Improvement of Chip Breaking in Machining Low Carbon Steel by Cryogenically Precooling the Workpiece

Author:

Ding Y.1,Hong S. Y.1

Affiliation:

1. Department of Mechanical Engineering, Columbia University, New York, NY 10027-6699

Abstract

Ductile materials such as AISI1008 low carbon steel characteristically exhibit poor chip breaking in conventional machining practices. This paper presents an environmentally clean cryogenic machining process which improves the breakability of AISI1008 chips by lowering the chip temperature to its embrittlement temperature. In this study, the brittle-ductile transition temperature of AISI1008 was experimentally determined to be between −60°C and −120°C. The discussion is focused on whether the chip can reach the embrittlement temperature before it hits an obstacle. A finite element simulation predicted the chip temperatures under various cutting conditions. Liquid nitrogen (LN2) was used to prechill the workpiece cryogenically. The results from the cutting tests indicate a significant improvement in chip breakability for different feeds and speeds by using this cooling technique. However, the effectiveness of cryogenetically prechilling the workpiece was found to be heavily dependent on cutting speed.

Publisher

ASME International

Subject

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

Reference24 articles.

1. Zhao, Z., and Hong, S. Y., “Cooling Strategies for Cryogenic Machining from Materials Viewpoint,” J. Mater. Eng and Performance, Vol. 1, No. 5, 1992.

2. Uehara, K., and Kumagai, S., “Chip Formation, Surface Roughness and Cutting Force in Cryogenic Machining,” Annals of the CIRP, Vol. 17, No. 1, 1968.

3. Hong, Shane, “Advancement of Economical Cryogenic Machining Technology,” Proc. Third International Conference on Manufacturing Technology, Dec. 13–16, 1995, Hong Kong. pp. 168–173.

4. Jawahir I. S. , and van LutterveltC. A., “Recent Developments in Chip Control Research and Applications,” Annals of the CIRP, Vol. 42, No. 2, pp. 659–693, 1993.

5. Stabler, G. V., “The Fundamental Geometry of the Cutting Process,” Proc. Instn. of Mech. Engr, Vol. 165, No. 14, 1951.

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