Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter
Abstract
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Abstract
1. Introduction
2. Design of the Revolving Cycloid Milling Cutter
2.1. Establishment and Simulation of Geometric Model for the Revolving Cycloid Milling Cutter
2.2. Comparison of Cutting States of the Revolving Cycloid Milling Cutter and the Ball-end Milling Cutter
3. Fabrications and Detection of the Revolving Cycloid Milling Cutter
3.1. Establishment of the Grinding Model for the Rake Face of the Revolving Cycloid Milling Cutter
3.2. Study on the Fabrication and Testing of the Revolving Cycloid Milling Cutter
4. Study on the Cutting Performance of the Revolving Cycloid Milling Cutter
4.1. Test Conditions
4.2. Results and Discussion
4.2.1. Effects of Tool Wear on Cutting Force
4.2.2. Tool Wear
4.2.3. Effects of Tool Wear on Machining Surface Topography
5. Conclusions
- Based on the established mathematical model of the contour surface of the revolving cycloid milling cutter, a parametric equation of the orthogonal helix cutting edge has been proposed to numerically simulate the established contour and edge line model. Advantages of the revolving cycloid milling cutter over the equivalent cutting helix angle and the scallop height of the workpiece surface have been proved by simulated results.
- The bottom boundary curve of the rake face was introduced. Based on the cutting edge equation and coordinate transformation, the five-axis grinding trajectory equation of the revolving cycloid milling cutter for rake face has been derived. The studies on grinding and detection of revolving cycloid milling cutter were carried out, and the quantitative evaluation of the grinding accuracy of the developed cutter was realized.
- Tests on the cutting force of the cutting titanium alloy TC11 of the revolving cycloid milling cutter and the ball-end milling cutter were studied comparatively. It can be found that the revolving cycloid milling cutter can significantly lower the axial force, the tangential force and the ratio of the axial force to the tangential force. Even under tool wear conditions, its cutting forces in all directions were increased slowly, showing excellent cutting stability.
- Compared with the ball-end milling cutter, the wear land of the revolving cycloid milling cutter in the cutting titanium alloy TC11 was narrow and long. As the wear sped up, the spoon-shaped wear gathering zone found in the ball-end milling cutter did not happen to the revolving cycloid milling cutter. The machining quality of the revolving cycloid milling cutter was relatively ideal.
Author Contributions
Funding
Conflicts of Interest
References
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Wang, G.; Liu, X.; Gao, W.; Yan, B.; Chen, T. Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter. Appl. Sci. 2019, 9, 2915. https://doi.org/10.3390/app9142915
Wang G, Liu X, Gao W, Yan B, Chen T. Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter. Applied Sciences. 2019; 9(14):2915. https://doi.org/10.3390/app9142915
Chicago/Turabian StyleWang, Guangyue, Xianli Liu, Weijie Gao, Bingxin Yan, and Tao Chen. 2019. "Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter" Applied Sciences 9, no. 14: 2915. https://doi.org/10.3390/app9142915
APA StyleWang, G., Liu, X., Gao, W., Yan, B., & Chen, T. (2019). Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter. Applied Sciences, 9(14), 2915. https://doi.org/10.3390/app9142915