Aggressive Spiral Toolpaths for Pocket Machining Based on Medial Axis Transformation

Author:

Huang Nuodi1,Lynn Roby2,Kurfess Thomas3

Affiliation:

1. School of Power and Mechanical Engineering, Wuhan University, Wuhan 430072, China e-mail:

2. George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332 e-mail:

3. Mem. ASME George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332 e-mail:

Abstract

High-speed machine tools typically provide high spindle speeds and feedrates to achieve an effective material removal rate (MRR). However, it is not possible to realize the full extent of their high-speed capabilities due to the sharp corners of toolpaths which are introduced by conventional machining strategies, such as contour- and direction-parallel toolpaths. To address this limitation, spiral toolpaths that can reduce the magnitude of sudden direction changes have been developed in previous researches. Nevertheless, for some pockets, the average radial cutting width is significantly decreased while the total length of the toolpath is significantly increased as compared to contour- and direction-parallel toolpath. In this situation, spiral toolpath may take more machining time. To overcome these drawbacks, an aggressive spiral toolpath generation method based on the medial axis (MA) transformation is proposed in machining pocket without islands inside, which refers to no additional material inside the counter. The salient feature of this work is that it integrates the advantages of both conventional contour-parallel machining strategy and the existing spiral toolpath machining strategy. The cutting width at each MA point is determined based on the diameter of the locally inscribed circle (LIC) of the MA point and the topological structure of MA. A distance-constrained contour determination algorithm is utilized to calculate the toolpath for each pass. Finally, a circular arc transition strategy is used to transform all the isolated passes into a spiral toolpath. Experiments are conducted to show the effectiveness of the proposed method.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

Reference25 articles.

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2. Analytical Curvature-Continuous Dual-Bézier Corner Transition for Five-Axis Linear Tool Path;Int. J. Mach. Tools Manuf.,2015

3. Tool Path Generation for Multi-Axis Freeform Surface Finishing With the LKH TSP Solver;Comput.-Aided Des.,2015

4. A New Geometric-and-Physics Model of Milling and an Effective Approach to Medial Axis Transforms of Free-Form Pockets for High Performance Machining,2010

5. Using Clothoidal Spirals to Generate Smooth Tool Paths for High Speed Machining,2004

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