[1] |
VACCARI J A.Laser shock extends fatigue life[J].American Machinist,1992(7):62-64. |
[2] |
CHENG Y R,MIAO L X,HOU B L.Fatigue strength[M].Beijing:China Railway Press,1992:12-45(in Chinese). |
[3] |
WARREN A W,GUO Y B,CHEN S C.Massive parallel laser shock peening:simulation,analysis,and validation[J].International Journal of Fatigue,2008,30(1):188-197. |
[4] |
MASAKI K,OCHI Y,MATSUMURA T.Effects of laser peening treatment on high cycle fatigue properties of degassing-processed cast aluminum alloy[J].Materials Science and Engineering,2007,A468/470:171-175. |
[5] |
KING A,STEUWER A,WOODWARD C,et al.Effects of fatigue and fretting on residual stresses introduced by laser shock peening[J].Materials Science and Engineering,2006,A435/436(5):12-18. |
[6] |
SUN Y Q,ZHOU J Zh,LIANG Q L,et al.Optimization of laser peening parameters using Taguchi method[J].Laser Technology,2008,32(4):377-379(in Chinese). |
[7] |
WANG M.Principle and technology of anti-fatigue manufacturing[M].Nanjing:Phoenix Science Press,1998:41-52(in Chinese). |
[8] |
HATAMLEH O,LYONS J,FORMAN R.Laser and shot peening effects on fatigue crack growth in friction stir welded 7075-T7351 aluminum alloy joints[J].International Journal of Fatigue,2007,29(26):421-434. |
[9] |
RUBIO-GONZLEZ C,OCAA J L,GOMEZ-ROSAS G,et al.Effect of laser shock processing on fatigue crack growth and fracture toughness of 6061-T6 aluminum alloy[J].Materials Science and Engineering,2004,A386(1/2):291-295. |
[10] |
HUO L X.Fracture behavior and evaluation of welding structure[M].Beijing:China Machine Press,2000:350-360(in Chinese). |