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A COUPLED THEORETICAL-EXPERIMENTAL DYNAMICAL MODEL FOR CHATTER PREDICTION IN MILLING PROCESSES

机译:铣削过程中颤振预测的理论-实验耦合动力学模型

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摘要

Productivity of high speed milling operations can be seriously limited by chatter occurrence. Several studies on this self-excited vibration can be found in the literature: simple models (1 or 2 dofs) are proposed, I.e. a lumped parameter model of the milling machine being excited by regenerative, time-varying cutting forces. In this study, a model of the milling machine is proposed: the machine frame and the spindle were modeled by an experimentally evaluated modal model, while the tool was modeled by a discrete modal approach, based on the continuous beam shape analytical eigenfunctions. The regenerative cutting force components lead to a set of Delay Differential Equations (DDEs) with periodic coefficients; DDEs were numerically integrated for different machining conditions. The stability lobe charts were evaluated using the semi-discretization method [6-7] that was extended to n dofs models (with n >2). Differences between the stability charts obtained by the low dofs models and the stability charts obtained by the new n dofs model are pointed out. Time histories and spectra related to the vibratory behavior of the system were numerically obtained to verify the effectiveness of the stability charts obtained with the n dofs modal model.
机译:颤振的出现会严重限制高速铣削加工的生产率。关于这种自激振动的一些研究可以在文献中找到:提出了简单模型(1或2自由度),即铣床的集总参数模型被再生的时变切削力激发。在这项研究中,提出了铣床的模型:基于连续梁形状分析特征函数,通过实验评估的模态模型对机架和主轴进行建模,而通过离散模态方法对刀具进行建模。再生切削力分量导致了一组具有周期系数的延迟微分方程(DDE)。 DDE在数值上集成了不同的加工条件。使用半离散化方法[6-7]评估了稳定性波瓣图,该方法已扩展到n个dofs模型(n> 2)。指出了通过低自由度模型获得的稳定性图与通过新的n自由度模型获得的稳定性图之间的差异。数值获得了与系统振动行为有关的时间历史和频谱,以验证使用n自由度模态模型获得的稳定性图的有效性。

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