Residual Stresses of Round Steel Rod at Elastoplastic Twisting

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In the elastoplastic twisting of a rod under the action of an external torque, the cross-section of the rod is divided into two zones: the inner elastic zone and the outer plastic zone. After removing the external loads, we observe the residual deformations and the residual stresses inside the rod that significantly affect on the subsequent mechanical processes at manufacturing the products from the round rod. Under too much twisting, the longitudinal surface fibers of the rod begin to tear, the outer surface of the rod ceases to be cylindrical, and the rod’s cross-section ceases to be flat (the Bernoulli’s hypothesis about the flat sections is violated). Next a rupture of the rod is followed. For the plastic materials, the destruction is caused by the pure shear, and the rupture surface is perpendicular to the axis of the rod. For the brittle materials, the destruction occurs, due to the rupture along the screw surface inclined to the axis of the round rod at the angle of 45. In this paper, the residual stresses of the round rod at twisting are obtained for an elastoplastic medium with linear hardening in depending on the rod’s diameter, the shear modulus, the hardening modulus in shear and the yield strength in shear of the rod’s material.

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642-646

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May 2020

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[1] E.N. Moshnin, Bending and Straightening on Rotary Machines: Technology and Equipment, Mechanical Engineering, (1967).

Google Scholar

[2] V.P. Romanovskiy, Reference on Cold Stamping, Mechanical Engineering, (1971).

Google Scholar

[3] A.A. Korolev, Mechanical Equipment of Rolling and Pipe Shops, Metallurgy, (1987).

Google Scholar

[4] A.I. Tselikov, P.I. Poluhin, V.M. Grebenik, and others, Machines and Units of Metallurgical Plants: Machines and Units for Production and Decoration Rolling, Metallurgy, (1988).

Google Scholar

[5] V.N. Shinkin, Arithmetical method of calculation of power parameters of 2N-roller straightening machine under flattening of steel sheet, CIS Iron and Steel Review 14 (2017) 22-27.

DOI: 10.17580/cisisr.2017.02.05

Google Scholar

[6] V.N. Shinkin, Springback coefficient of the main pipelines' steel large-diameter pipes under elastoplastic bending, CIS Iron and Steel Review 14 (2017) 28-33.

DOI: 10.17580/cisisr.2017.02.06

Google Scholar

[7] V.N. Shinkin, Springback coefficient of round steel beam under elastoplastic torsion, CIS Iron and Steel Review 15 (2018) 23-27.

DOI: 10.17580/cisisr.2018.01.05

Google Scholar

[8] V.N. Shinkin, Simple analytical dependence of elastic modulus on high temperatures for some steels and alloys, CIS Iron and Steel Review 15 (2018) 32-38.

DOI: 10.17580/cisisr.2018.01.07

Google Scholar

[9] D. Banabic, Sheet Metal Forming Processes: Constitutive Modelling and Numerical Simulation, Springer, (2010).

Google Scholar

[10] D. Bhattacharyya, Composite Sheet Forming, vol. 11, Elsevier Science, (1997).

Google Scholar

[11] C. R. Calladine, Plasticity for Engineers: Theory and Applications, Woodhead Publishing, (2000).

Google Scholar

[12] J. Chakrabarty, Theory of Plasticity, Butterworth-Heinemann, (2006).

Google Scholar

[13] J.P. Davim, Materials Forming and Machining: Research and Development, Woodhead Publishing, (2015).

Google Scholar

[14] V.N. Shinkin, Simplified calculation of the bending torques of steel sheet and the roller reaction in a straightening machine, Steel in Translation 47(10) (2017) 639-644.

DOI: 10.3103/s0967091217100072

Google Scholar

[15] V.N. Shinkin, Elastoplastic flexure of round steel beams. 1. Springback coefficient, Steel in Translation 48(3) (2018) 149-153.

DOI: 10.3103/s0967091218030117

Google Scholar

[16] V.N. Shinkin, Elastoplastic flexure of round steel beams. 2. Residual Stress, Steel in Translation 48(11) (2018) 718-723.

DOI: 10.3103/s0967091218110098

Google Scholar

[17] P.M. Dixit, U.S. Dixit, Modeling of Metal Forming and Machining Processes by Finite Element and Soft Computing Methods, Springer, (2008).

Google Scholar

[18] R. S. Hingole, Advances in Metal Forming: Expert System for Metal Forming, Springer, (2015).

DOI: 10.1007/978-3-662-44497-9

Google Scholar

[19] J. Hu, Z. Marciniak, J. Duncan, Mechanics of Sheet Metal Forming, Butterworth-Heinemann, (2002).

Google Scholar

[20] S.-J. Kang, Sintering: Densification, Grain Growth and Microstructure, Butterworth-Heinemann, (2004).

Google Scholar

[21] F. Klocke, Manufacturing Processes: 1. Cutting, Springer, (2011).

Google Scholar

[22] Y. Lim, R. Venugopal, A.G. Ulsoy, Process Control for Sheet-Metal Stamping Process Modeling, Controller Design and Stop-Floor Implementation, Springer, (2014).

DOI: 10.1007/978-1-4471-6284-1

Google Scholar

[23] V.N. Shinkin, Residual stresses in elastoplastic bending of round bar, Materials Science Forum 946 (2019) 862-867.

DOI: 10.4028/www.scientific.net/msf.946.862

Google Scholar

[24] V.N. Shinkin, Tubes' rupture at faulty fusion of welding seam, Materials Science Forum 946 (2019) 868-873.

DOI: 10.4028/www.scientific.net/msf.946.868

Google Scholar

[25] G.A. Smirnov-Alyaev, Resistance of Materials to Plastic Deformations, Mashgiz, (1949).

Google Scholar

[26] I.A. Birger, Residual stresses, Mashgiz, (1963).

Google Scholar

[27] J. Lin, D. Balint, M. Pietrzyk, Microstructure Evolution in Metal Forming Processes, Woodhead Publishing, (2012).

Google Scholar

[28] C.V. Nielsen, W. Zhang, L.M. Alves, N. Bay, P. Martins, Modeling of Thermo-Electro-Mechanical Processes: Applications in Metal Forming and Resistance Welding, Springer, (2013).

DOI: 10.1007/978-1-4471-4643-8

Google Scholar

[29] M. Predeleanu, P. Gilormini, Advanced Methods in Materials Processing Defects, vol. 45, Elsevier Science, (1997).

Google Scholar

[30] C.E. Wilko, Formability: A Review of Parameters and Processes that Control, Limit or Enhance the Formability of Sheet Metal, Springer, (2011).

Google Scholar