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复杂零件四轴粗铣中底边切削建模的一种新方法及其在进给速度优化中的应用

A New Approach of Modelling Bottom Edge Cutting in 4-Axis Rough Milling of Complex Parts and Its Application on Feed Rate Optimization.

作者信息

Zhao Jie, Chang Zhiyong

机构信息

School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China.

Institute for Aero-Engine Smart Assembly of Shaanxi Province, Xi'an 710072, China.

出版信息

Micromachines (Basel). 2022 Nov 25;13(12):2071. doi: 10.3390/mi13122071.

Abstract

Complex mechanical parts such as a blisk of aero-engines are commonly used in aerospace industry. These parts are complex in shape and their rough machining are conducted in 4-axis machine tools with end mills. The end mills are fully engaged into the workpiece material to be removed. Because of the complex cutter motion in 4-axis milling, the bottom edges of the end mills are involved in cutting with high possibility, resulting in an undesirable increase of cutting forces, tool deflection, and quick tool wear. To address this technical challenge, an analytical method is proposed to identify and evaluate the bottom edge cutting in 4-axis milling in this work. The motion of the cutter's tool tip with respect to the workpiece is analyzed and the equations are formulated based on a basic interpolation algorithm. An approach to identifying and evaluating the bottom edge cutting is proposed. The increment of the cutting forces caused by the bottom edge cutting is taken into consideration to precisely evaluate the overall cutting forces. A feed rate optimization model is then established to control the cutting forces. The simulation and the experiment of rough milling of a blisk verify that the bottom edge cutting can be identified and the cutting force can be controlled by optimizing the feed rates without losing much machining efficiency.

摘要

诸如航空发动机整体叶盘之类的复杂机械零件在航空航天工业中普遍使用。这些零件形状复杂,其粗加工在配备立铣刀的四轴机床上进行。立铣刀完全切入待去除的工件材料。由于四轴铣削中刀具运动复杂,立铣刀的底边很可能参与切削,导致切削力、刀具偏斜和刀具快速磨损等不良情况增加。为应对这一技术挑战,本文提出一种分析方法来识别和评估四轴铣削中的底边切削。分析了刀具刀尖相对于工件的运动,并基于基本插补算法制定了相关方程。提出了一种识别和评估底边切削的方法。考虑到底边切削引起的切削力增量,以精确评估整体切削力。然后建立进给率优化模型来控制切削力。整体叶盘粗铣的仿真和实验验证了可以识别底边切削,并且通过优化进给率可以控制切削力,同时不会损失太多加工效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26b3/9785818/95ec622c046a/micromachines-13-02071-g001.jpg

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