Title :
Force control of semi-active valve lag dampers for vibration reduction in helicopters
Author :
Morales, R.M. ; Turner, Matthew C. ; Court, Peter ; Hilditch, Ross ; Postlethwaite, I.
Author_Institution :
Dept. of Eng., Univ. of Leicester, Leicester, UK
Abstract :
This study considers the design of a closed-loop force-tracking system for a semi-active damper, designed to be used to reduce in-plane vibrations caused by helicopter rotor blades during steady-state forward flight conditions. The study describes the development of the control law and includes details of (i) how the initial mathematical model of the system is adapted for controller design; (ii) how a non-linear dynamic inversion (NDI) control law is modified into a form suitable for implementation; and (iii) how the free parameters in the NDI controller can be optimised for various different operational modes. The success of the approach is demonstrated through both force-tracking simulations and also more comprehensive tests in which the controller is incorporated into a large-scale vibration simulation of the AgustaWestland 101 helicopter. The results show that the NDI-based controller can provide a satisfactory level of performance and hence greatly assist in the reduction of unwanted vibrations.
Keywords :
blades; closed loop systems; control system synthesis; force control; helicopters; nonlinear dynamical systems; rotors; shock absorbers; valves; vibration control; AgustaWestland 101 helicopter; NDI control law; NDI-based controller; closed-loop force-tracking system design; control law; controller design; force-tracking simulations; helicopter rotor blades; in-plane vibration reduction; initial mathematical model; large-scale vibration simulation; nonlinear dynamic inversion control law; operational modes; semiactive valve lag damper force control; steady-state forward flight conditions; unwanted vibration reduction; vibration reduction;
Journal_Title :
Control Theory & Applications, IET
DOI :
10.1049/iet-cta.2012.0397