Investigation of Period-Doubling Islands in Milling With Simultaneously Engaged Helical Flutes

Author:

Khasawneh Firas A.1,Bobrenkov Oleg A.2,Mann Brian P.3,Butcher Eric A.2

Affiliation:

1. Department of Engineering Mathematics, University of Bristol, Bristol, BS8 1TR, United Kingdom

2. Department of Mechanical and Aerospace Engineering, New Mexico State University, Las Cruces, NM 88003

3. Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708

Abstract

This paper investigates the stability of a milling process with simultaneously engaged flutes using the state-space TFEA and Chebyshev collocation methods. In contrast to prior works, multiple flute engagement due to both the high depth of cut and high step-over distance are considered. A particular outcome of this study is the demonstration of a different stability behavior in comparison to prior works. To elaborate, period-doubling regions are shown to appear at relatively high radial immersions when multiple flutes with either a zero or nonzero helix angle are simultaneously cutting. We also demonstrate stability differences that arise due to the parity in the number of flutes, especially at full radial immersion. In addition, we study other features induced by helical tools such as the waviness of the Hopf lobes, the sensitivity of the period-doubling islands to the radial immersion, as along with the orientation of the islands with respect to the Hopf lobes.

Publisher

ASME International

Subject

General Engineering

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1. Optimal milling cutter helix selection for period doubling chatter suppression;International Journal of Machine Tools and Manufacture;2024-11

2. Chatter detection in milling processes—a review on signal processing and condition classification;The International Journal of Advanced Manufacturing Technology;2023-02-07

3. Validation of variable helix milling instability islands;Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture;2021-06-01

4. Derived Nodes Approach for Improving Accuracy of Machining Stability Prediction;Journal of Vibration and Acoustics;2018-02-09

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