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[11] S.A. Meguid, G. Shagal, J.C. Stranart, Finite element modelling of shot-peening residual stresses, Journal of Materials Processing Technology, 92-93 (1999) 401-404 | Khác | |
[12] S.A. Meguid, G. Shagal, J.C. Stranart, 3D FE analysis of peening of strain-rate sensitive materials using multiple impingement model, International Journal of Impact Engineering, 27 (2002) 119-134 | Khác | |
[13] T. Kim, H. Lee, S. Jung, J.H. Lee, A 3D FE model with plastic shot for evaluation of equi-biaxial peening residual stress due to multi-impacts, Surface and Coatings Technology, 206 (2012) 3125-3136 | Khác | |
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[16] T. Honda, M. Ramulu, A.S. Kobayashi, Shot peening and fatigue crack growth in 7075- T7351 aluminum, in: Key Engineering Materials, 2005, pp. 72-77 | Khác | |
[17] T. Honda, M. Ramulu, A.S. Kobayashi, Effect of shot peening on fatigue crack growth in 7075-T7351, in: ASTM Special Technical Publication, 2008, pp. 33-46 | Khác | |
[18] T. Honda, M. Ramulu, A.S. Kobayashi, Effect of shot peening on fatigue crack growth in 7075-T7351, Journal of ASTM International, 2 (2005) 39-52 | Khác | |
[19] M.A. Hossian, M. Lim, S. Huh, W. Park, A study on fatigue crack propagation properties using the x-ray diffraction method, in: Materials Science Forum, 2008, pp. 1162- 1169 | Khác | |
[20] O. Takakuwa, M. Nishikawa, H. Soyama, Suppression of fatigue crack growth in austenite stainless steel by cavitation peening, in: Key Engineering Materials, 2011, pp. 641- 644 | Khác |
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