Automatic 5-Axis CNC Feedrate Selection via Discrete Mechanistic and Geometric Model Integration

Jeffrey G. Hemmett, B. K. Fussell, R. B. Jerard
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引用次数: 1

Abstract

The purpose of this research is to determine the feasibility of automatically generating adaptive feedrates for five-axis CNC end milling. The complicated geometries involved with multiaxis machining make it difficult to manually estimate acceptable feedrates without being overly conservative. Our strategy is to use a computer simulation of the machining process to estimate the feeds based on in-process cutting information. The simulation consists of two distinct portions: a discrete geometric model of the material removal process, and a discrete mechanistic model of the cutting forces involved. The mechanistic model estimates cutting forces as a function of material properties of the stock and cutting tool, cut geometry, and feedrate. Used in an inverse manner, the mechanistic model can estimate the feedrates necessary to maintain a constant cutting force. This force may be selected to maintain a desired part tolerance, or to meet some other criteria (e.g. machine constraints). The cut geometry information required by the inverse mechanistic model is provided by the geometric model of the material removal process. The geometric model also dynamically stores in-process stock geometry as the simulation progresses. The results of this research has shown that it is possible to automatically generate adaptive feeds using these combined models.
基于离散力学和几何模型集成的五轴数控进给速度自动选择
本研究的目的是确定自动生成五轴数控立铣削自适应进给速度的可行性。复杂的几何形状涉及到多轴加工,很难手动估计可接受的进给速度而不过于保守。我们的策略是利用计算机模拟加工过程,根据加工过程中的切削信息估计进给量。仿真包括两个不同的部分:材料去除过程的离散几何模型和所涉及的切削力的离散机械模型。该机械模型估计切削力是坯料和刀具的材料特性、切削几何形状和进给速度的函数。以相反的方式使用,机械模型可以估计维持恒定切削力所需的进给速度。这种力的选择可以保持所需的零件公差,或者满足一些其他标准(例如机器约束)。材料去除过程的几何模型提供了逆力学模型所需的切割几何信息。随着仿真的进行,几何模型还可以动态地存储在制品的几何形状。这项研究的结果表明,使用这些组合模型自动生成自适应提要是可能的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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