Up Milling Technology and its Outputs

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This paper deals with the up milling technology. It describes the coherencies of temperature and surface roughness achieved by this up milling process and explains the principle of up milling, briefly describes the heat generated too and shapes of chip. A main part of this paper is realization of the experiment, description of the experiment and evaluation of results shown as the resulting values of temperature and subsequent surface roughness and category of made chips. The milling is the most used technology in engineering and shape of chip is important for its transport and for economical aspect of this technology.

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268-275

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August 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] J. Duplak, I. Orlovsky, M. Cuma, Comprehensive expression of durability for the selected cutting tools in comparison with standard ISO 3685, Advanced Science Letters 19 (2013) 460-463.

DOI: 10.1166/asl.2013.4745

Google Scholar

[2] J. Novak-Marcincin, M. Janak, L. Novakova-Marcincinova, V. Fecova, Possibility of quick check on milling strategy suitability, Tehnički Vjesnik 19/4 (2012) 959-964.

DOI: 10.1063/1.4707641

Google Scholar

[3] A. Czan, M. Neslusan, Chip machining of difficult machinable materials (Trieskové obrábanie ťažkoobrábateľných materiálov), 2005, 156 p. (in Slovak).

Google Scholar

[4] K. Vasilko, E. Ragan, Theory of Manufacturing Technologies (Teória výrobných technológií), FMT Prešov, 2010, 241 p. (in Slovak).

Google Scholar

[5] M. S. Shahrom, N. M. Yahya, A. R. Yusoff, Taguchi Method Approach on Effect of Lubrication Condition on Surface Roughness in Milling Operation, Procedia Engineering 53 (2013) 594-599.

DOI: 10.1016/j.proeng.2013.02.076

Google Scholar

[6] X. Cui, J. Zhao, Z. Pei, Analysis of transient average tool temperatures in face milling, International Communications in Heat and Mass Transfer 39 (2012) 786-791.

DOI: 10.1016/j.icheatmasstransfer.2012.05.009

Google Scholar

[7] A. Janáč et al., Technology of machining (Technológia obrábania), Bratislava: STU, 2004, 289 p. (in Slovak).

Google Scholar

[8] J. Mádl, et al., Technology of machining 1 (Technologie obrábění 1), ČVUT Praha, 79 p.

Google Scholar

[9] K. Vasilko, Analytical theory of chip machining process (Analytická teória trieskového obrábania), Prešov: FMT, 2007, 481 p. (in Slovak).

Google Scholar

[10] Z. Hutyrova, J. Zajac, Turning of composite material with organic reinforcement (wood plastic composite), Advanced Science Letters 19/3 (2013) 877-880.

DOI: 10.1166/asl.2013.4850

Google Scholar

[11] P. Monka, The Comparison of Surface Roughness Characteristics Achieved by the Machining with Conventional and Unconventional Geometry of Tools, Advanced Materials Research 622-623 (2012) 352-356.

DOI: 10.4028/www.scientific.net/amr.622-623.352

Google Scholar

[12] T. Krenický, Implementation of Virtual Instrumentation for Machinery Monitoring, in: Scientific Papers: Operation and Diagnostics of Machines and Production Systems Operational States Vol. 4, Lüdenscheid, RAM-Verlag, 2011, pp.5-8.

Google Scholar

[13] K. Monkova, S. Hloch, The dependency of the tool life on the cutting speed at the investigation of the tool with specific geometry, Advanced Materials Research 622 (2013) 347-351.

DOI: 10.4028/www.scientific.net/amr.622-623.347

Google Scholar