DocumentCode :
2287959
Title :
Vibration control for machining using H techniques
Author :
Marra, Michael A. ; Walcott, Bruce L. ; Rouch, Keith E. ; Tewani, Sanjiv G.
Author_Institution :
Dept. of Electr. Eng., Kentucky Univ., Lexington, KY, USA
fYear :
1995
fDate :
26-29 Mar 1995
Firstpage :
436
Lastpage :
442
Abstract :
A robust control design is developed to minimize a system´s response to unknown disturbances. The method consists of on-line identification of the system´s state space equations coupled with an H -optimal controller design. The H controller is designed such that the maximum of the system´s closed-loop transfer function is less than γ, where γ is a positive design variable chosen as the upper bound on the H norm of the closed-loop system. This robust controller is used to eliminate vibrations in cutting operations of a boring bar with an active dynamic absorber, a boring bar is a metal cutting tool with a large overhang (length-to-diameter ratio). Due to this large overhang, a typical boring bar is characterized by a low dynamic stiffness and is therefore susceptible to excessive vibrations during the cutting process. These vibrations often lead to cutting instability, known as machine tool chatter. In this paper, the control of vibrations of a boring bar with an active dynamic absorber is studied. The robustness of the H-optimal controller is demonstrated by varying the system´s dynamic characteristics (i.e, changing the length-to-diameter ratio of the boring bar) without adjusting the calculated control parameters. The results obtained for the H case are compared to similar results for linear quadratic regulator control design
Keywords :
H control; closed loop systems; controllers; cutting; identification; machining; manufacture; robust control; state-space methods; transfer functions; vibration control; H controller; H techniques; active dynamic absorber; boring bar; closed-loop transfer function; cutting instability; cutting operations; dynamic characteristics; linear quadratic regulator control design; low dynamic stiffness; machine tool chatter; machining; on-line identification; optimal controller design; robust control design; state space equations; unknown disturbances; upper bound; vibration control; Control systems; Cutting tools; Equations; Machine tools; Machining; Robust control; State-space methods; Transfer functions; Upper bound; Vibration control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Southeastcon '95. Visualize the Future., Proceedings., IEEE
Conference_Location :
Raleigh, NC
Print_ISBN :
0-7803-2642-3
Type :
conf
DOI :
10.1109/SECON.1995.513132
Filename :
513132
Link To Document :
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