Intercomparison of Small Unmanned Aircraft System (sUAS) Measurements for Atmospheric Science during the LAPSE-RATE Campaign

Author:

Barbieri LindsayORCID,Kral StephanORCID,Bailey SeanORCID,Frazier AmyORCID,Jacob JameyORCID,Reuder JoachimORCID,Brus DavidORCID,Chilson PhillipORCID,Crick ChristopherORCID,Detweiler CarrickORCID,Doddi Abhiram,Elston JackORCID,Foroutan HoseinORCID,González-Rocha JavierORCID,Greene BrianORCID,Guzman MarceloORCID,Houston AdamORCID,Islam AshrafulORCID,Kemppinen OskuORCID,Lawrence Dale,Pillar-Little ElizabethORCID,Ross ShaneORCID,Sama MichaelORCID,Schmale DavidORCID,Schuyler Travis,Shankar Ajay,Smith SuzanneORCID,Waugh Sean,Dixon Cory,Borenstein Steve,de Boer GijsORCID

Abstract

Small unmanned aircraft systems (sUAS) are rapidly transforming atmospheric research. With the advancement of the development and application of these systems, improving knowledge of best practices for accurate measurement is critical for achieving scientific goals. We present results from an intercomparison of atmospheric measurement data from the Lower Atmospheric Process Studies at Elevation—a Remotely piloted Aircraft Team Experiment (LAPSE-RATE) field campaign. We evaluate a total of 38 individual sUAS with 23 unique sensor and platform configurations using a meteorological tower for reference measurements. We assess precision, bias, and time response of sUAS measurements of temperature, humidity, pressure, wind speed, and wind direction. Most sUAS measurements show broad agreement with the reference, particularly temperature and wind speed, with mean value differences of 1.6 ± 2.6 ∘ C and 0.22 ± 0.59 m/s for all sUAS, respectively. sUAS platform and sensor configurations were found to contribute significantly to measurement accuracy. Sensor configurations, which included proper aspiration and radiation shielding of sensors, were found to provide the most accurate thermodynamic measurements (temperature and relative humidity), whereas sonic anemometers on multirotor platforms provided the most accurate wind measurements (horizontal speed and direction). We contribute both a characterization and assessment of sUAS for measuring atmospheric parameters, and identify important challenges and opportunities for improving scientific measurements with sUAS.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference64 articles.

1. The Future of Atmospheric Boundary Layer Observing, Understanding, and Modeling: Proceedings of a Workshop,2018

2. Considerations for Atmospheric Measurements with Small Unmanned Aircraft Systems

3. Radio controlled small aircraft as measurement platform for meteorological sensors, discussing development and performance from field tests;Hill;Appl. Tech. Dig.,1970

4. A small, radio-controlled aircraft as a platform for meteorological sensors;Konrad;Appl. Tech. Dig.,1970

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