[1]
A. Vorontsov, Stress state of a hollow cylindrical workpiece during mandrel drilling, Messenger of Mechanical Engineering. 2 (2007) 72-77.
Google Scholar
[2]
A. Isaev, A.R. Lebedev, S.V. Vlaskin, Analytical research of stress and deformations in processes of elasto-plastic draft of the high thin-walled cylinders processed by a burnishing, The Strengthening Technologies and Coverings. 13(4) (2017) 155-159.
Google Scholar
[3]
O. Reut, L. Boginski, E. Petushik, Dry Isostatic Pressing of the Condensed Materials, Debor, Minsk, (1998).
Google Scholar
[4]
L. Kachanov, Bases of the Theory of Plasticity, Sience, Moscow, (1969).
Google Scholar
[5]
O. Rozenberg, Mechanics of Interaction of the Tool at the Deforming Drawing, Naukova Dymka, Kiev, (1981).
Google Scholar
[6]
V. Ribin, Big Plastic Deformations and Destruction of Metals, Metallurgy, Moscow, (1986).
Google Scholar
[7]
R. Valiev, Thenanostructural Materials Received by Intensive Plastic Deformation, Logos, Moscow, (2000).
Google Scholar
[8]
V. Segal, Slip line solutions, deformation mode and loading history during equal channel angular extrusion, Mater. Sci. Eng. A. 345(1-2) (2003) 36-46.
DOI: 10.1016/s0921-5093(02)00258-7
Google Scholar
[9]
S. Shima, M. Oyane, Plasticity theory for porous metals, Internat. J.ofMech.Sinc. 186 (1976) 285-291.
Google Scholar
[10]
G. Zhuravlev, A. Gvozdev, A. Navoev, Development of mathematical models of plastic environments for resource-saving technologies of metal systems, Chebyshevskii Sbornik, TGPU publishing house of L. N. Tolstoy, Tula. 20(2) (2019) 462-477.
DOI: 10.22405/2226-8383-2019-20-2-467-482
Google Scholar
[11]
M.B. Shtern, O.V. Mikhaylov, The modified models of deformation of powder materials on the basis of plastic and hardly deformed powders, Bulletin of National Technical University Kiev Polytechnical Institute,, Mechanical Engineering Series. 62 (2011) 13-19.
Google Scholar
[12]
J. Park, Numerical analysis of plastic deformation in constrained groove pressing, in: Y.T. Zhu T.G. Langdon R.S. Mishra S.L. Setniatin M.J. Saran T.C. Lowe (Eds.), Ultrafine Grained Materials II, The Minerals, Metals & Materials Society, 2002, pp.253-258.
DOI: 10.1002/9781118804537.ch29
Google Scholar
[13]
Y. Beygelzimer, Grain refinement and viscous fracture of metals during severe plastic deformation: Mathematical simulation, in: Y.T. Zhu, V. Varyukhin (Eds.), Nanostructured Materials By High-Pressure Severe Plastic Deformation, NATO Science Series (II: Mathematics, Physics and Chemistry), vol 212. Springer, Dordrecht, 2006, pp.181-185.
DOI: 10.1007/1-4020-3923-9_25
Google Scholar
[14]
V. Tvergaard, Effect of yield surface curvature and void nucleation on plastic flow localization, J. Mech. Phys. Solids. 35(1) (1987) 43-91.
DOI: 10.1016/0022-5096(87)90027-5
Google Scholar
[15]
T. Konstantinova, E. Primisler, A. Dobrikov, Bending of a crystal lattice as an independent form of plastic deformation, Met. Phys. Adv. Tech. 16 (1997) 1191-1201.
Google Scholar
[16]
M. Shtern, Features of flat deformation of porous bodies, Powder Metallurgy. 3 (1982) 16-22.
Google Scholar
[17]
M. Shtern, O. Mikhaylov, Questions of Mechanics and Physics of Processes of Cutting and Cold Plastic Deformation, ISM NAN of Ukraine, Kiev, (2002).
Google Scholar
[18]
M. Shtern, O. Mikhaylov, Defects formation in die compaction: prediction and numerical analysis, Proc. Powder Metallurgy European Congress, Nice, France. 3 (2001) 50-57.
Google Scholar
[19]
P.R. Brewin, O. Coube, P. Doremus, J.H. Tweed (Eds.), Modelling of Powder Die Compaction, Series: Engineering Materials and Processes, Springer, London, (2008).
DOI: 10.1007/978-1-84628-099-3_1
Google Scholar
[20]
T. Chakherlou, B. Aghdam, A. Akbari, K. Saeedi, Effect of cold expansion on the fatigue life of Al 2024-T3in double shear lap joints: Experimental and numerical investigations, Materials & Design. 31(6) (2010) 2858-2866.
DOI: 10.1016/j.matdes.2011.07.024
Google Scholar
[21]
V. Skorohod, A Plasticity Theory for Porous Solids, Rheological Bases of the Theory of Agglomeration, Naukova Dymka, Kiev, (1972).
Google Scholar
[22]
R.G. Green, Mechanical behavior of additive manufactured, powder bed laser-fused materials, Int. Journ. of Mech. Sci. 14 (1972) 215-226.
Google Scholar
[23]
M. Todd, M. Mowerand, J. Long, Mechanical behavior of additive manufactured, powder bed laser-fused materials, Mater. Sci. and Eng. A. 651(10) (2016) 198-213.
DOI: 10.1016/j.msea.2015.10.068
Google Scholar
[24]
O. Rozenberg, E. Pashenko, A. Maidayuk, Evolution of distribution of density, the saved-up deformation and topological features of powder cylindrical preparations in the conditions of deforming drawings, Supersolid Materials. 2 (2008) 81-91.
Google Scholar