Title :
Toward an Accurate Physics-Based UAV Thruster Model
Author :
Khan, Waseem ; Nahon, Meyer
Author_Institution :
Dept. of Mech. Eng., McGill Univ., Montreal, QC, Canada
Abstract :
Small unmanned aerial vehicles (UAVs) come in many types, the most common being fixed-wing and rotorcraft. Most of these are powered by brushless dc motors driving fixed-pitch propellers. Since the thrusters are typically quite powerful, relative to the weight of the aircraft, the motion of these UAVs is usually dominated by the thruster dynamics. It therefore becomes particularly important to have a good model of the thruster, which can be assembled based on simple measurements of the system properties, rather than from exhaustive testing. This paper presents such a model. The governing equations are assembled by considering, in succession, the motor electrodynamics and the propeller aerodynamics. The results of the model are compared to experimental test results for a particular thruster assembly. Agreement between the two is excellent-with an error of 4.7% in thrust and 7.6% in torque under static conditions-thereby demonstrating the validity of the proposed approach.
Keywords :
aerodynamics; aerospace components; aerospace propulsion; autonomous aerial vehicles; brushless DC motors; electrodynamics; propellers; robot dynamics; torque; brushless DC motors; fixed-pitch propellers; governing equations; motor electrodynamics; physics-based UAV thruster model; propeller aerodynamics; static conditions; thruster dynamics; torque; unmanned aerial vehicles; Aerospace simulation; aircraft propulsion; brushless motors; unmanned aerial vehicles;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2013.2264105