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Upgrade and automation of the JPL Table Mountain Facility tropospheric ozone lidar (TMTOL) for near-ground ozone profiling and satellite validation

机译:JPL桌山设施对流层臭氧激光雷达(TMTOL)的升级和自动化,用于近地臭氧剖面分析和卫星验证

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As part of international efforts to monitor air quality, several satellite missions such as the Tropospheric Monitoring Instrument (TROPOMI) were deployed and others, like Tropospheric Emissions: Monitoring Pollution (TEMPO), are planned for the near future. In support of the validation of these missions, major upgrades to the tropospheric ozone lidar located at the Jet Propulsion Laboratory Table Mountain Facility (TMF) were recently performed. These modifications include the full automation of the system, which now allows unattended measurements during frequent satellite overpasses, and a new receiver that extends the measurement capabilities of the system down to 100?m above surface. The automation led to the systematic operation of the lidar during daily TROPOMI overpasses, providing more than 139 reference profiles since January?2018. Ozone profiles retrieved using the new lidar receiver were compared to ozonesonde profiles obtained from a co-located tethered balloon. An agreement of about 5?% with the ozonesonde down to an altitude range of 100?m a.g.l. was observed. Furthermore, the stability of the receiver configuration was investigated. Comparisons between the lowest point retrieved by the lidar and a co-located surface ozone photometer showed no sign of drift over a 2-month test period and an agreement better than 10?%. Finally, measurements from a 24?h intensive measurement period during a stratospheric intrusion event showed good agreement with two free-flying ozonesondes. These comparisons revealed localized differences between sonde and lidar, possibly owing to the differing vertical resolutions (between 52 and 380?m for lidar and about 100?m for the sonde).
机译:作为监测空气质量的国际努力的一部分,已计划在不久的将来部署一些卫星任务,例如对流层监测仪(TROPOMI),并计划其他任务,例如对流层排放:监测污染(TEMPO)。为了支持对这些任务的确认,最近对位于喷气推进实验室桌山设施(TMF)的对流层臭氧激光雷达进行了重大升级。这些修改包括系统的完全自动化,现在允许在频繁的卫星越过期间进行无人值守的测量,以及新的接收器,将系统的测量能力扩展到地面以下100微米。自动化导致激光雷达在每天TROPOMI立交期间进行系统化操作,自2018年1月以来提供了139多个参考曲线。将使用新型激光雷达接收器检索到的臭氧剖面与从同一位置的系留气球获得的臭氧探空仪剖面进行比较。与臭氧探空仪在低至100μma.g.l的高度范围内的一致性约为5%。被观测到。此外,研究了接收机配置的稳定性。激光雷达获得的最低点与同位表面臭氧光度计之间的比较表明,在2个月的测试期间内没有漂移的迹象,并且一致性好于10%。最后,在平流层侵入事件中经过24小时的密集测量期进行的测量表明,与两个自由飞行的臭氧探空仪有很好的一致性。这些比较表明,探空仪和激光雷达之间存在局部差异,这可能是由于垂直分辨率不同(激光雷达在52至380?m之间,而探空仪在100?m之间)。

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