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Lidar development with applications to the stratosphere-troposphere exchange and tropical aerosol detection.

机译:激光雷达的发展及其在平流层-对流层交换和热带气溶胶检测中的应用。

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Lidar remote sensing of the atmosphere is explored through the use and development of the Rayleigh and resonance lidar systems at the Arecibo Observatory (18.3{dollar}spcirc{dollar}N, 66.8{dollar}spcirc{dollar}W). Resonance lidar capabilities have been demonstrated at the Arecibo Observatory for both sodium and potassium. The initiation, development, and details of the lidar system, based on an alexandrite solid state ring laser, are discussed. We present initial resonance observations, as well as the exciting potential for dual- wavelength upper troposphere and lower stratosphere aerosol observations.; The Arecibo five year Rayleigh lidar data base and latitudinal snap shot from the Space Shuttle LITE experiment are used to study the temporal and spatial distributions of volcanic aerosols entrained in the stratosphere. The results support recent global models which suggest an extra tropical suction pump is responsible for mass being up drawn across the tropical tropopause, moved poleward, then pushed downward in the extratropics (Holton et al., 1995).; The aerosol scattering wavelength dependence is introduced through the Angstrom coefficient to estimate aerosol size distributions. The analysis is extended to upper tropospheric cirrus clouds. Initial observations of two types of cirrus are presented. We speculate that one type are the remnants of convective activity, while the second grow in the cold tropical tropopause. We present a single example of the wavelength dependence as an example of the utility of multi-wavelength lidar analysis.; Local stratospheric/tropospheric exchanges are investigated through a detailed discussion of lidar, radar, and balloon observations of temperatures and wind field fluctuations. On a single remarkable night, September 14-15, 1994, we captured two unique examples of convective activity at the tropopause and in the lower stratosphere. The first is a large scale molecular density depletion (temperature enhancement) just below the tropopause, which we believe is the result of strong convective parcels which are trapped at the tropopause inversion. The second example are temperature steps in the lower stratosphere that are hypothesized to have been caused by overshooting convective parcels from a frontal line some 200 km upwind of our location.
机译:通过在阿雷西博天文台(18.3 {sp} {n},66.8 {sp} {W})使用和开发瑞利和共振激光雷达系统,探索了激光雷达对大气的遥感。阿雷西博天文台已经证明了钠和钾的共振激光雷达能力。讨论了基于翠绿宝石固态环形激光器的激光雷达系统的启动,发展和细节。我们提供了初步的共振观测结果,以及对流层上双波长和平流层下层气溶胶的双波长激发潜能。阿雷西博(Arecibo)五年瑞利激光雷达数据库和航天飞机LITE实验的纬度快照用于研究平流层夹带的火山气溶胶的时空分布。这些结果支持了最近的全球模型,这些模型表明额外的热带吸引泵是造成在热带对流层顶上吸引质量,向极极移动,然后在温带地区向下推动的原因(Holton等,1995)。通过Angstrom系数引入气溶胶散射波长依赖性,以估计气溶胶尺寸分布。该分析扩展到对流层高层卷云。介绍了两种类型的卷云的初步观察结果。我们推测一种类型是对流活动的残余,而第二种则生长在寒冷的热带对流层顶。我们以波长依赖性为例,介绍多波长激光雷达分析的实用性。通过详细讨论激光雷达,雷达和气球对温度和风场波动的观测,研究了平流层/对流层的局部交换。在1994年9月14日至15日一个引人注目的夜晚,我们拍摄了对流层顶和平流层下部对流活动的两个独特例子。第一个是对流层顶正下方的大规模分子密度耗竭(温度升高),我们认为这是强对流包裹体的结果,这些对流带层被困在对流层顶反转处。第二个例子是平流层下部的温度阶跃,假设是由于我们位置上风约200 km的额线对流包裹超调造成的。

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