Crosbie Ewan, Brown Matthew D, Shook Michael, Ziemba Luke, Moore Richard H, Shingler Taylor, Winstead Edward, Lee Thornhill K, Robinson Claire, MacDonald Alexander B, Dadashazar Hossein, Sorooshian Armin, Beyersdorf Andreas, Eugene Alexis, Collett Jeffrey, Straub Derek, Anderson Bruce
NASA Langley Research Center, Hampton, VA 23666, USA.
Science Systems and Applications, Inc. Hampton, VA 23666, USA.
Atmos Meas Tech. 2018 Aug 31;11(9):5025-5048. doi: 10.5194/amt-11-5025-2018. Epub 2018 Sep 5.
A new aircraft-mounted probe for collecting samples of cloud water has been designed, fabricated, and extensively tested. Following previous designs, the probe uses inertial separation to remove cloud droplets from the airstream, which are subsequently collected and stored for offline analysis. We report details of the design, operation, and modelled and measured probe performance. Computational fluid dynamics (CFD) was used to understand the flow patterns around the complex interior geometrical features that were optimized to ensure efficient droplet capture. CFD simulations coupled with particle tracking and multiphase surface transport modelling provide detailed estimates of the probe performance across the entire range of flight operating conditions and sampling scenarios. Physical operation of the probe was tested on a Lockheed C-130 Hercules (fuselage mounted) and de Havilland Twin Otter (wing pylon mounted) during three airborne field campaigns. During C-130 flights on the final field campaign, the probe reflected the most developed version of the design and a median cloud water collection rate of 4.5 mL min was achieved. This allowed samples to be collected over 1-2 min under optimal cloud conditions. Flights on the Twin Otter featured an inter-comparison of the new probe with a slotted-rod collector, which has an extensive airborne campaign legacy. Comparison of trace species concentrations showed good agreement between collection techniques, with absolute concentrations of most major ions agreeing within 30 %, over a range of several orders of magnitude.
一种用于采集云水样本的新型机载探头已设计、制造并经过广泛测试。沿用先前的设计,该探头利用惯性分离从气流中去除云滴,随后将其收集并储存以供离线分析。我们报告了该探头的设计、操作以及建模和实测性能的详细情况。计算流体动力学(CFD)用于了解围绕复杂内部几何特征的流动模式,这些特征经过优化以确保高效捕获液滴。CFD模拟结合粒子跟踪和多相表面传输建模,可在整个飞行运行条件和采样场景范围内提供探头性能的详细估计。在三次机载野外作业期间,在洛克希德C - 130大力神运输机(安装在机身)和德哈维兰双水獭飞机(安装在机翼挂架)上对探头的实际操作进行了测试。在最后一次野外作业的C - 130飞行中,探头体现了最完善的设计版本,实现了4.5毫升/分钟的中位云水收集率。这使得在最佳云层条件下能够在1 - 2分钟内采集样本。在双水獭飞机上的飞行对新探头与具有广泛机载作业历史的开槽杆收集器进行了相互比较。痕量物种浓度的比较表明,两种收集技术之间具有良好的一致性,在几个数量级的范围内,大多数主要离子的绝对浓度相差在30%以内。