Title :
Modelling and Control of a Multi-Mass Ultrasonic Motor for Airborne Applications
Author :
Wetzel, H. ; Frohleke, N. ; Bocker, J. ; Ouchouche, S. ; Bezanere, D. ; Cugnon, F.
Author_Institution :
Inst. of Power Electron. & Electr. Drives, Paderborn Univ.
Abstract :
Environmental and fire risks together with high maintenance costs are the main drivers in recent years to replace hydraulic actuators in aircrafts by electromechanical actuators. Unluckily, a solution based on electromagnetic motors with reduction gears results in increased weight and electrical peak power of the drive train for typical brake requirements. A promising actuator candidate with high torque and low inertia for airborne applications is the multi-mass ultrasonic motor (MM-USM) derived from the well known travelling-wave type motor (TW-USM). This contribution focuses on the modelling of the MM-USM and proposes a control concept for this motor as drive component of a novel airborne brake actuator: after outlining the operational principle of the motor, a mechanical model is presented, which incorporates sliding and sticking operations of the friction contact. A first validation of the motor model via FEA calculations is supplementing this paper
Keywords :
aircraft; electromagnetic actuators; finite element analysis; motor drives; ultrasonic motors; FEA calculations; airborne applications; drive component; electromagnetic motors; electromechanical actuators; hydraulic actuators; multimass ultrasonic motor; sliding operations; sticking operations; travelling-wave type motor; Aircraft; Costs; Fires; Friction; Gears; Hydraulic actuators; Rotors; Stators; Torque; Wheels;
Conference_Titel :
IEEE Industrial Electronics, IECON 2006 - 32nd Annual Conference on
Conference_Location :
Paris
Print_ISBN :
1-4244-0390-1
DOI :
10.1109/IECON.2006.347839