Measurements of Daytime and Upper Tropospheric Water Vapor Profiles by Raman Lidar

S. Bisson, J. Goldsmith
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引用次数: 3

Abstract

One of the most important atmospheric constituents needed for climate and meteorological studies is water vapor. It plays an important role in driving atmospheric circulations through latent heat release and in determining the earth’s radiation budget, both through its radiative effects (water vapor is the major greenhouse gas) and through cloud formation. The vertical distribution of water vapor is particularly important because in addition to determining convective stability, radiative effects are also strongly altitude dependent. In fact, several one-dimensional radiative convective models1 have shown that although upper tropospheric (8-12 km) water vapor concentrations are 2-3 orders of magnitude less than those near the surface, upper tropospheric water vapor exerts an important influence on climate. What these models show is that for a given absolute increase in water vapor in the upper troposphere, the response or change in surface temperature is extremely disproportionate to the amount of water vapor. At present, considerable controversy exists over the nature of the vertical redistribution of water vapor in a changing climate, and particularly the distribution of water vapor in the upper troposphere. Understanding upper tropospheric moistening processes such as deep convection are therefore of prime importance in addressing the water vapor feedback question. Accurate measurements of the vertical and temporal variations of water vapor are essential for understanding atmospheric processes and hence model refinement.
用拉曼激光雷达测量白天和对流层上层水汽剖面
气候和气象研究需要的最重要的大气成分之一是水蒸气。它在通过潜热释放驱动大气环流和通过其辐射效应(水蒸气是主要的温室气体)和通过云的形成决定地球的辐射收支方面发挥着重要作用。水汽的垂直分布特别重要,因为除了决定对流稳定性外,辐射效应也强烈依赖于高度。事实上,一些一维辐射对流模式1表明,虽然对流层上层(8-12公里)的水汽浓度比地表附近的低2-3个数量级,但对流层上层的水汽对气候有重要影响。这些模型所显示的是,对于对流层上层水汽的给定绝对增加,地表温度的响应或变化与水汽的数量极不相称。目前,关于气候变化中水汽垂直再分布的性质,特别是对流层上层水汽的分布存在相当大的争议。因此,了解对流层上层的湿润过程,如深层对流,对于解决水蒸气反馈问题至关重要。水汽的垂直和时间变化的精确测量对于理解大气过程并因此改进模式是必不可少的。
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