Geometric Model of the Interaction of the Grinding Wheel and Workpiece during Surface Grinding with the Periphery of a Straight Wheel

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Abstract:

Results of development of geometrical model of a shaping of a polished surface at surface grinding by the periphery of a wheel are presented in article. The developed model allows to predict a roughness of the processed surface depending on basic parameters of operation: speeds of rotation of the tool and translational motion of workpiece, wheel parameters – granularity and structure, depth of cutting and other parameters. Results of experimental check of the developed model are given in article.

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41-46

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April 2015

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] X. Zhou, F. Xi, Modeling and predicting surface roughness of the grinding process, International Journal of Machine Tools & Manufacture 42 (2002) 969-977.

DOI: 10.1016/s0890-6955(02)00011-1

Google Scholar

[2] T.W. Hwang, C.J. Evens, S. Malkin, High speed grinding of silicon nitride with electroplated diamond wheels, part 2: wheel topography and grinding mechanisms, ASME Journal of Manufacturing Science and Engineering 122 (2000) 42-50.

DOI: 10.1115/1.538909

Google Scholar

[3] Sanjay Agarwal, P. Venkateswara Rao, A probabilistic approach to predict surface roughness in ceramic grinding, International Journal of Machine Tools and Manufacture 45 (6) 609-616.

DOI: 10.1016/j.ijmachtools.2004.10.005

Google Scholar

[4] R.L. Hecker, S.Y. Liang, Predictive modeling of surface roughness in grinding, International Journal of Machine Tools and Manufacture, 43 (2003) 755-761.

DOI: 10.1016/s0890-6955(03)00055-5

Google Scholar

[5] S. Malkin, Grinding Technology, Theory and Applications of Machining with Abrasives, Ellis, Horwood Limited, (1989).

Google Scholar

[6] E.J. Salisbury, K.V. Domala, K.S. Moon, M.H. Miller, J.W. Sutherland, A three-dimensional model for the surface texture in surface grinding, Part 2: Grinding wheel surface texture model, Journal of Manufacturing Science and Engineering, Transactions of the ASME 123(4) 582-590.

DOI: 10.1115/1.1391428

Google Scholar

[7] T. A. Nguyen, D. L. Butler, Simulation of precision grinding process, part 1: Generation of the grinding wheel surface, International Journal of Machine Tools & Manufacture 45 (11) 1321-1328.

DOI: 10.1016/j.ijmachtools.2005.01.005

Google Scholar

[8] T. A. Nguyen, D. L. Butler, Simulation of surface grinding process, part 2: Interaction of the abrasive grain with the workpiece, International Journal of Machine Tools & Manufacture 45 (11) 1329-1336.

DOI: 10.1016/j.ijmachtools.2005.01.006

Google Scholar

[9] A.A. D`yakonov, Improvement of grinding speeds by assessing the machinability of materials, Russian Engineering Research 32 (7-8) 604-607.

Google Scholar

[10] L.V. Shipulin, Complex Model of Surface Grinding, Lecture Notes in Engineering and Computer Science: Proceedings of The International MultiConference of Engineers and Computer Scientists, (2012) 1325–1327.

Google Scholar