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Experimental Investigation of Cutting Vibration during Micro-End-Milling of the Straight Groove

机译:直槽微端面铣削中切削振动的实验研究

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摘要

Micro-end-milling is a cutting technology that removes redundant material from machined workpieces by small-diameter end mills, and is widely used to manufacture miniature complex parts. During micro-end-milling, the cutting vibration caused by weak tool rigidity and high spindle speed is known as a key factor for decreasing machined quality and accelerating tool failure. This study reports on experiments of micro-end-milling of the straight groove for AISI 1045 steel. The waveform characteristics of acceleration vibration were revealed, the relationship between acceleration and milling parameters were analyzed and two types of relationship models were developed. The results show that, during micro-end-milling of the straight groove, the components of acceleration vibration from largest to smallest are in turn the transverse acceleration , the feed acceleration and the axial acceleration . Compared with feed velocity and axial depth of cut , the spindle speed has the highest influence on cutting vibration. The response surface model of acceleration vibration was shown to have a higher prediction accuracy compared to the power function model and is more suitable for the prediction and control of cutting vibration during micro-end-milling.
机译:微型端铣削是一种切削技术,可通过小直径端铣刀从加工的工件中去除多余的材料,并广泛用于制造小型复杂零件。在微细铣削中,由于刀具刚性差和主轴转速高而引起的切削振动是降低加工质量和加速刀具故障的关键因素。这项研究报告了AISI 1045钢的直槽微端面铣削的实验。揭示了加速度振动的波形特征,分析了加速度与铣削参数之间的关系,建立了两种关系模型。结果表明,在直线槽的微端面铣削过程中,加速度振动从大到小的分量依次为横向加速度,进给加速度和轴向加速度。与进给速度和切削轴向深度相比,主轴速度对切削振动的影响最大。与功率函数模型相比,加速度振动的响应表面模型具有更高的预测精度,并且更适合于微细铣削过程中切削振动的预测和控制。

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