Method for the Determining Metal Mechanical Characteristics Using FEM

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Abstract:

In this paper the methods of mechanical testing of metal and the possibility of their implementation, using mathematical modeling by the finite element method in Deform software package, are considered. As the studied parameters, both the strength indicators (yield strength, tensile strength, Brinel micro-hardness), and the plasticity indicator (the number of kinks before the crack is formed), were studied. The values obtained in the simulation have a very high convergence with the real data.

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Solid State Phenomena (Volume 316)

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917-922

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April 2021

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© 2021 Trans Tech Publications Ltd. All Rights Reserved

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[1] ASM Metals HandBook Vol. 8 - Mechanical Testing and Evaluation. ASM International, 2002, 2235 p.

Google Scholar

[2] ASM Metals HandBook Vol. 10 - Materials Characterization. ASM International, 2002, 1310 p.

Google Scholar

[3] GOST 10446-80. Wire. Tensile test method.

Google Scholar

[4] ASTM E8 / E8M - 16ae1. Standard Test Methods for Tension Testing of Metallic Materials.

Google Scholar

[5] ASTM B557M – 15. Standard Test Methods for Tension Testing Wrought and Cast Aluminum- and Magnesium-Alloy Products (Metric).

DOI: 10.1520/b0557m-15

Google Scholar

[6] GOST 1497-84. Metals. Methods of tensile testing.

Google Scholar

[7] ASTM A370 - 19e1. Standard Test Methods and Definitions for Mechanical Testing of Steel Products.

Google Scholar

[8] ASTM E9 – 19. Standard Test Methods of Compression Testing of Metallic Materials at Room Temperature.

Google Scholar

[9] ASTM E110-14 Standard Test Method for Rockwell and Brinell Hardness of Metallic Materials by Portable Hardness Testers.

DOI: 10.1520/e0110-82r02

Google Scholar

[10] ASTM E92-17 Standard Test Methods for Vickers Hardness and Knoop Hardness of Metallic Materials.

DOI: 10.1520/e0092-17

Google Scholar

[11] GOST 9012-59. Metals. Brinell hardness measurement method.

Google Scholar

[12] GOST 1579-93. Wire. Test method for bend.

Google Scholar

[13] ASTM E290 – 14. Standard Test Methods for Bend Testing of Material for Ductility.

Google Scholar

[14] A. Pesin, D. Pustovoytov. Physical simulation of asymmetric sheet rolling process by multicycle shear-compression testing. Procedia Engineering. 207 (2017) 1487-1492.

DOI: 10.1016/j.proeng.2017.10.918

Google Scholar

[15] A. Borhana, H.O. Ali, M.N. Tamin. Large Strain Shear Compression Test of Sheet Metal Specimens. Experimental Mechanics. 53 (2013) 1449–1460.

DOI: 10.1007/s11340-013-9763-0

Google Scholar

[16] A. Pesin, D. Pustovoytov, N. Lokotunina. Development of a multi-cycle shear-compression testing for the modeling of severe plastic deformation. IOP Conference Series: Materials Science and Engineering. 293 (2018) 012008.

DOI: 10.1088/1757-899x/293/1/012008

Google Scholar

[17] www.deform.com (official Deform software site).

Google Scholar

[18] L.A. Dobrzański, M. Staszuk, A. Śliwa. Simulation of the microhardness measurement of PVD coatings by use of FEM. Journal of Achievements in Materials and Manufacturing Engineering. 18 (2006) 279-282.

Google Scholar

[19] A.B. Naizabekov, S.S. Aynabekova, S.N. Lezhnev, E.A. Panin. Investigation of plastic properties of the sheet material by testing on the bending. XVII International scientific conference «New technologies and achievements in metallurgy, material engineering and production engineering», Czestochowa, Poland, 2016, 321-324.

Google Scholar

[20] K.K. Adewole, S.J. Bull. Simulation of the wire reverse bending test. Journal of Civil Engineering and Construction Technology. 3 (2012) 116-126.

Google Scholar