One of the challenges in micromilling processing is chatter, an unstable phenomenon which has a larger impact on the microdomain compared to macro one. The minimization of tool chatter is the key to good surface quality in the micromilling process, which is also related to the milling tool and the milling structure system dynamics. Frequency response function (FRF) at micromilling tool point describes dynamic behavior of the whole micromilling machine-spindle-tool system. In this paper, based on receptance coupling substructure analysis (RCSA) and the consideration of rotational degree-of-freedom, tool point frequency response function of micromilling dynamic system is obtained by combining two functions calculated from beam theory and obtained by hammer testing. And frequency response functions solved by Timoshenko's and Euler's beam theories are compared. Finally, the frequency response function is identified as the modal parameters, and the modal parameters are transformed into equivalent structural parameters of the physical system. The research work considers the difference of theoretical modeling between the micromilling and end-milling tool and provides a base for the dynamic study of the micromilling system.
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July 2017
Research-Article
Tool Point Frequency Response Prediction for Micromilling by Receptance Coupling Substructure Analysis
Lu Xiaohong,
Lu Xiaohong
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Search for other works by this author on:
Jia Zhenyuan,
Jia Zhenyuan
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
e-mail: jzyxy@dlut.edu.cn
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
e-mail: jzyxy@dlut.edu.cn
Search for other works by this author on:
Zhang Haixing,
Zhang Haixing
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Search for other works by this author on:
Liu Shengqian,
Liu Shengqian
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Search for other works by this author on:
Feng Yixuan,
Feng Yixuan
The George W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
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Steven Y. Liang
Steven Y. Liang
The George W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Search for other works by this author on:
Lu Xiaohong
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Jia Zhenyuan
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
e-mail: jzyxy@dlut.edu.cn
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
e-mail: jzyxy@dlut.edu.cn
Zhang Haixing
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Liu Shengqian
Key Laboratory for Precision and Non-traditional
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Machining Technology of Ministry of Education,
Dalian University of Technology,
No. 2 LingGong Road,
Dalian, LiaoNing 116026, China
Feng Yixuan
The George W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Steven Y. Liang
The George W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332-0405
1Corresponding author.
Manuscript received August 19, 2016; final manuscript received December 8, 2016; published online March 8, 2017. Assoc. Editor: Tony Schmitz.
J. Manuf. Sci. Eng. Jul 2017, 139(7): 071004 (13 pages)
Published Online: March 8, 2017
Article history
Received:
August 19, 2016
Revised:
December 8, 2016
Citation
Xiaohong, L., Zhenyuan, J., Haixing, Z., Shengqian, L., Yixuan, F., and Liang, S. Y. (March 8, 2017). "Tool Point Frequency Response Prediction for Micromilling by Receptance Coupling Substructure Analysis." ASME. J. Manuf. Sci. Eng. July 2017; 139(7): 071004. https://doi.org/10.1115/1.4035491
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