Study on Milling Deformation of Ruled Surface Blade

Article Preview

Abstract:

Integral impeller is the key component in aviation, aerospace and other fields, and the deformation has an important effect to the machining quality and precision of the integral impeller. Because of the complexity of the geometry and surface curvature changes for the integral impeller, and the semi suspended state during the processing, force analysis and control technology for the deformation have become the key and difficulty to realize high quality processing. In this paper, the situation about the blade machining with the finite element analysis is introduced, and the factors about the blade machining deformation is also summarized. The deformation of a single cutter location point are computed and analyzed with finite element method, and the application problems to the machining deformation with the finite element are presented.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 986-987)

Pages:

895-899

Citation:

Online since:

July 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Wang Zhigang, He ning, Zhang ning , etc. Finite element analysis of deformation of machining Aerospace Thin-walled Parts [J]. Aviation Precision Manufacturing Technology, 2000, 36(6): 7-11.

Google Scholar

[2] S. Ratchev, E. Govender, S. Nikov, etc. Force and deflection modeling in milling of low-rigidity complex parts [J]. Journal of Materials Processing Technology, 2003, 143-144: 796-801.

DOI: 10.1016/s0924-0136(03)00382-0

Google Scholar

[3] S. Ratchev, S. Liu, W. Huang, etc. Milling error prediction and compensation in machining of low-rigidity parts [J]. International Journal of Machine Tools & Manufacture, 2004, 44(15): 1629-1641.

DOI: 10.1016/j.ijmachtools.2004.06.001

Google Scholar

[4] W. A. Kline, R. E. Devor, I. A. Shareef. The prediction of surface accuracy in end milling [J]. Journal of Engineering for Industry, 1982, 104: 272-278.

DOI: 10.1115/1.3185830

Google Scholar

[5] J. S. Tsai, C. L. Liao. Finite-element modeling of static surface errors in the peripheral milling of thin-walled workpieces [J]. Journal of Materials Processing Technology, 1999, 94: 235-246.

DOI: 10.1016/s0924-0136(99)00109-0

Google Scholar

[6] E. Budak, Y. Altintas. Modeling and avoidance of static form errors in peripheral milling of plates [J]. International Journal of Machine Tools & Manufacture, 1995, 35(3): 459-476.

DOI: 10.1016/0890-6955(94)p2628-s

Google Scholar

[7] Wan Min. Research on the key technology of prediction of surface static errors in peripheral milling of thin-walled workpiece machining process [D]. Xi'an: Northwestern Polytechnical University, (2005).

Google Scholar

[8] Zhang Zhihai , Zheng li, Li zhizhong, etc. Based on milling surface geometric error model of milling force / torque model [J]. Chinese Journal of Mechanical Engineering, 2001, 37(1): 6-10.

DOI: 10.3901/jme.2001.01.006

Google Scholar