Testing of Thin-Walled Tubular Workpieces

Article Preview

Abstract:

In accordance with the Russian Federation State program called “Industrial growth and improving competitiveness” it becomes more wide-spread to use thin-walled makes for pieces, modern materials with new treating methods in mechanical engineering, in automobile production and modern aviation industry. As well as requirements for quality and mechanical characteristics of finished products constantly grow. In relation to these standards, methods of intensive irreversible deformation under conditions of complex stressed state are used with increasing frequency. Study of the following parameters has a great practical importance: loaded capability of the makes during exploitation and work material strength performance under complex production process. Such strain tasks are frequently counted as most complex and demand experimental verification because of geometric and physical task nonlinearity.The current study proposes testing method for thin-walled tubular workpieces which combines implementation simplicity with a wide range of strain-stressed state charts.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

483-486

Citation:

Online since:

February 2016

Authors:

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2016 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Information on http: /base. garant. ru/70643464/#block_10000.

Google Scholar

[2] V.A. Ogorodnikov, Deformability and fracture of metals during plastic forming , Kiev, UMK BO, 1989, 152 р.

Google Scholar

[3] S. Timoshenko, J. Goodier, Theory of elasticity, New York, McGraw-Hill Book C., 1951, 525 р.

Google Scholar

[4] S.G. Simagina : Izvestiyu SNTs RAN. Vol. 6 (2004), № 2, p.423–427.

Google Scholar

[5] S.G. Simagina, М.I. Geraskin, Investing in innovation: a conceptual analysis of processes, management of mathematical methods of decision-making, UNINI-DANA, Moscow, 2010, 224 р.

Google Scholar

[6] V.A. Glushchenkov, G.Z. Isarovich, S.G. Simagina and L.A. Rakov, USSR, Patent 1348027. (1987).

Google Scholar

[7] S.G. Simagina, USSR, Patent 1649251. (1989).

Google Scholar

[8] V.L. Kolmogorov, A.A. Bogatov, B.A. Migachev, E.G. Zudov, Y.E. Freydenzon and M.E. Freydenzon, The ductility and fracture, Moscow, Metallurgy , 1977, 230 р.

Google Scholar

[9] A.A. Bogatov, O.I. Mizhiritsky and S.V. Smirnov, Source ductility of metals at processing pressure, Moscow, Metallurgy, 1970, 142 р.

Google Scholar

[10] L.B. Zwick, A.P. Cherepanov, A. A. Pyhalov, M. A. Hramenok, C. A. Kuznetsov and M. V. Shapova, RU, Patent 2360227. (2009).

Google Scholar