J. Winkler, C. T. Georgakis, and G. Fischer, Fretting fatigue behavior of high-strength steel monostrands under bending load, International Journal of Fatigue, vol.70, pp.13-23, 2015.

R. Pérez-mora, T. Palin-luc, C. Bathias, and P. C. Paris, Very high cycle fatigue of a high strength steel under sea water corrosion: A strong corrosion and mechanical damage coupling, International Journal of Fatigue, vol.74, pp.156-65, 2015.

G. C. Sih and B. Macdonald, Fracture mechanics applied to engineering problems-strain energy density fracture criterion, Engineering Fracture Mechanics, vol.6, pp.90033-90035, 1974.

J. Zhou, Z. Sun, P. Kanouté, and D. Retraint, Effect of surface mechanical attrition treatment on low cycle fatigue properties of an austenitic stainless steel, International Journal of Fatigue, vol.103, pp.309-326, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01878542

P. Ganesh, R. Sundar, H. Kumar, R. Kaul, K. Ranganathan et al., Studies on fatigue life enhancement of pre-fatigued spring steel specimens using laser shock peening, Materials and Design, vol.54, pp.734-775, 2014.

M. Kattoura, S. R. Mannava, D. Qian, and V. K. Vasudevan, Effect of laser shock peening on residual stress, microstructure and fatigue behavior of ATI 718Plus alloy, International Journal of Fatigue, vol.102, pp.121-155, 2017.

G. H. Majzoobi, K. Azadikhah, and J. Nemati, The effects of deep rolling and shot peening on fretting fatigue resistance of Aluminum-7075-T6, Materials Science and Engineering: A, vol.516, pp.235-282, 2009.

C. Ye, S. Suslov, B. J. Kim, E. A. Stach, and G. J. Cheng, Fatigue performance improvement in AISI 4140 steel by dynamic strain aging and dynamic precipitation during warm laser shock peening, Acta Materialia, vol.59, pp.1014-1039, 2011.

P. S. Prevéy, N. Jayaraman, N. Ontko, M. Shepard, R. Ware et al., Mitigation of Scc and Corrosion Fatigue Failures in 300M Landing Gear Steel Using Mechanical Suppression, Proceedings of the 6th Aircraft Corrosion Workshop, pp.1-12, 2004.

L. Bertini and C. Santus, Fretting fatigue tests on shrink-fit specimens and investigations into the strength enhancement induced by deep rolling, International Journal of Fatigue, vol.81, pp.179-90, 2015.

N. Naidu and S. Raman, Effect of shot blasting on plain fatigue and fretting fatigue behaviour of Al-Mg-Si alloy AA6061, International Journal of Fatigue, vol.27, pp.323-354, 2005.

Y. Lv, L. Lei, and L. Sun, Effect of shot peening on the fatigue resistance of laser surface melted 20CrMnTi steel gear, Materials Science and Engineering: A, vol.629, pp.8-15, 2015.

Z. Xu, J. Dunleavey, M. Antar, R. Hood, S. L. Soo et al., The influence of shot peening on the fatigue response of Ti-6Al-4V surfaces subject to different machining processes, International Journal of Fatigue, vol.111, pp.196-207, 2018.

S. A. Namjoshi, V. K. Jain, and S. Mall, Effects of Shot-Peening on Fretting-Fatigue Behavior of Ti-6Al-4V, Journal of Engineering Materials and Technology, vol.124, p.222, 2002.

G. H. Majzoobi and F. Abbasi, On the effect of shot-peening on fretting fatigue of Al7075-T6 under cyclic normal contact loading, Surface and Coatings Technology, vol.328, pp.292-303, 2017.

S. Tekeli, Enhancement of fatigue strength of SAE 9245 steel by shot peening, Materials Letters, vol.57, pp.604-612, 2002.

X. Zhang and D. Liu, Effect of shot peening on fretting fatigue of Ti811 alloy at elevated temperature, International Journal of Fatigue, vol.31, pp.889-93, 2009.

G. Li, S. Qu, M. X. Xie, and X. Li, Effect of ultrasonic surface rolling at low temperatures on surface layer microstructure and properties of HIP Ti-6Al-4V alloy, Surface and Coatings Technology, vol.316, pp.75-84, 2017.

D. Liu, D. Liu, X. Zhang, C. Liu, and N. Ao, Surface nanocrystallization of 17-4 precipitation-hardening stainless steel subjected to ultrasonic surface rolling process, Materials Science and Engineering: A, vol.726, pp.69-81, 2018.

Q. Zhang, Z. Hu, W. Su, H. Zhou, C. Liu et al., Microstructure and surface properties of 17-4PH stainless steel by ultrasonic surface rolling technology, Surface and Coatings Technology, vol.321, pp.64-73, 2017.

Y. Liu, X. Zhao, and D. Wang, Determination of the plastic properties of materials treated by ultrasonic surface rolling process through instrumented indentation, Materials Science and Engineering: A, vol.600, pp.21-31, 2014.

G. Li, S. G. Qu, Y. X. Pan, and X. Q. Li, Effects of the different frequencies and loads of ultrasonic surface rolling on surface mechanical properties and fretting wear resistance of HIP Ti-6Al-4V alloy, Applied Surface Science, vol.389, pp.324-358, 2016.

B. Wang, Y. Yin, Z. Gao, Z. Hou, and W. Jiang, Influence of the ultrasonic surface rolling process on stress corrosion cracking susceptibility of high strength pipeline steel in neutral pH environment, RSC Advances, vol.7, pp.36876-85, 2017.

L. X. Lu, J. Sun, L. Li, and Q. C. Xiong, Study on surface characteristics of 7050-T7451 aluminum alloy by ultrasonic surface rolling process, International Journal of Advanced Manufacturing Technology, vol.87, pp.2533-2542, 2016.

Z. Wang, Z. Xiao, C. Huang, L. Wen, and W. Zhang, Influence of Ultrasonic Surface Rolling on Microstructure and Wear Behavior of Selective Laser Melted Ti-6Al-4V Alloy, Materials (Basel), vol.10, p.1203, 2017.

C. Liu, D. Liu, X. Zhang, S. Yu, and W. Zhao, Effect of the Ultrasonic Surface Rolling Process on the Fretting Fatigue Behavior of Ti-6Al-4V Alloy, Materials (Basel), vol.2017

W. Ting, W. Dongpo, L. Gang, G. Baoming, and S. Ningxia, Investigations on the nanocrystallization of 40Cr using ultrasonic surface rolling processing, Applied Surface Science, vol.255, pp.1824-1833, 2008.

S. Carlsson and P. L. Larsson, On the determination of residual stress and strain fields by sharp indentation testing. PartI: theoretical and numerical analysis, Acta Materialia, p.13, 2001.

C. Liu, D. Liu, X. Zhang, S. Yu, and W. Zhao, Effect of the Ultrasonic Surface Rolling Process on the Fretting Fatigue Behavior of Ti-6Al-4V Alloy, Materials (Basel), vol.10, p.833, 2017.

M. Yasuoka, P. Wang, K. Zhang, Z. Qiu, K. Kusaka et al., Improvement of the fatigue strength of SUS304 austenite stainless steel using ultrasonic nanocrystal surface modification, Surface and Coatings Technology, vol.218, pp.93-101, 2013.

H. Qin, Z. Ren, J. Zhao, C. Ye, G. L. Doll et al., Effects of ultrasonic nanocrystal surface modification on the wear and micropitting behavior of bearing steel in boundary lubricated steel-steel contacts, Wear, pp.29-38, 2017.

H. Zhang, R. Chiang, H. Qin, Z. Ren, X. Hou et al., The effects of ultrasonic nanocrystal surface modification on the fatigue performance of 3D-printed Ti64, International Journal of Fatigue, vol.103, pp.136-182, 2017.

W. Ting, W. Dongpo, L. Gang, G. Baoming, and S. Ningxia, Investigations on the nanocrystallization of 40Cr using ultrasonic surface rolling processing, Applied Surface Science, vol.255, pp.1824-1833, 2008.

Y. Liu, L. Wang, and D. Wang, Finite element modeling of ultrasonic surface rolling process, Journal of Materials Processing Technology, vol.211, pp.2106-2119, 2011.

Y. Mutoh and J. Q. Xu, Fracture mechanics approach to fretting fatigue and problems to be solved, Tribology International, vol.36, pp.136-142, 2003.

K. Endo and H. Goto, Initiation and propagation of fretting fatigue cracks, Wear, vol.38, pp.311-335, 1976.

P. Zhang, S. X. Li, and Z. F. Zhang, General relationship between strength and hardness, Materials Science and Engineering A, vol.529, 2011.
DOI : 10.1016/j.msea.2011.08.061

Q. Yang, W. Zhou, P. Gai, X. Zhang, X. Fu et al., Investigation on the fretting fatigue behaviors of Ti-6Al-4V dovetail joint specimens treated with shot-peening, Wear, pp.81-90, 2017.

Y. B. Guo, A. W. Warren, and F. Hashimoto, The basic relationships between residual stress, white layer, and fatigue life of hard turned and ground surfaces in rolling contact, CIRP Journal of Manufacturing Science and Technology, vol.2, pp.129-163, 2010.

L. Yongshou, S. Xiaojun, L. Jun, and Y. Zhufeng, Finite element method and experimental investigation on the residual stress fields and fatigue performance of cold expansion hole, Materials and Design, vol.31, pp.1208-1223, 2010.

A. Amanov, I. S. Cho, D. E. Kim, and Y. S. Pyun, Fretting wear and friction reduction of CP titanium and Ti-6Al-4V alloy by ultrasonic nanocrystalline surface modification, Surface and Coatings Technology, vol.207, pp.135-177, 2012.

S. A. Kumar, R. Sundar, S. Raman, H. Kumar, R. Gnanamoorthy et al., Fretting Wear Behavior of Laser Peened Ti-6Al-4V, Tribology Transactions, vol.55, pp.615-638, 2012.

V. Fridrici, S. Fouvry, P. Kapsa, and P. Perruchaut, Prediction of cracking in Ti-6Al-4V alloy under fretting-wear: Use of the SWT criterion, Wear, vol.259, pp.300-308, 2005.

R. B. Waterhouse and J. , Residual stress and surface roughness in fretting fatigue, Journal of Physics D: Applied Physics, vol.25, pp.236-245, 2000.
DOI : 10.1088/0022-3727/25/1a/036

D. Liu, B. Tang, X. Zhu, H. Chen, J. He et al., Improvement of the fretting fatigue and fretting wear of Ti6Al4V by duplex surface modification, Surface and Coatings Technology, pp.234-242, 1999.

A. Cadario and B. Alfredsson, Influence of residual stresses from shot peening on fretting fatigue crack growth, Fatigue and Fracture of Engineering Materials and Structures, vol.30, pp.947-63, 2007.

H. Lee, J. O. Mall, and S. , Fretting fatigue behaviour of shot-peened Ti-6Al-4V at room and elevated temperatures, Fatigue and Fracture of Engineering Materials and Structures, vol.26, pp.767-78, 2003.

H. Lee and S. Mall, Fretting behavior of shot peened Ti-6Al-4V under slip controlled mode, Wear, vol.260, pp.642-51, 2006.
DOI : 10.1016/j.wear.2005.03.022

H. Lee and S. Mall, Analysis of fretting fatigue of cavitation shotless peened Ti-6Al-4V, Tribology Letters, vol.38, pp.125-158, 2010.
DOI : 10.1007/s11249-010-9581-9

Y. Fu, N. L. Loh, A. W. Batchelor, D. Liu, X. Zhu et al., Improvement in fretting wear and fatigue resistance of Ti-6Al-4V by application of several surface treatments and coatings, Surface and Coatings Technology, vol.106, pp.193-200, 1998.

M. P. Szolwinski and T. N. Farris, Mechanics of fretting fatigue crack formation, Wear, vol.198, pp.93-107, 1996.
DOI : 10.1016/0043-1648(96)06937-2

Y. Zuo, H. Wang, and J. Xiong, The aspect ratio of surface grooves and metastable pitting of stainless steel, Corrosion Science, vol.44, pp.25-35, 2002.