About Turning the Surface of a Part Formed by a Combination of Dissimilar Structural Materials with Break Elements

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Abstract:

The modern machinery production preserves the trend for the constructive complication of products remains, the inclination not only to use new construction materials but also the substitutes for metals. On the one hand, such solutions allow reducing the metal consumption of machines and improving the performance characteristics of equipment, which is especially important when working with high pressure, humidity and aggressive substances. On the other hand, there is a technological complication of machinability of the listed structures consisting of a combination of dissimilar structural materials (for example, metal-plastic). In addition, the machinable surfaces may have the break elements formed by the secondary structural elements (for example, grooves, protrusions, hollows, small holes and other elements of different numbers, combinations, shapes, and locations). One of the main metal working tasks is to prepare the reliable documentation required for the process engineer to machine such products of the highest constructive and technological complexity.

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Solid State Phenomena (Volume 284)

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229-235

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October 2018

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© 2018 Trans Tech Publications Ltd. All Rights Reserved

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[1] E.A. Kudryashov, А.M. Nikonov, A.V. Stetsurin, General Approach to the Optimization of Machining by Composite Tools. Russian Engineering Research. 28(6) (2008) 611-329.

DOI: 10.3103/s1068798x08060221

Google Scholar

[2] E.A. Kudryashov, А.M. Nikonov, V.S. Rogovskii, A.V. Stetsurin, Using superhard tools in discontinuous cutting. Russian Engineering Research. 29(2) (2009) 210-213.

DOI: 10.3103/s1068798x09020221

Google Scholar

[3] E.A. Kudryashov, D.Yu. Lunin, E.V. Pavlov, Preimushchestva lezviinoi tekhnologii obrabotki detalei instrumentom iz kompozita (Advantages of the cutting technology of processing parts with a composite tool). Fundamental'nye i prikladnye problemy tekhniki i tekhnologii. 5 (2011).

Google Scholar

[4] E.A. Kudryashov, E.V. Pavlov, E.I. Yatsun et al. Obespechenie tochnosti otverstii pri remonte detalei mashin (Ensuring the accuracy of holes in the repair of machine parts). Repair, Reconditioning, Modernization. 10 (2010) 37-38.

Google Scholar

[5] E.A. Kudryashov, I.M. Smirnov, Poisk optimal'nykh reshenii pri proektirovanii protsessov mekhanicheskoi obrabotki (Search for optimal solutions in the design of machining processes). Sistemy. Metody. Tekhnologii, 3(23) (2014) 94–98.

Google Scholar

[6] Y. Altintas Manufacturing automation: metal cutting mechanics, machine tool vibrations, and CNC design. Cambrdige University Press, New York, (2012).

DOI: 10.1017/cbo9780511843723

Google Scholar

[7] E.A. Kudryashov, A.V. Stetsurin, More Efficient Repair of Machine Parts by a Group Method. Russian Engineering Research. 28(9) (2008) 924-925.

DOI: 10.3103/s1068798x08090232

Google Scholar

[8] Y. Sahin Comparison of tool life between ceramic and cubic boron nitride (CBN) cutting tools when machining hardened steels. Journal of materials processing technology. (209)7 (2009) 3478-3489.

DOI: 10.1016/j.jmatprotec.2008.08.016

Google Scholar

[9] M. Dogra, V.S. Sharma, A. Sachdeva, N.M. Suri, J.S. Dureja, Tool wear, chip formation and workpiece surface issues in CBN hard turning: A review. International Journal of Precision Engineering and Manufacturing. 11(2) (2010) 341-358.

DOI: 10.1007/s12541-010-0040-1

Google Scholar

[10] D. Carou, E.M. Rubio, J.P. Davim, Discontinuous cutting: failure mechanisms, tool materials and temperature study-a review. Reviews on Advanced Materials Science. 38 (2014) 110-124.

Google Scholar

[11] A.E. Diniz, A.J. de Oliveira, Hard turning of interrupted surfaces using CBN tools. Journal of materials processing technology. 195(1) (2008) 275-281.

DOI: 10.1016/j.jmatprotec.2007.05.022

Google Scholar

[12] J. Zhao, X. Yuan, Y. Zhou, Cutting performance and failure mechanisms of an Al 2 O 3/WC/TiC micro-nano-composite ceramic tool. International Journal of Refractory Metals and Hard Materials. 28(3) (2010) 330-337.

DOI: 10.1016/j.ijrmhm.2009.11.007

Google Scholar

[13] E.A. Kudryashov, A.Yu. Altukhov, E.I. Yatsun, Effektivnaya rabota instrumenta iz kompozita v usloviyakh preryvistogo rezaniya (Effective machining by a composite in interrupted cutting). Fundamental'nye i prikladnye problemy tekhniki i tekhnologii. 6 (2011).

Google Scholar

[14] E.A. Kudryashov, E.I. Yatsun, E.V. Pavlov, et al. Sposoby dostizheniya nadezhnosti raboty gidrotsilindrov vysokogo davleniya burovykh ustanovok (Methods for achieving the reliability of high-pressure hydraulic cylinders in drilling rigs). Izvestiya Samarskogo nauchnogo tsentra RAS. 12(1-2) (2010).

Google Scholar

[15] E.A. Kudryashov, A.Yu. Altukhov, D.Yu. Lunin, E.N. Fomichev, Tekhnologicheskie preimushchestva instrumental'nogo materiala kompozit pri obrabotke konstruktivno slozhnykh poverkhnostei (Technological advantages of the composite cutting tool material when machining complex surfaces). Izvestiya Volgogradskogo gosudarstvennogo tekhnicheskogo universiteta. 12(72) (2010).

Google Scholar

[16] E.A. Kudryashov, I.M. Smirnov, Effektivnaya rabota instrumenta iz kompozita pri skorostnom frezerovanii rez'by (Effective work of a composite tool with high-speed thread milling). Metal working and material science. 2(59) (2013) 25-32.

Google Scholar

[17] P. De Vos Applied metal cutting physics – Best practice. SECO Tools AB, Fagersta, (2016).

Google Scholar

[18] L.N. Devin, A.A. Osadchii, Improving performance of cBN cutting tools by increasing their damping properties. Journal of Superhard Materials. 34(5) (2012) 328-335.

DOI: 10.3103/s1063457612050073

Google Scholar

[19] S.G. Novikov, E.A. Kudryashov, V.V. Malykhin, et al., Dempfiruyushchii rezets s reguliruemoi zhestkost'yu (Damping tool with adjustable rigidity). RU Patent 2479385. (2013).

Google Scholar

[20] S.G. Novikov, E.A. Kudryashov, E.I. Yatsun, et al., Universal'nyi dempfiruyushchii rezets (Universal damping tool). RU Patent 2457078. (2012).

Google Scholar

[21] E.A. Kudryashov, Tochenie konstruktivno slozhnykh poverkhnostei detalei instrumentom iz kompozita (The turning of complex surfaces of parts by a composite tool). Metal working and material science. 2 (2012) 50-55.

Google Scholar

[22] E.A. Kudryashov, А.M. Nikonov, Machining parts made from diverse materials by means of a composite tool. Russian Engineering Research. 29(3) (2009) 313–315.

DOI: 10.3103/s1068798x09030241

Google Scholar