首页> 外文会议>Society of Photo-Optical Instrumentation Engineers Conference on Lidar Technologies, Techniques, and Measurements for Atmospheric Remote Sensing >New Raman Water Vapor and Temperature Lidar at JPL Table Mountain Facility: Optimization, Validations and Sonde Intercomparison
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New Raman Water Vapor and Temperature Lidar at JPL Table Mountain Facility: Optimization, Validations and Sonde Intercomparison

机译:JPL表山地设施的新拉曼水蒸气和温度激光器:优化,验证和Sonde Intercompolison

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Jet Propulsion Laboratory currently operates lidar systems at Table Mountain Facility (TMF), California (34.4°N, 117.7°W at 2300m) and Mauna Loa Observatory (MLO), Hawaii (19.5°N, 155.6°W at 3400m) under the Network for the Detection of Atmospheric Composition Change (NDACC, formerly NDSC). To complement existing NDACC lidars at TMF, which acts as a primary site for inter-comparisons, a new water vapor and temperature lidar has begun routine operation with typically 3-4 nightly profiles per week. As water vapor is a key greenhouse gas, and is highly variable on annual and seasonal cycles, accurate long term measurements are necessary for predictions of climate change and to increase our understanding of the atmospheric processes it contributes to. The new TMF lidar has demonstrated high spatial and temporal resolution, with a high degree of optimization being achieved over the past year, although the authors believe further improvement may yet be possible. The lidar has been designed for accuracies of 5% up to 12km in the free troposphere with the capability to measure to the tropopause and lower stratosphere with accuracies of 1 ppm. It is anticipated that the data sets produced will be used for Aura validation and for incorporation into NDACC archives. Validation results for the optimized system are presented with intercomparisons using Vaisala RS92-K radiosondes.
机译:喷气推进实验室目前在桌山设施(TMF),加利福尼亚州(34.4°N,117.7°W处为2300米)和Mauna Loa天文台(MLO),夏威夷(34.5°N,155.6°W以3400米)的夏威夷(3400米)的LIDAR系统运营LIDAR系统用于检测大气组成变化(NDACC,以前的NDSC)。为了补充TMF的现有NDACC LIDAR,其充当用于比较的主要部位,新的水蒸气和温度LIDAR已经开始常规操作,通常每周3-4个夜间剖面。随着水蒸气是一个关键的温室气体,并且在年龄和季节性周期中具有高度变化,准确的长期测量对于气候变化预测是必要的,并提高我们对其有贡献的大气流程的理解。新的TMF LIDAR已经证明了高空间和时间分辨率,并且在过去一年中实现了高度优化,尽管作者认为进一步改善可能是可能的。 LIDAR设计用于自由对流层中5%至12km的精度,能够以1 ppm的精度测量到对象和较低的平流层。预计生成的数据集将用于光环验证,并将其纳入NDACC档案。优化系统的验证结果使用Vaisala RS92-K无线电探空仪呈现了离法明明。

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