[1]
W.M. Steen, J. Mazumder, Laser Material Processing, Springer, New York, (2010).
Google Scholar
[2]
I.V. Ushakov, V.A. Feodorov, I.J. Permyakova, Mechanical characteristics and crystallization of annealed metallic glass 82K3XCP, Proceedings of SPIE - The International Society for Optical Engineering. 5400 (2004) 261-264.
DOI: 10.1117/12.555528
Google Scholar
[3]
V.P. Veiko, V.I. Konov, Fundamentals of Laser–Assisted Micro– and Nanotechnologies, Springer, New York, (2014).
Google Scholar
[4]
N. Medvedev, H. O. Jeschke, B. Ziaja, Nonthermal phase transitions in semiconductors induced by a femtosecond extreme ultraviolet laser pulse, New Journal of Physics. 15 (2013) 015016.
DOI: 10.1088/1367-2630/15/1/015016
Google Scholar
[5]
I.V. Ushakov, Method of mechanical testing of laser treated metallic glass by indenters with different geometry, Proceedings of SPIE - The International Society for Optical Engineering. 6597 (2007) 659714.
DOI: 10.1117/12.726773
Google Scholar
[6]
V.I. Emel'yanov, I.F. Uvarova, Nonlinear-optical deformation of an acoustic subsystem and the superfast smoothing of semiconductor surfaces by short laser pulses, Bulletin of the Academy of Sciences of the U.S.S.R., Physical series. 50(6) (1985) 164-169.
Google Scholar
[7]
V.N. Shinkin, Direct and inverse non-linear approximation of hardening zone of steel, Chernye Metally. 3 (2019) 32-37.
Google Scholar
[8]
V.I. Emel'yanov, Self-organisation of ordered defect–deformation microstructures and nanostructures on the surfaces of solids under the action of laser radiation, Quantum Electronics. 29(7) (1999) 561-577.
DOI: 10.1070/qe1999v029n07abeh001533
Google Scholar
[9]
J. Bonse, S. Graf, Maxwell meets Marangoni — A review of theories on laser-induced periodic surface structures, Laser and Photonics Reviews. 14 (2020) 2000215.
DOI: 10.1002/lpor.202000215
Google Scholar
[10]
I.V. Ushakov, Yu.V. Simonov, Formation of surface properties of VT18u titanium alloy by laser pulse treatment, Materials Today: Proceedings. 19(5) (2019) 2051-2055.
DOI: 10.1016/j.matpr.2019.07.072
Google Scholar
[11]
V.N. Shinkin, Preliminary straightening of steel strip, Chernye Metally. 5 (2018) 34-40.
Google Scholar
[12]
J. Sipe, H. van Driel, Laser induced periodic surface structure: an experimental and theoretical review, Proceedings of SPIE – Trends in Quantum Electronics. 1033 (1989) 302-318.
DOI: 10.1117/12.950633
Google Scholar
[13]
V.I. Emel'yanov, Self-organisation of ordered nano- and microstructures on the semiconductor surface under the action of laser radiation, Laser Physics. 18(2008) 682-718.
DOI: 10.1134/s1054660x08060029
Google Scholar
[14]
V.I. Emel'yanov, V.S. Makin, I.F. Uvarov, Formation of ordered vacancy-deformation structures on metal surface under laser irradiation, Physics and Chemistry of Materials Treatment. 24(2) (1990) 108-114.
Google Scholar
[15]
I.V. Ushakov, How a crack and the defect material in its neighborhood affect the radiation strength of transparent materials, Journal of Optical Technology. 75(2) (2008) 128-131.
DOI: 10.1364/jot.75.000128
Google Scholar
[16]
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
[17]
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
[18]
L.D. Landau, E.M. Lifshitz, Theory of Elasticity, Pergamon Press, Oxford, (1986).
Google Scholar
[19]
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
[20]
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
[21]
I. Safronov, A. Ushakov, Effect of simultaneous improvement of plasticity and microhardness of an amorphous-nanocrystalline material based on Co, as a result of laser processing of nanosecond duration, Materials Today: Proceedings. 38(4) (2021) 1516-1520.
DOI: 10.1016/j.matpr.2020.08.141
Google Scholar