Design and Testing of a Micro-Dynamometer for Desktop Micro-Milling Machine

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Abstract:

The emerging miniaturized high-tech products are required to have increased functionalities of systems within a volumetric size on the order of 1 cm3. Hence, the parts are mesoscopic with complex microscopic features of a few mm length with machining accuracy of better than 1 micrometer with secured surface integrity as components will require high surface finish, tensile stress and crack free surfaces in order to function reliably. One of the characteristics to be measured is the cutting forces on the parts being machined. This paper will present the design, manufacture and testing of a miniature dynamometer capable of measuring cutting forces within a low range of 50N but with a resolution better than 1 mN and high frequency since the micromachining involves small cutting forces but the spindle rotates at high speed. The dynamometer is capable of measuring forces in five directions (±x, ±y, and z). The instrument was calibrated and exhibit very good results leading to a true validation. This instrument is assembled on a micro milling desktop machine designed in-house. It will not only support predicting the surface finish and chip thickness but also monitoring tool wear evolution and hence prevents/reduce tool breakage known to be one of the main issues in micro-milling.

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267-273

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February 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] J. Chae et al., Investigation of micro-cutting operations, International Journal of Machine Tools & Manufacture 46 (2005), 313-332.

DOI: 10.1016/j.ijmachtools.2005.05.015

Google Scholar

[2] D. Kim Gi et al, Indirect Cutting Force Measurement Considering Frictional Behaviour in a Machining Centre Using Feed Motor Current, International Journal of Advanced Manufacturing Technology, 15 (1999, ) 478-484.

DOI: 10.1007/s001700050092

Google Scholar

[3] L.R. Castro et al., Correction of dynamic effects on force measurements made with piezoelectric dynamometer, Internatinal Journal of Machine Tools & Manufacture 46 (2006) 1707-1715.

DOI: 10.1016/j.ijmachtools.2005.12.006

Google Scholar

[4] A. Albrecht et al., High frequency bandwidth cutting force measurement in milling using capacitance displacement sensors, International Journal of Machine Tools & Manufacture, 45 (2005), 993-1008.

DOI: 10.1016/j.ijmachtools.2004.11.028

Google Scholar

[5] S. Yaldiz, Design, development and testing of a four component milling dynamometer for measurement of cutting force and torque, Mechanical System and Signal Processing 21(2007), 1499-1511.

DOI: 10.1016/j.ymssp.2006.06.005

Google Scholar

[6] J. Kim and D. Kim, Development of a combined-type tool dynamometer with a piezo film accelerometer for an ultra precision lathe, Journal of Materials Processing Technology 71(1997) 360-366.

DOI: 10.1016/s0924-0136(97)00098-8

Google Scholar

[7] J.P. Wulfsberg, G. Brudek, Detection of cutting forces in micro machining operations, 5th euspen International Conference, (2005).

Google Scholar

[8] A. Bau, dynamometer for cutting forces measurement in micro-milling, MSc thesis, (2007).

Google Scholar

[9] US 2004/0258495 A1 Kakino et al. 12/(2004).

Google Scholar

[10] US 3, 693, 425 Starita et al. 09/(1972).

Google Scholar

[11] US 4, 094, 192 Watso et al. 06/(1978).

Google Scholar

[12] US 4, 493, 220 Carignan et al. 01/(1985).

Google Scholar

[13] US 4, 802, 274 Petrof et al. 02/(1989).

Google Scholar

[14] US 5, 814, 740 Cook et al. 09/(1998).

Google Scholar

[15] US 6, 038, 933 Meyer 03/(2000).

Google Scholar

[16] US 7, 536, 924 B2 Schmitz et al. 05/2009.

Google Scholar

[17] S. Mekid, Wireless miniature dynamometer for cutting forces in micro machines, Patent Pending, (2012).

Google Scholar

[18] T.A. Dow et al., Tool force and deflection compensation for small milling tools, Precision Engineering 28(2004), 31-45.

DOI: 10.1016/s0141-6359(03)00072-2

Google Scholar