Title :
High-Performance Control of Dual-Inertia Servo-Drive Systems Using Low-Cost Integrated SAW Torque Transducers
Author :
O´Sullivan, Tim M. ; Bingham, Chris M. ; Schofield, Nigel
Author_Institution :
Electr. Machines & Drives Group, Univ. of Sheffield
fDate :
6/1/2006 12:00:00 AM
Abstract :
This paper provides a systematic comparative study of compensation schemes for the coordinated motion control of two-inertia mechanical systems. Specifically, classical proportional-integral (PI), proportional-integral-derivative (PID), and resonance ratio control (RRC) are considered, with an enhanced structure based on RRC, termed RRC+, being proposed. Motor-side and load-side dynamics for each control structure are identified, with the "integral of time multiplied by absolute error" performance index being employed as a benchmark metric. PID and RRC control schemes are shown to be identical from a closed-loop perspective, albeit employing different feedback sensing mechanisms. A qualitative study of the practical effects of employing each methodology shows that RRC-type structures provide preferred solutions if low-cost high-performance torque transducers can be employed, for instance, those based on surface acoustic wave technologies. Moreover, the extra degree of freedom afforded by both PID and RRC, as compared with the basic PI, is shown to be sufficient to simultaneously induce optimal closed-loop performance and independent selection of virtual inertia ratio. Furthermore, the proposed RRC+ scheme is subsequently shown to additionally facilitate independent assignment of closed-loop bandwidth. Summary attributes of the investigation are validated by both simulation studies and by realization of the methodologies for control of a custom-designed two-inertia system
Keywords :
PI control; compensation; control system analysis; electric drives; feedback; motion control; servomechanisms; surface acoustic wave transducers; three-term control; torque; PI control; PID control; RRC; closed-loop bandwidth; compensation schemes; coordinated motion control; dual-inertia servo-drive system; load-side dynamics; low-cost integrated SAW torque transducers; motor-side dynamics; proportional-integral control; proportional-integral-derivative control; resonance ratio control; surface acoustic wave technologies; two-inertia mechanical systems; virtual inertia ratio; Control systems; Mechanical systems; Motion control; Pi control; Proportional control; Resonance; Surface acoustic waves; Three-term control; Torque control; Transducers; Acceleration control; motion control; resonance; surface acoustic wave (SAW) devices; torque control; velocity control; vibration control;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2006.878311