Abstract

Regenerative chatter has a fatal influence on machine performance in high-speed milling process. Basically, machine condition without chattering can be selected from the stability lobes diagram, which is estimated from the tool point frequency response function (FRF). However, measurements of the tool point FRF would be a complicated and time-consuming task with less efficiency. Therefore prediction of the tool point FRF is of importance for further calculation of the machining stability. This study employed the receptance coupling analysis method to predict the FRF of a tool holder-tool module, which is normally composed of substructures, tool holder and cutter with different length. In this study, the angular components of FRFs of the substructures required for coupling operation were predicted by finite element analysis, apart from the translational components measured by vibration experiments. Using this method, the effects of the overhang length of the cutter on the dynamic characteristics have been proven and successfully verified by the experimental measurements. The proposed method can be an effective way to accurately predict the dynamic behavior of the spindle tool system with different tool holder-tool modules.

Highlights

  • According to cutting mechanics, the occurrence of chatter is considered to be caused by self-excited vibration phenomena from the interactions of dynamics of machine tool structure and machining process [1,2,3]

  • A number of studies based on the receptance coupling substructure analysis (RCSA) method have been performed to predict the tool point frequency response functions and machining stability [5,6,7,8]

  • This paper presents predictions of the frequency response function (FRF) of the tool holder-tool assembly by using the receptance coupling operation method

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Summary

Coupling Method

Prediction of the tool point FRF is of importance for further calculation of the machining stability. This study employed the receptance coupling analysis method to predict the FRF of a tool holder-tool module, which is normally composed of substructures, tool holder and cutter with different length. The angular components of FRFs of the substructures required for coupling operation were predicted by finite element analysis, apart from the translational components measured by vibration experiments. Using this method, the effects of the overhang length of the cutter on the dynamic characteristics have been proven and successfully verified by the experimental measurements.

INTRODUCTION
BASIC THEORY OF RECEPTANCE COUPLING METHOD
EXPERIMENTAL MEASUREMENT OF FRFS
Estimation of the Receptance Compliance Matrix
Findings
CONCLUSIONS
Full Text
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