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Simulation of low rigidity part machining applied to thin-walled structures
Author(s) -
Lionel Arnaud,
Óscar Gonzalo,
Sébastien Seguy,
Haritz Jauregi,
Grégoire Peigne
Publication year - 2010
Publication title -
the international journal of advanced manufacturing technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.946
H-Index - 124
eISSN - 1433-3015
pISSN - 0268-3768
DOI - 10.1007/s00170-010-2976-9
Subject(s) - machining , rigidity (electromagnetism) , vibration , finite element method , mechanical engineering , enhanced data rates for gsm evolution , machine tool , engineering , structural engineering , frequency domain , computer science , acoustics , telecommunications , physics , computer vision
The aim of this study is to evaluate the modelling of machining vibrations of thin-walled aluminium work- pieces at high productivity rate. The use of numerical simulation is generally aimed at giving optimal cutting conditions for the precision and the surface finish needed. The proposed modelling includes all the ingredients needed for real productive machining of thin-walled parts. It has been tested with a specially designed machining test with high cutting engagement and taking into account all the phenomena involved in the dynamics of cutting. The system has been modelled using several simulation techni- ques. On the one hand, the milling process was modelled using a dynamic mechanistic model, with time domain simulation. On the other hand, the dynamic parameters of the system were obtained step by step by finite element analysis; thus the variation due to metal removal and the cutting edge position has been accurately taken into account. The results of the simulations were compared to those of the experiments; the discussion is based on the analysis of the cutting forces, the amplitude and the frequency of the vibrations evaluating the presence of chatter. The specific difficulties to perfect simulation of thin-walled workpiece chatter have been finely analysed

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