High-Precision Plasma Cutting of the Steel - Aluminum ”Bimetallic Composition“

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The current paper is devoted to technological improvements in high-precision plasma cutting of thin sheets on processing the steel St3 + aluminum A5M bimetallic composition. The composition obtained by explosion welding presents a compound of various materials which differ in such thermophysical characteristics as their melting point and their thermal conductivity. The principal difference in their thermophysical properties has predetermined the specific features of forming the cut edge of this bimetallic composition. Out of the variety of technologies for cutting this bimetallic composition, the Hi-Focusplus technology intended for carbon steel processing and the Hi-Focus technology for aluminum alloys are chosen. It is established that when cutting the bimetallic composition on the side of steel grade St3, the undercut filled with the products of melted steel grade St3 is formed on the aluminum portion in using both technologies. Switching the direction of the cut from steel to aluminum results in forming a taper on the aluminum portion. In so doing, high precision and superior quality of cutting on the steel grade St3 portion are provided.

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41-45

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August 2015

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[1] A.A. Deribas, Fizika uprochneniya i svarki vzryvom, 2-e izdanie dopolnennoe i pererabotannoe, Novosibirsk, Nauka (1980) 222. (in Russian).

Google Scholar

[2] I.D. Zakharchenko, Svarka metallov vzryvom, AN BSSR, Viteb. otdelenie Instituta fiziki tverdogo tela i poluprovodnikov, Minsk, Navuka i tekhnika (1990) 205. (in Russian).

Google Scholar

[3] B.S. Zlobin, Svarka vzryvom stali s aluminiem, Fizika goreniya i vzryva, 3 (2002), Vol. 38, 137 – 140. (in Russian).

Google Scholar

[4] I.A. Batayev, Struktura i mekhanicheskie svoistva mnogosloinykh materialov, sformirovannykh po tekhnologii svarki vzryvom tonkolistovykh zagotovok iz nizkouglerodistoi stali, Avtoreferat dis… kand. tekhn. nauk 05. 16. 09, Novosibirsk, NGTU (2010).

Google Scholar

[5] A.G. Grigor'iants, I.N. Shiganov, A.I. Misiurov, Tekhnologicheskie protsessy lazernoi obrabotki: Uchebnoe posobie dlia vuzov, Pod redaktsiei A.G. Grigor'iantsa. – 2-e izdanie stereotip. M.: Izdatel'stvovo MGTU im. N. E. Baumana (2008).

Google Scholar

[6] A.M. Zabelin, A.M. Orishich, A.M. Chirkov, Lazernye tekhnologii mashinostroeniya, Uchebnoe posobie, Novosibirskii gosudarstvennyi universitet, Novosibirsk, (2004) 142. (in Russian).

Google Scholar

[7] V.A. Shmanev, A.P. Shulepov, A.V. Mesheryakov, Struinaya gidroabrazivnaya obrabotka detalei GTD, M. Mashinostroenie (1995) 144. (in Russian).

Google Scholar

[8] I.G. Shirshov, V.N. Kotikov, Plasmennaya rezka, L. Mashinostroenie (1987) 192. (in Russian).

Google Scholar

[9] G.V. Polevoi, G.K. Sukhinin, Gazoplamennaya obrabotka metallov, M. Izdatel'skii tsentr Akademiya, (2005) 336. (in Russian).

Google Scholar

[10] K.V. Vasil'ev, Plazmenno-dugovaya rezka perspektivnyi sposob termicheskoi rezki, Svarochnoe proizvodstvo 9 (2002) 26 – 28. (in Russian).

Google Scholar

[11] A.A. Loktionov, V.V. Zakharov, Tonkostruinaya plazmennaya rezka kak effektivnaya tekhnologiya v zagotovitel'nom proizvodstve, Nauka. Tekhnologii. Innovatsii: materialy Vserossiskoi nauchnoi konferentsii molodykh uchenykh, 2 - 4 dekabrya 2011. – v 6 chastyakh - Novosibirsk: Izdatel'stvo NGTU, (2011).

Google Scholar

[12] A.A. Loktionov, Otsenka kachestva reza listovykh materialov pri tonkostruinoi plazmennoi rezke, Obrabotka metallov (tekhnologiia, oborudovanie, instrumenty) 61 (2013) 86 – 91. (in Russian).

Google Scholar

[13] A. Kh. Rakhimianov, Vybor tekhnologicheskikh skhem I optimizatsiia rezimov tonkostruinoi plazmennoi rezki konstruktcionnykh stalei, Obrabotka metallov (tekhnologiia, oborudovanie, instrumenty) 63 (2014) 46 – 55. (in Russian).

Google Scholar

[14] A. Kh. Rakhimianov, Tonkostruinaia plazmennaia rezka mednykh splavov, Innovatcii v mashinostroenii – osnova tekhnologicheskogo razvitiia Rossii (TM -2014): VI Mezhdunarodnaia nauchno – tekhnicheskaia konferentsiia, Altai, 23 – 25 sentiabria 2014. – Barnaul: Izdatel'stvo AltGTU, (2014).

Google Scholar

[15] A. Kh. Rakhimyanov, B.A. Krasil'nikov, Tekhnologicheskie osobennosti plazmennogo raskroya alyuminievykh splavov, Innovatcii v mashinostroenii – osnova tekhnologicheskogo razvitiia Rossii (TM -2014): VI Mezhdunarodnaia nauchno – tekhnicheskaia konferentsiia, Altai, 23 – 25 sentiabria 2014. – Barnaul: Izdatel'stvo AltGTU, (2014).

Google Scholar

[16] A. Kh. Rakhimyanov, Kh.M. Rakhimyanov, Vliyanie rezhymov tonkostruinoi plazmennoi rezki na kachestvo obrabotki nerzhaveyuschei stali 12X18H10T, Innovatcii v mashinostroenii – osnova tekhnologicheskogo razvitiia Rossii (TM -2014): VI Mezhdunarodnaia nauchno – tekhnicheskaia konferentsiia, Altai, 23 – 25 sentiabria 2014. – Barnaul: Izdatel'stvo AltGTU, (2014).

Google Scholar

[17] A. Kh. Rakhimyanov, Kh. M. Rakhimyanov, B.A. Krasil'nikov, Tekhnologicheskie osobennosti raskroya bimetallicheskogo soedineniya stal' Ct3 + stal'12X18H10T, pri tonkostruinoi plazmennoi rezke, Obrabotka metallov (tekhnologiia, oborudovanie, instrumenty) 64 (2014).

Google Scholar

[18] Kh. Rakhmyanov, A. Rakhmyanov, A. Zhuravlev, Advantages of High-Precision Plasma Cutting for processing Bimetallic Compositions, Applied Mechanics and Materials. – Vol. 698(2015). 294 – 298.

DOI: 10.4028/www.scientific.net/amm.698.294

Google Scholar