Affiliation:
1. Vehicle Research Center, School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China
2. Beijing Institute of Technology Chongqing Innovation Center, Chongqing 401120, China
Abstract
Compared to detection methods employed by Mars rovers and orbiters, the employment of Mars UAVs presents clear advantages. However, the unique atmospheric conditions on Mars pose significant challenges to the design and operation of such UAVs. One of the primary difficulties lies in the impact of the planet’s low air density on the aerodynamic performance of the UAV’s rotor system. In order to determine the aerodynamic characteristics of the rotor system in the Martian atmospheric environment, a rotor system suitable for the Martian environment was designed under the premise of fully considering the special atmospheric environment of Mars, and the aerodynamic characteristics of the rotor system in the compressible and ultra-low Reynolds number environment were numerically simulated by means of a numerical calculation method. Additionally, a bench experiment was conducted in a vacuum chamber simulating the Martian atmospheric environment, and the aerodynamic characteristics of the UAV rotor system in the Martian environment were analyzed by combining theory and experiments. The feasibility of the rotor system applied to the Martian atmospheric environment was verified, and the first generation of Mars unmanned helicopters was developed and validated via hovering experiments, which thereby yielded crucial data support for the design of subsequent Mars UAV models.
Funder
National Natural Science Foundation of China
National key research and development program
National Natural Science Foundation of Chongqing
Natural Science Foundation of Chongqing, China
Subject
Artificial Intelligence,Computer Science Applications,Aerospace Engineering,Information Systems,Control and Systems Engineering
Reference32 articles.
1. Petritoli, E., and Leccese, F. (2021). Unmanned Autogyro for Mars Exploration: A Preliminary Study. Drones, 5.
2. Development of deep space exploration and its future key technologies;Wu;J. Deep Space Explor.,2014
3. Design of a Martian autonomous rotary-wing vehicle;Datta;J. Aircr.,2015
4. Aeromechanical Analysis of a Next-Generation Mars Helicopter Rotor;Chi;J. Aircr.,2022
5. Ruiz, M.C., and D’Ambrosio, D. (2023). Aerodynamic optimization and analysis of quadrotor blades operating in the Martian atmosphere. Aerosp. Sci. Technol., 132.
Cited by
5 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献