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Laser Peening Process and Its Impact on Materials Properties in Comparison with Shot Peening and Ultrasonic Impact Peening

Materials · 2014 · Vol. 7(12) · pp. 7925–7974
Abdullahi Kachalla GujbaMamoun Medraj

Abstract

The laser shock peening (LSP) process using a Q-switched pulsed laser beam for surface modification has been reviewed. The development of the LSP technique and its numerous advantages over the conventional shot peening (SP) such as better surface finish, higher depths of residual stress and uniform distribution of intensity were discussed. Similar comparison with ultrasonic impact peening (UIP)/ultrasonic shot peening (USP) was incorporated, when possible. The generation of shock waves, processing parameters, and characterization of LSP treated specimens were described. Special attention was given to the influence of LSP process parameters on residual stress profiles, material properties and structures. Based on the studies so far, more fundamental understanding is still needed when selecting optimized LSP processing parameters and substrate conditions. A summary of the parametric studies of LSP on different materials has been presented. Furthermore, enhancements in the surface micro and nanohardness, elastic modulus, tensile yield strength and refinement of microstructure which translates to increased fatigue life, fretting fatigue life, stress corrosion cracking (SCC) and corrosion resistance were addressed. However, research gaps related to the inconsistencies in the literature were identified. Current status, developments and challenges of the LSP technique were discussed.

Surface Treatment and Residual StressErosion and Abrasive MachiningPeeningShot peeningLaser peeningMaterials scienceResidual stressShock (circulatory)Composite materialUltrasonic sensorStress corrosion crackingCorrosion

Funding

  • Concordia University
Citations
389
FWCI
15.62
field-weighted impact
References
199
Percentile
99%
vs. same field & year
Citations per year
References
Laser shock processing of aluminium alloys. Application to high cycle fatigue behaviour
Materials Science and Engineering A · 1996 · 703 citations
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