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Improvement of mechanical properties and life extension of high reliability structural components by laser shock processing

机译:通过激光冲击处理改善高可靠性结构部件的机械性能和使用寿命

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Profiting by the increasing availability of laser sources delivering intensities above 109 W/cm2 with pulse energies in the range of several Joules and pulse widths in the range of nanoseconds, laser shock processing (LSP) is being consolidating as an effective technology for the improvement of surface mechanical and corrosion resistance properties of metals and is being developed as a practical process amenable to production engineering. The main acknowledged advantage of the laser shock processing technique consists on its capability of inducing a relatively deep compression residual stresses field into metallic alloy pieces allowing an improved mechanical behaviour, explicitly, the life improvement of the treated specimens against wear, crack growth and stress corrosion cracking. Following a short description of the theoretical/computational and experimental methods developed by the authors for the predictive assessment and experimental implementation of LSP treatments, experimental results on the residual stress profiles and associated surface properties modification successfully reached in typical materials (specifically Al and Ti alloys) under different LSP irradiation conditions are presented. In particular, the analysis of the residual stress profiles obtained under different irradiation parameters and the evaluation of the corresponding induced surface properties as roughness and wear resistance are presented
机译:通过提供强度超过109 W / cm2且脉冲能量在几焦耳范围内,脉冲宽度在纳秒范围内的激光源,其可用性不断提高,激光冲击处理(LSP)作为一种有效的技术正在得到巩固,以改善金属的表面机械性能和耐腐蚀性能,并且正在开发为适合生产工程的实用工艺。激光冲击处理技术的主要公认优势在于其能够将相对较深的压缩残余应力场引入金属合金件中,从而改善了机械性能,明显地,提高了经处理试样的抗磨损,裂纹扩展和应力腐蚀的寿命开裂。在简短描述了作者开发的用于LSP处理的预测评估和实验实施的理论/计算和实验方法之后,成功地完成了典型材料(特别是Al和Ti合金)的残余应力分布和相关的表面性能改性的实验结果)在不同的LSP辐照条件下。尤其是,分析了在不同辐照参数下获得的残余应力分布,并对相应的诱导表面特性(如粗糙度和耐磨性)进行了评估。

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