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TIME DOMAIN SIMULATION OF DYNAMIC CORNER MILLING PROCESS CONSIDERING CHATTER VIBRATION WITH FINITE AMPLITUDE

机译:电动角铣过程的时域模拟考虑有限振幅的喋喋不休振动

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A number of analysis methods for the process with chatter vibration have been proposed so far. These methods can be used to improve processes stability resulting in better production efficiency. However, the poor estimation accuracy of the phenomenon severely limits the performance of process optimization using the simulation-assisted approach. One of the causes of accuracy deterioration is the modeling error of the phenomenon accompanied by chatter vibration with finite amplitude. In this study, we developed a model that can consider the non-linear uncut chip thickness fluctuation caused by the influence of finite amplitude and the process damping due to the contact of the tool flank face against the finished workpiece surface. Furthermore, we developed a time domain simulator that implements the proposed model, and estimated the finished surface profile of the workpiece based on the results of the time domain simulation. To verify the proposed method, corner machining experiments with an end mill were conducted. Corner machining is frequently used in industrial, but it is known that chatter vibration is likely to occur. In corner machining, machine tools generate motions that accompany acceleration and deceleration. The motion of this feed drive system strongly depends on the dynamic characteristics of the machine tool and the trajectory generation algorithm, which greatly affects the emersion angle of the cutter Therefore, we simulated the dynamic corner machining process considering the measured data of the motion trajectory of the feed drive system. The estimation result of chatter vibration in corner machining is in good agreement with the measurement result of the machining process. In addition, high-precision estimation of the machined surface profile with chatter mark has been realized.
机译:到目前为止,已经提出了许多用于颤动振动的过程的分析方法。这些方法可用于改善工艺稳定性,从而提高生产效率。然而,现象的估计准确性差异严重限制了使用模拟辅助方法的过程优化的性能。精度劣化的原因之一是现象的建模误差伴随着具有有限幅度的颤振振动。在这项研究中,我们开发了一种模型,可以考虑由有限幅度的影响和由于工具侧面孔对成品工件表面的接触而引起的非线性未切割芯片厚度波动。此外,我们开发了一种时域模拟器,其实现所提出的模型,并基于时域模拟的结果估计工件的成品表面轮廓。为了验证所提出的方法,进行了拐角加工实验与终端磨机进行。转角加工经常用于工业,但众所周知,可能发生颤振振动。在转弯加工中,机床产生伴随加速和减速的运动。该进料驱动系统的运动强烈取决于机床的动态特性和轨迹生成算法,这极大地影响了切割器的变形角,因此我们考虑了考虑测量的运动轨迹的测量数据的动态拐角加工过程饲料驱动系统。拐角机加工中颤动振动的估计结果与加工过程的测量结果非常一致。此外,已经实现了用颤振标记的加工表面轮廓的高精度估计。

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