首页> 外文期刊>Atmospheric Measurement Techniques >First validation of Aeolus wind observations by airborne Doppler wind lidar measurements
【24h】

First validation of Aeolus wind observations by airborne Doppler wind lidar measurements

机译:空气传播多普勒风光雷达测量的Aeolus风观测验证

获取原文
获取外文期刊封面目录资料

摘要

Soon after the launch of Aeolus on 22?August 2018, the first ever wind lidar in space developed by the European Space Agency (ESA) has been providing profiles of the component of the wind vector along the instrument's line of sight (LOS) on a global scale. In order to validate the quality of Aeolus wind observations, the German Aerospace Center?(Deutsches Zentrum für Luft- und Raumfahrt e.V., DLR) recently performed two airborne campaigns over central Europe deploying two different Doppler wind lidars (DWLs) on board the DLR Falcon aircraft. The first campaign – WindVal?III – was conducted from 5?November?2018 until 5?December?2018 and thus still within the commissioning phase of the Aeolus mission. The second campaign – AVATARE (Aeolus Validation Through Airborne Lidars in Europe) – was performed from 6?May?2019 until 6?June?2019. Both campaigns were flown out of the DLR site in Oberpfaffenhofen, Germany, during the evening hours for probing the ascending orbits. All together, 10 satellite underflights with 19?flight legs covering more than 7500 km of Aeolus swaths were performed and used to validate the early-stage wind data product of Aeolus by means of collocated airborne wind lidar observations for the first time. For both campaign data sets, the statistical comparison of Aeolus horizontal line-of-sight (HLOS) observations and the corresponding wind observations of the reference lidar (2 μm?DWL) on board the Falcon aircraft shows enhanced systematic and random errors compared with the bias and precision requirements defined for Aeolus. In particular, the systematic errors are determined to be 2.1 m s?1 (Rayleigh) and 2.3 m s?1?(Mie) for WindVal?III and ?4.6 m s?1 (Rayleigh) and ?0.2 m s?1?(Mie) for AVATARE. The corresponding random errors are determined to be 3.9 m s?1?(Rayleigh) and 2.0 m s?1?(Mie) for WindVal?III and 4.3 m s?1?(Rayleigh) and 2.0 m s?1?(Mie) for AVATARE. The Aeolus observations used here were acquired in an altitude range up to 10 km and have mainly a vertical resolution of 1 km?(Rayleigh) and 0.5 to 1.0 km?(Mie) and a horizontal resolution of 90 km?(Rayleigh) and down to 10 km?(Mie). Potential reasons for those errors are analyzed and discussed.
机译:在22岁的Aeolus推出后,2018年8月,欧洲航天局(ESA)开发的第一个有史以来的风潮,一直在提供乐器的视线(LOS)沿着乐器的视线(LOS)的组成部分。世界规模。为了验证德国航空航天中心的风景风格的质量?(DeutschesZentrumfürluft-undraumfahrtev,dlr)最近在中欧开展了两个空中竞选,在中欧部署了DLR Falcon船上的两个不同的多普勒风光楣(DWLS)飞机。第一个竞选 - Windval?III - 是从5岁开始的?2018年11月?2018年到5?12月?2018年,因此仍然在Aeolus任务的调试阶段。第二次运动 - avatare(Aeolus通过欧洲空气延期乐队验证) - 是从6岁进行的?5月?2019年6月6日?六月?2019年。这两个活动都在德国Oberpfaffenhofen的DLR网站中飞出,在晚上的时间内探测上升轨道。总之,10个卫星天然空行,覆盖超过7500公里的Aeolus Swaths的飞行腿,并用来首次通过并置的空气传播风潮观测验证Aeolus的早期风数据产品。对于竞争数据集,AEOLUS水平视线(HLOS)观察的统计比较和参考LIDAR(2μm≤DWL)的猎鹰飞机上的参考LIDAR(2μm≤DWL)的相应风观察显示,与此相比增强了系统和随机的误差。对鸟类定义的偏差和精确要求。特别地,系统误差确定为2.1 m s?1(瑞利)和2.3 m s?1?(mie)用于indval?iii和?4.6 m s?1(瑞利)和?0.2 m s?1? (mie)为avatare。相应的随机误差被确定为3.9 m s?1?(瑞利)和2.0 m s?1?(mie)为indval?iii和4.3 m s?1?(瑞利)和2.0 m s?1?(mie )对于avatare。这里使用的Aeolus观测在高达10公里的高度范围内获得,主要是垂直分辨率1公里?(瑞利)和0.5至1.0公里?(mie)和90公里的水平分辨率和90 km?(瑞利)和下降到10公里?(mie)。分析并讨论了这些错误的潜在原因。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号