Research on Simulation of Cutting Process Based on the Finite Element Analysis Method

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Abstract:

With the rapid penetration of information technology in various fields, CAD/CAM/CAE technology has been widely used to fundamentally change the traditional design, production, organizational models, it also has a very important significance to promote the technological transformation of existing enterprises, bring the whole structural change of the night, develop the new technologies and the promotion of economic growth. The paper uses the blades of steam turbine as an example, combined with the finite element analysis method to study the whole cutting process, the whole process was simulated and the results of error were had analysis and optimization.

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Periodical:

Advanced Materials Research (Volumes 631-632)

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686-690

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Online since:

January 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Dong Huiyue, Ke Yinglin. Milling of thin walled workpiece in scheme optimization finite element method[J]. Journal of Zhejiang University (Engineering Science), 2009, 38 ( 1): 17-21.

Google Scholar

[2] Wang Zhigang, He Ning, Wu Kai, Jiang Chengyu, Zhang Ping, Gong Huimin, Chen Xuemei. The machining deformation analysis and control scheme [J]. China Mechanical Engineering, 2012, 13 (2): 114 - 117.

Google Scholar

[3] Fan Qiuling, Wang Yan. In blade machining square box technology and equipment [J]. Power equipment, 2011 (5) 30-31.

Google Scholar

[4] Ee Meng Lim. Error compensation for sculptured surface Productions by the application of control surface strategy using predicted machiningErrors[J]. Journal of Manufacturing Science and Engineering, 2009( 8): 42-45.

DOI: 10.1115/1.2831120

Google Scholar

[5] Ai Xing et al. High speed machining technology [M]. Beijing: National Defense Industry Press, 2008: 453-458.

Google Scholar

[6] Kline W. A, Devor R. E, and Lindberg R. The Prediction of Cutting ForcesIn End Milling with Application to Cornering Cuts [J], International JournalOf Machine Tool Design and research, 2012, (2): 17-22.

DOI: 10.1016/0020-7357(82)90016-6

Google Scholar

[7] Huang Zhigang, Ke Yinglin, Dong Yuehui. Frame monolithic structure finite element model of milling process sequence [J] Journal of Zhejiang University (Engineering Science Edition), 2010(03): 78-81.

Google Scholar

[8] Li Hongyun, Zhao Shexu, Sun Yan. ANSYS 10 foundation and engineering application [M]. Machinery Industry Press, 2008(8): 27-29.

Google Scholar

[9] Zhang Zhaohui, Li Shukui . ANSYS 11 finite element analysis theories and application in engineering [M]. Publishing House of electronics industry, 2011: 446-451.

Google Scholar

[10] Ru Shisong. Regression analysis and design of the experimental[M]. East China Normal University press, 2008: 1022-1025.

Google Scholar

[11] Zhang Wenxiu, Liang Yi. Mathematical foundation of genetic algorithms[M]. Xi'an Jiao Tong University press, 2010: 778-781.

Google Scholar

[12] Lei Yingjie, Zhang Shanwen, Li Xuwu, Zhou Chuangming . MATLAB genetic algorithm toolbox and its application [M]. Xi'an: Xi'an Electronic and Science University press, 2005: 445-447.

Google Scholar

[13] Li Junhui, Tan Jianping, Xiong Yonggang, etc. Based on ANSYS indexable blade finite element analysis[J]. Machine design and research, 2011, 19 ( 2) : 38- 40.

Google Scholar

[14] Wang Shouan. Cutting tool development tendency [J]. Tool engineering, 2012, 30 (7) : 25 - 27.

Google Scholar