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Doppler ducting of short-period gravity waves by midlatitude tidal wind structure

机译:多普勒短周期重力波的管道中间纬度潮风结构

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Multiwavelength airglow image data depicting a short-period (~4.9 min) atmospheric gravity wave characterized by a sharp leading front have been analyzed together with synoptic meteor radar wind data recorded simultaneously from Bear Lake Observatory, Utah (41.6°N, 111.6°W). The wind data suggest the presence of a semidiurnal tide with horizontal winds peaking at around 60 m/s along the SSE direction of motion (170° from north) of this short-period wave. It was found that the gravity wave was most probably ducted because of the Doppler shift imposed by this wind structure. A marked 180° phase shift was observed between the near-infrared OH and the OI (557.7 nm) emissions. Numerical simulation results for similar ducted waves excited by idealized model sources suggest that the phase shift between the wave-modulated airglow intensities may be explained simply by chemical processes rather than by wave dynamics. Phase velocities of simulated waves, however, appear higher than those of observed waves, suggesting the importance of tidal thermal structure in determining the Doppler-ducted wave characteristics.
机译:多波长大气光图像数据描述短周期(~ 4.9分钟)大气重力波特点是大幅领先的面前分析了风与天气流星雷达数据记录同时从贝尔湖天文台,犹他州(41.6°N, 111.6°W)。数据显示的半日潮横风达到约60 m / s沿着SSE方向运动(170°北)的短周期波。重力波是最有可能用管道输送因为这风所强加的多普勒频移结构。近红外哦和OI (557.7海里)排放。类似的管道中的波兴奋通过理想化的模型来源表明之间的相移调波大气光强度通过化学过程,而解释道比波动态。然而,模拟波浪高于出现这些观察到的波,暗示潮汐热结构的重要性确定Doppler-ducted波特征。

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