Gusts Encountered by Flying Vehicles in Proximity to Buildings
Abstract
:1. Background and Objectives
2. Turbulence
3. Prior Gust Models
4. Turbulence Experienced by Moving Vehicles (Relative Turbulence)
5. Relevant Gust Characteristics
6. Gust Taxonomy
7. Severe Gusts around Buildings: Case Studies
7.1. Flight Trajectory Modelling
7.2. Estimations of Perceived Gust for Fixed-Wing
7.3. Estimations of Perceived Gust for a Rotor
7.4. Airframe Design and Certification Considerations
- “Operating in close proximity to obstructions can lead to recirculation and loss of performance. Aerodromes, geographically situated in hilly, mountainous areas, including certain coastal regions, can be subject to hazardous turbulent conditions in moderate to strong wind conditions. Pilots should be aware that, in certain cases, aircraft performance can be severely affected. History has shown, in extreme cases, that turbulence has prevented the aircraft from climbing or being controlled near the ground and has also caused structural damage”.
- “In winds below 15 kts, the turbulence may be experienced in the lee of an obstruction, vertically to about one third higher than the height of the obstruction. Above 20 kts, turbulence may be experience on the leeward side of an obstruction to a distance of 10–15 times the obstruction height and up to twice the obstruction height above the ground”.
- “During take-off or landing in gusty wind situations where wind shear is likely to be present, may require a greater power margin to deal with varying power demands or an unexpected loss of airspeed and accompanying sink. Large anti-torque pedal inputs to maintain directional control also act to reduce the excess power available”.
7.5. Vertiport Design and Certification Considerations
8. Concluding Remarks
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Parameter | Specification | |
---|---|---|
Delivery Drone | Advanced Air Mobility Vehicle | |
MTOW | 4 kg | 1683 kg |
Disk Loading | 14.14 kg/m2 | 35.68 kg/m2 |
Configuration | Quadrotor | Octorotor |
Rotor Size (diameter) | 0.3 m | 2.74 m |
Flight Velocities | 5 ms−1, 15 ms−1 | 5 ms−1, 15 ms−1 |
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Mohamed, A.; Marino, M.; Watkins, S.; Jaworski, J.; Jones, A. Gusts Encountered by Flying Vehicles in Proximity to Buildings. Drones 2023, 7, 22. https://doi.org/10.3390/drones7010022
Mohamed A, Marino M, Watkins S, Jaworski J, Jones A. Gusts Encountered by Flying Vehicles in Proximity to Buildings. Drones. 2023; 7(1):22. https://doi.org/10.3390/drones7010022
Chicago/Turabian StyleMohamed, Abdulghani, Matthew Marino, Simon Watkins, Justin Jaworski, and Anya Jones. 2023. "Gusts Encountered by Flying Vehicles in Proximity to Buildings" Drones 7, no. 1: 22. https://doi.org/10.3390/drones7010022
APA StyleMohamed, A., Marino, M., Watkins, S., Jaworski, J., & Jones, A. (2023). Gusts Encountered by Flying Vehicles in Proximity to Buildings. Drones, 7(1), 22. https://doi.org/10.3390/drones7010022