Microstructural Characteristics Investigation of the Chip-Making Process after Machining

Article Preview

Abstract:

Machining as a base technology for the manufacture of precision engineering components has a dominant position. Interaction of machine - tool - work piece has a significant impact on the quality of surface, next to under surface changes of worked material and finally to the total production process. In this work microstructures characteristics of the arising chip are evaluated depending on the defined conditions used for machining. Further basic patterns of the manufacturing process as well as the accompanying effects on the cutting process are clarified. Theory of formation of chip is not nearly closed part of the analytical theory of cutting indicates a possibility of further investigation boundaries of these zones of deformation, the application of mathematical, physical and other methods of examination, verification of modern experimental methods. Thickness of chip was achieved to 50 µm. This micro hardness value was selected to the plastic zones. In area of primary plastic deformation was in range from 256,7 to 264,0 HV 0,1. Area of secondary plastic deformation was higher as primary plastic deformation, it was in range of 289,4 to 357,4 HV 0,1. In plastic deformation area was in range from 261,5 to 278,2 HV 0,1 which is consequence of the action of the outgoing temperature

You might also be interested in these eBooks

Info:

Periodical:

Pages:

344-350

Citation:

Online since:

August 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] K. Vasilko, Analytical theory of machining process - 2nd Ed. (Analytická teória trieskového obrábania), FVT TU Košice, Prešov, 2012. (in Slovak).

Google Scholar

[2] M. Marcinková, J. Zajac, S. Šoltésová, Mechanism of chip formation during machining, in: Research Center of progressive methods of machining/Výskumné centrum progresívnych metód obrábania, Prešov: FVT, (2012).

Google Scholar

[3] I. Vojtko, R. Matija, J. Haľko, P. Baron, Treating Models of the Mechanical, Journal CA Systems in Production Planning 12/1 (2011) 127-130.

Google Scholar

[4] Information on http: /web. tuke. sk/fvtpo/journal/pdf07/2-str-05-10. pdf.

Google Scholar

[5] J. Buda, J. Békés, Theoretical fundamentals of metal machining (Teoretické základy obrábania kovov), Bratislava, 1977. (in Slovak).

Google Scholar

[6] Š. Kupčík, Reducing the chip friction and forehead of instrument and its influence on machining results (Zmenšenie trenia triesky o čelo nástroja a jeho vplyv na výsledky obrábania), Tribotechnika 6/1 (2013). (in Slovak).

Google Scholar

[7] K. Vasilko, J. Lipták, D. Kozáková, V. Modrák, New materials and technologies of their processing (Nové materiály a technológie ich spracovania), Bratislava: Alfa, 1990. (in Slovak).

Google Scholar

[8] K. Vasilko, M. Havrila, J. Novák-Marcinčin, J. Mádl, J. Zajac, Top trends in machining 3 - Machining technology (Top trendy v obrábaní 3 - technológia obrábania), Žilina: MEDIA/ST, 2006. (in Slovak).

Google Scholar

[9] K. Vasilko, Theory and practice of chip machining (Teória a prax trieskového obrábania, 1. vyd - Prešov: FVT TU, 2009. (in Slovak).

Google Scholar

[10] K. Vasilko, J. Mádl, Theory of Machining 1 (Teorie obrábění, 1. díl 1. vyd. ), Ústí nad Labem: University J.E. Purkyně, 2012. (in Czech).

DOI: 10.31410/eman.2021.335

Google Scholar

[11] M. Neslusan, et al., Experimental methods in chip machining (Experimentálne metódy v trieskovom obrábaní), Žilina University, 2007. (in Slovak).

Google Scholar

[12] J. Jurko, Methodology for the selection of the cutting tool for machining (Metodika postupu výberu rezného nástroja pre obrábanie), MM Průmyslové spektrum 4 (2004) 44-45. (in Slovak).

Google Scholar

[13] A. Panda, M. Prislupčák, Progressive machining (Progresívne obrábanie), in: Proc. of 16th Int. Sci. Conf. Trends and innovative approaches to business processes, 7-8 November 2013, Košice. Košice: TU, 2013. (in Slovak).

Google Scholar

[14] M. Marcinková, J. Zajac, P. Baron, S. Šoltésová, High Speed ​​Machining - chip creation, requirements for machines and tools, in: Proc. of Workshop Automation and Control in Theory and Practice: ARTEP 2013 (Vysokorýchlostné obrábanie - tvorba triesky, požiadavky na stroje a nástroje, Automatizácia a riadenie v teórii a praxi: ARTEP 2013), 20-22 Feb. 2013, Stará Lesná. Košice: TU, 2013. (in Slovak).

Google Scholar

[15] J. Beňo, Contact phenomena at the interface chip-tool (Kontaktné javy na rozhraní trieska-nástroj), in: Proc. of Intertribo '96, Stará Lesná, 1996. Bratislava: DT ZSVTS, 1996. (in Slovak).

Google Scholar

[16] J. Jurko, Analysis of the interaction of workpiece material - cutting tool - chip, and friction in the cutting zone during machining (Analýza vzájomného pôsobenia obrábaný materiál - rezný nástroj - trieska, a trenia v zóne rezania pri obrábaní), in: Proc. of 8th Int. Conf. of Machines and Mechanisms Theory. Liberec: TU, 2000. (in Slovak).

Google Scholar

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

Google Scholar

[18] T. Krenický, M. Rimár, Monitoring of Vibrations in the technology of AWJ, Key Engineering Materials 496 (2012) 229-234.

DOI: 10.4028/www.scientific.net/kem.496.229

Google Scholar

[19] T. Krenický, P. Jacko, Real-time monitoring of technical systems operation (Real-time monitoring prevádzky technických systémov), Strojárstvo Extra 5 (2011) 32/1-32/2. (in Slovak).

Google Scholar

[20] J. Jurko, Plastic deformation of the cutting process (Plastická deformácia v procese rezania), 1st Ed., Prešov: FVT TU, 2007. (in Slovak).

Google Scholar

[21] A. Tarasovičová, M. Belán, M. Kasina, M. Šomšák, Chips Formation at Low Speed Milling (Tvorba triesky pri frézovaní nízkymi rýchlosťami), in: Proc. of 5th Annual Int. Travelling Conf. for Young Researches and PhD Students ERIN 2011: Education - Research - Innovation, 13-16th April 2011, Tatranská Kotlina, Slovakia. Prešov: Harmony Apeiron, 2011. (in Slovak).

Google Scholar

[22] K. Vasilko, G. Bokučava, Manufacturing Technologies (Výrobné technológie), Prešov: TU FVT, 2001. (in Slovak).

Google Scholar

[23] Information on http: /www. efunda. com/processes/machining/chip_formation_1. cfm.

Google Scholar