Abstract
Drones have evolved rapidly over the decades, but the limited flight time inhibits multirotor drones from performing long-duration tasks. Batteries that power drones are considered an inadequate power source due to their low energy density. As gasoline is an energy-dense source, combining an electric propulsion system with gasoline engines should be considered. This paper proposes a novel hybrid multirotor drone design using two gasoline engines to provide the majority of the lift force and four electric motors to stabilize the drone. These propulsion systems have been characterized and optimized to exploit their respective advantages, which reduce the total energy consumption rate and increase flight time. Simulation and experimental results show that the hybrid gas–electric multirotor drone can achieve more than three times the flight time of the fully electric drone.
Funder
Michigan Space Grant Consortium
National Science Foundation
Reference47 articles.
1. Wu, Q., Zeng, Y., and Zhang, R. (2017, January 4–8). Joint trajectory and communication design for UAV-enabled multiple access. Proceedings of the GLOBECOM 2017—2017 IEEE Global Communications Conference, Singapore.
2. Fuel cells for airborne usage: Energy storage comparison;Ustolin;Int. J. Hydrogen Energy,2018
3. Hybrid fuel cell powered drones energy management strategy improvement and hydrogen saving using real flight test data;Boukoberine;Energy Convers. Manag.,2021
4. Experimental investigation of fuel cell usage on an air Vehicle’s hybrid propulsion system;Arat;Int. J. Hydrogen Energy,2020
5. Hybrid-electric propulsion integration in unmanned aircraft;Sliwinski;Energy,2017
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