Analytical Chatter Stability of Milling With Rotating Cutter Dynamics at Process Damping Speeds

Author:

Eynian M.1,Altintas Y.1

Affiliation:

1. Department of Mechanical Engineering, Manufacturing Automation Laboratory, University of British Columbia, Vancouver, BC V6T1Z4, Canada

Abstract

Abstract This paper presents a chatter stability prediction method for milling flexible workpiece with end mills having asymmetric structural dynamics. The dynamic chip thickness regenerated by the vibrations of the rotating cutter and the fixed workpiece is transformed into the principle modal directions of the rotating tool. The process damping is modeled as a linear function of vibration velocity. The dynamics of the milling system is modeled by a time delay matrix differential equation with time varying directional factors and speed dependent elements. The periodic directional factors are averaged over a spindle period, and the stability of the resulting time invariant but speed dependent characteristic equation of the system is investigated using the Nyquist stability criterion. The stability model is verified with time domain numerical simulations and milling experiments.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

Reference22 articles.

1. The Relation Between the Static and the Dynamic Cutting of Metals;Das;Int. J. Mach. Tool Des. Res.

2. Analysis of State of Research in Cutting Dynamics;Tlusty;CIRP Ann.

3. Current Trends in High-Speed Machining;Smith;ASME J. Manuf. Sci. Eng.

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