Chinese Journal of Lasers, Volume. 32, Issue 7, 1006(2005)
Substructural Modification of Austenitic Stainless Steel Induced by Laser Shock
[1] [1] B. Hopkinson. A method of measuring the pressure produced in the detonation of high explosives or by the impact of bullet [J]. Philosophical Transactions of the Royal Society of London, 1914, 213A:437~456
[2] [2] G. I. Taylor. The use of flat-ended projectiles for determining dynamic yield stress [J]. Proc. Royal Society of London, 1948, 194A:289~299
[4] [4] M. A. Meyers, Y. B. Xu, Q. Xue et al.. Micro-structural evolution in adiabatic localization in stainless steel [J]. Acta Materialia, 2003, 51:1307~1325
[5] [5] M. C. Mataya, M. J. Carr, G. Krauss. Flow localization and shear band formation in a precipitation strengthened austenitic stainless steel [J]. Metallurgical Transactions A, 1982, 13A:1263~1274
[6] [6] J. A. Hines, K. S. Vecchio. Recrystallization kinetics within adiabatic shear bands [J]. Acta Materialia, 1997, 45(2):635~649
[7] [7] U. Andrade, M. A. Meyers, K. S. Vecchio et al.. Dynamic recrystallization in high-strain-rate plastic deformation of copper [J]. Acta Materialia, 1994, 42(8):3183~3195
[8] [8] R. M. White. Elastic wave generation by electron bombardment or electromagnetic wave absorption [J]. J. Appl. Phys., 1963, 34:2123~2124
[9] [9] C. A. Askaryon, E. M. Morez. Pressure on evaporation of matter in a radiation beam [J]. Journal of Experimental and Theoretical Physics Letters, 1963, 16:1638~1644
[11] [11] P. Peyre, R. Fabbro, P. Merrien et al.. Laser shock processing of aluminum alloys. Application to high cycle fatigue behaviour [J]. Materials Science and Engineering, 1996, A210:102~113
[13] [13] Zhou Ming, Zhang Yongkang, Zhang Xiaorong et al.. Finite element simulation of laser-induced film spallation [J]. J. Appl. Phys., 2003, 94(5):2968~2975
[14] [14] M. A. Meyers, F. Gregori, B. K. Kad et al.. Laser-induced shock compression of monocrystalline copper: characterization and analysis [J]. Acta Materialia, 2003, 51:1211~1228
[15] [15] P. Peyre, X. Scherpereel, L. Berthe et al.. Surface modifications induced in 316L steel by laser peening and shot-peening. Influence on pitting corrosion resistance [J]. Materials Science and Engineering, 2000, A280:294~302
[17] [17] Zhao Yapu, Liu Sheng. On the definition of coefficient of strain-rate sensitivity[J]. Chinese Journal of Aeronautics, 2001, 14(2):78~82
[18] [18] Q. X. Dai, A. D. Wang, X. N. Cheng et al.. Effect of alloying elements and temperature on strength of cryogenic austenitic steel [J]. Materials Science and Engineering, 2001, A311(1/2):205~210
[19] [19] L. E. Murr, E. A. Trillo, A. A. Bujanda et al.. Comparasion of residual microstructures associated with impact craters in fcc stainless steel and bcc iron targets: the microtwin versus microband issue [J]. Acta Materialia, 2002, 50:121~131
[20] [20] J. P. Chu, J. M. Rigsbee, G. Banas et al.. Laser-shock processing effects on surface microstructure and mechanical properties of low carbon steel [J]. Materials Science and Engineering, 1999, A260:260~268
[21] [21] V. F. Nesterenko, M. A. Meyers, J. C. LaSalvia et al.. Shear localization and recrystallization in high-strain, high-strain-rate deformation of tantalum [J]. Materials Science and Engineering, 1997, A229:23~41
Get Citation
Copy Citation Text
[in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Substructural Modification of Austenitic Stainless Steel Induced by Laser Shock[J]. Chinese Journal of Lasers, 2005, 32(7): 1006