Title :
Robust Active Chatter Control in the High-Speed Milling Process
Author :
Van Dijk, Niels J M ; van de Wouw, N. ; Doppenberg, Ed J J ; Oosterling, Han A J ; Nijmeijer, Henk
fDate :
7/1/2012 12:00:00 AM
Abstract :
Chatter is an instability phenomenon in machining processes which limits productivity and results in inferior workpiece quality, noise and rapid tool wear. The increasing demand for productivity in the manufacturing community motivates the development of an active control strategy to shape the chatter stability boundary of manufacturing processes. In this work a control methodology for the high-speed milling process is developed that alters the chatter stability boundary such that the area of chatter-free operating points is increased and a higher productivity can be attained. The methodology developed in this paper is based on a robust control approach using -synthesis. Hereto, the most important process parameters (depth of cut and spindle speed) are treated as uncertainties to guarantee the robust stability (i.e., no chatter) in an a priori specified range of these process parameters. Effectiveness of the proposed methodology is demonstrated by means of illustrative examples.
Keywords :
control nonlinearities; milling; milling machines; nonlinear control systems; process control; product quality; productivity; robust control; uncertain systems; wear; μ-synthesis; chatter stability boundary; chatter-free operating points; high-speed milling process; inferior work-piece quality; instability phenomenon; machining processes; manufacturing processes; noise rapid tool wear; process parameters; productivity; robust active chatter control; robust stability; uncertainty; Actuators; Dynamics; Force; Mathematical model; Milling; Process control; Stability analysis; Active control; delay systems; high-speed milling; machining chatter; magnetic bearings; robust controller synthesis;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2011.2157160