Effect of Tool Rake Angle and Crystal Orientation on Ductile Mode Cutting of Hard/Brittle Materials
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Published:2020-03-05
Issue:2
Volume:14
Page:253-259
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ISSN:1883-8022
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Container-title:International Journal of Automation Technology
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language:en
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Short-container-title:IJAT
Author:
Abdelkawy Abdallah,Yoshino Masahiko,Nakagawa Yuki, ,
Abstract
The effects of negative rake angles on the ductile mode cutting of soda glass and sapphire were studied. In addition, the machining mechanism was studied using a groove-cutting model based on the orthogonal cutting theory. It was found that the specific cutting forces in ductile mode cutting increase on both the soda glass specimen and on the sapphire specimen when the rake angle of the tool becomes negative. The difference between the experimental data and theoretical data of the specific cutting forces becomes large when the tool has a high rake angle on the negative side. This is attributed to effects of the roundness of the edge, the effects of the roundness of the nose, and the plowing mechanism, which causes plastic flow of the work material to both sides of the groove. The specific cutting force of sapphire depends on the cutting direction against the crystal orientation. The specific cutting force of sapphire depends on the cutting direction in terms of the crystal orientation. The anisotropy of the cutting force of sapphire also depends on the rake angle of the tool.
Publisher
Fuji Technology Press Ltd.
Subject
Industrial and Manufacturing Engineering,Mechanical Engineering
Reference14 articles.
1. S. Y. Chou, P. R. Krauss, and P. J. Renstrom, “Imprint of sub-25 nm vias and trenches in polymers,” Appl. Phys. Lett., Vol.67, No.21, pp. 3114-3116, 1995. 2. A. Kosiorek, W. Kandulski, H. Glaczynska, and M. Giersig, “Fabrication of nanoscale rings, dots, and rods by combining shadow nanosphere lithography and annealed polystyrene nanosphere masks,” Small, Vol.1, No.4, pp. 439-444, 2005. 3. C. K. Chung, R. X. Zhou, T. Y. Liu, and W. T. Chang, “Hybrid pulse anodization for the fabrication of porous anodic alumina films from commercial purity aluminum at room temperature,” Nanotechnology, Vol.20, 055301, 2009. 4. D. Dornfeld, S. Min, and Y. Takeuchi, “Recent Advances in Mechanical Micromachining,” CIRP Annals, Vol.55, No.2, pp. 745-768, 2006. 5. T. G. Bifano, T. A. Dow, and R. O. Scattergood, “Ductile-Regime Grinding?: A New Technology for Machining Brittle Materials,” J. Eng. Ind., Vol.113, No.2, pp. 184-189, 1991.
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