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The mobile Water vapor Aerosol Raman LIdar and its implication in the framework of the HyMeX and ChArMEx programs: application to a dust transport process

机译:可移动的水蒸气气溶胶拉曼激光雷达及其在HyMeX和ChArMEx程序框架中的意义:在粉尘输送过程中的应用

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The increasing importance of the coupling of water and aerosol cycles in environmental applications requires observation tools that allow simultaneous measurements of these two fundamental processes for climatological and meteorological studies. For this purpose, a new mobile Raman lidar, WALI (Water vapor and Aerosol LIdar), has been developed and implemented within the framework of the international HyMeX and ChArMEx programs. This paper presents the key properties of this new device and its first applications to scientific studies. The lidar uses an eye-safe emission in the ultraviolet range at 354.7 nm and a set of compact refractive receiving telescopes. Cross-comparisons between rawinsoundings performed from balloon or aircraft and lidar measurements have shown a good agreement in the derived water vapor mixing ratio (WVMR). The discrepancies are generally less than 0.5 g kg~(-1) and therefore within the error bars of the respective instruments. A detailed study of the uncertainty of the WVMR retrieval was conducted and shows values between 7 and 11 %, which is largely constrained by the quality of the lidar calibration. It also proves that the lidar is able to measure the WVMR during daytime over a range of about 1 km. In addition the WALI system provides measurements of aerosol optical properties such as the lidar ratio (LR) or the particulate depolarization ratio (PDR). An important example of scientific application addressing the main objectives of the HyMeX and ChArMEx programs is then presented, following an event of desert dust aerosols over the Balearic Islands in October 2012. This dust intrusion may have had a significant impact on the intense precipitations that occurred over southwestern France and the Spanish Mediterranean coasts. During this event, the LR and PDR values obtained are in the ranges of ~45-63 ± 6 and 0.10-0.19 ± 0.01 sr, respectively, which is representative of dust aerosols. The dust layers are also shown to be associated with significant WVMR, i.e., between 4 and 6.7 g kg~(-1).
机译:水和气溶胶循环耦合在环境应用中的重要性日益提高,因此需要观测工具,以便能够同时测量这两个基本过程,以进行气候和气象研究。为此,已经在国际HyMeX和ChArMEx计划的框架内开发并实施了新型移动拉曼激光雷达WALI(水蒸气和气溶胶激光雷达)。本文介绍了这种新设备的关键特性及其在科学研究中的首次应用。激光雷达使用354.7 nm紫外线范围内的人眼安全发射器和一组紧凑型折射接收望远镜。通过气球或飞机进行的原始声音与激光雷达测量结果之间的交叉比较表明,在导出的水蒸气混合比(WVMR)中有很好的一致性。差异通常小于0.5 g kg〜(-1),因此在相应仪器的误差线之内。对WVMR检索的不确定性进行了详细研究,结果表明该值介于7%和11%之间,这在很大程度上受激光雷达校准质量的限制。这也证明激光雷达能够在白天约1 km的范围内测量WVMR。此外,WALI系统还可以测量气溶胶的光学特性,例如激光雷达比(LR)或微粒去极化比(PDR)。在2012年10月巴利阿里群岛上空发生沙尘气溶胶事件之后,继而提出了解决HyMeX和ChArMEx计划主要目标的科学应用的重要例子。这种尘埃入侵可能对发生的强降水产生重大影响在法国西南部和西班牙地中海沿岸。在此事件期间,获得的LR和PDR值分别在〜45-63±6和0.10-0.19±0.01 sr的范围内,代表粉尘气溶胶。尘埃层也显示出与明显的WVMR相关,即介于4和6.7 g kg〜(-1)之间。

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