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Sodium lidar observed variability in mesopause region temperature and horizontal wind: Planetary wave influence and tidal-gravity wave interactions.

机译:激光雷达钠观测到了更年期区域温度和水平风的变化:行星波影响和潮汐重力波相互作用。

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摘要

The CSU sodium lidar system at Fort Collins, CO (40.6N, 105W), after a decade of mesopause temperature observation was upgraded in 1999 from a one-beam system to a two-beam system, capable of simultaneous and continuous observations of mesopause region temperature, zonal wind, and meridional wind, over full diurnal cycles, weather permitting. The regular observation under this operation mode started in May 2002. The valuable datasets could be used to study not only the tidal day-to-day variability but also planetary waves and gravity waves.; Analysis of our longest dataset near fall equinox in 2003 (September 2003 campaign) reveals the dramatic tidal day-to-day variability with 2-fold increase in tidal amplitudes in all three fields during UT day 267 and 268. Further TIME-GCM (Thermosphere-Ionosphere-Mesosphere-Electrodynamics General Circulation Model) study and comparison between lidar observed temperature and the SABER observed global temperature field suggest that both tidal/planetary wave interactions and tidal/gravity wave interactions play an important role for the tidal amplitude enhancement. Though detailed causes for tidal variability require further study, we have demonstrated that substantial information on MLT dynamics may be obtained from a comprehensive long-period data set. Three near 80hr continuous datasets in consecutive summers of 2002, 2003, 2004 give us the opportunities to study summer quasi-two-day waves (QTD) with the possible modulation of Quasi-Biannual Oscillation (QBO) on QTD wave amplitude. Comparisons between the QTD wave amplitudes of temperature observed by lidar and SABER for all three campaigns show very good agreement. A strong winter mesospheric temperature inversion layer (MIL) was observed by our sodium lidar in December 2004 campaign. Studies of this event reveal the strong MIL which is consistent with mean state and tidal/gravity wave interactions. The observed dramatic tidal amplitude increase in day 338 is the result of such wave-wave interactions.
机译:在经历了更年期十年的温度观测之后,位于科罗拉多州科林斯堡的CSU钠激光雷达系统(40.6N,105W)于1999年从单束系统升级为两束系统,能够同时和连续观测更年期区域在天气允许的情况下,在整个昼夜周期中保持最高温度,纬向风和经向风。在这种运行模式下的常规观测始于2002年5月。有价值的数据集不仅可以用于研究潮汐的日常变化,而且可以用于研究行星波和重力波。对我们在2003年秋分附近的最长数据集进行的分析(2003年9月的活动)显示,在UT日267和268期间,所有三个田地的潮汐日变化都非常明显,潮汐振幅增加了2倍。进一步的TIME-GCM(热层) -电离层-中层-电动力学通用循环模型)研究和激光雷达观测温度与SABER观测全球温度场之间的比较表明,潮汐/行星波相互作用和潮汐/重力波相互作用都对提高潮汐振幅起着重要作用。尽管潮汐变化的详细原因需要进一步研究,但我们已经证明,有关MLT动力学的大量信息可以从一个综合的长期数据集中获得。在2002年,2003年和2004年连续的三个夏季中,三个接近80小时的连续数据集为我们提供了研究夏季准两天波(QTD)的机会,并可能对QTD波振幅进行了准双年度振荡(QBO)调制。激光雷达和SABER观测到的所有三个战役的温度QTD波幅之间的比较都显示出很好的一致性。我们的钠激光雷达在2004年12月的活动中观测到了强烈的冬季中层温度反转层(MIL)。对这一事件的研究表明,它具有很强的MIL,这与平均状态和潮汐/重力波相互作用是一致的。在第338天观察到的急剧的潮汐振幅增加是这种波波相互作用的结果。

著录项

  • 作者

    Li, Tao.;

  • 作者单位

    Colorado State University.;

  • 授予单位 Colorado State University.;
  • 学科 Physics Atmospheric Science.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 大气科学(气象学);光学;
  • 关键词

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