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May 6, 2026Atmosphere1 citationsOpen Access

Accuracy Assessment of Atmospheric Large Eddy Simulations to Support Uncrewed Aircraft Systems Operations at GrandSKY, North Dakota

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CWClaiborne WootonMCMounir ChritMMMarwa Majdi

Key Points

  • The aim is to evaluate the accuracy of large-eddy simulations to improve wind forecasting for UAS operations at GrandSKY, North Dakota.
  • Evaluated 40 m Large Eddy Simulations nested within mesoscale models
  • Used airborne observations from Meteodrone flights, satellite data, and ground-based measurements
  • Compared predictions of wind speed and direction during summer and winter
  • 40 m LES improved wind gust variability predictions compared to 1 km forecasts
  • Notable discrepancies in UAS flyability predictions resulted in up to 17% reduction in operational windows in summer
  • A 10–18% correction factor was identified to enhance TKE estimates in coarser mesoscale runs

Abstract

Severe and unpredictable wind conditions significantly disrupt flight safety, mission planning, and scheduling. Traditional wind forecasting methods rely on low-resolution mesoscale models or resource-intensive instrumentation. This study evaluates the accuracy of 40 m Large-Eddy Simulations (LESs), nested within a mesoscale framework, to better resolve hazardous wind phenomena over GrandSKY, North Dakota, the first large-scale commercial Uncrewed Aircraft System (UAS) test park in the United States, serving as a hub for UAS innovation and Beyond Visual Line of Sight operations. Using low-altitude airborne observations from Meteodrone flights, satellite data, and ground-based measurements, we assess the model’s accuracy in predicting wind speed and direction during both summer and winter. Results demonstrate that the 40 m LES provides improved predictions of wind gust variability compared to the 1 km forecast, and the impact on flight safety is quantified. The LES also reveals notable discrepancies in UAS flyability predictions, which result in up to a 17% reduction in operational windows during the summer. This study’s novelty lies in using a 40 m resolution LES nested within a 1 km WRF simulation, combined with multi-source observations, to resolve low-altitude turbulence and quantify its impact on UAS operations. A 10–18% correction factor can be applied to TKE (or derived wind variability) in coarser WRF runs to better estimate maximum wind speeds without LES. The findings highlight the potential of high-resolution LES modeling to support reliable UAS operations in weather-sensitive environments, laying the groundwork for broader integration of advanced simulation techniques in national airspace management systems.

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Cite This Study

Wooton et al. (2026) studied this question.

synapsesocial.com/papers/69faa28f04f884e66b5330cahttps://doi.org/10.3390/atmos17050468
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