Wind/Temperature lidar measurements of the mesopause region (≈ 80–105 km) Na density and temperature profiles on 57 nights distributed over 2 yr at Urbana, Illinois. These observations yield a high-resolution seasonal data set of gravity wave activity in the upper mesosphere. From this data, we present measurements of the Brunt-Väisälä period, the relative atmospheric density perturbations and their spectra, and the parameters of 143 quasi-monochromatic gravity waves. The direct measurement of the Brunt-Väisälä period allows accurate calculation of the horizontal velocity perturbations and vertical displacement perturbations from the density measurements. The horizontal velocity and vertical displacement vertical wave number spectrum magnitudes and indices show considerable seasonal and nightly variability. The gravity wave amplitudes, wavelengths, and observed periods exhibit systematic relationships similar to those found in previous studies, and are consistent with the MU radar measurements of intrinsic gravity wave parameters. Here, we present a detailed analysis of the observations in terms of Diffusive-Filtering Theory models of gravity wave propagation. The magnitudes of the vertical wave number spectrum, the form of the joint vertical wave number and frequency spectrum, and the systematic relationships between the monochromatic gravity wave parameters are consistent with the Diffusive-Filtering model. We compare these results with a variety of radar, lidar, and airglow observations from other sites. This observational study suggests that the complex nonlinear interactions of the gravity wave field may be modeled successfully as a diffusive damping process, where the effective diffusivity is a function of the total wave variance.

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