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Fundamental mechanisms of laser shock processing of metals and ceramics

机译:金属和陶瓷的激光冲击加工的基本机理

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Laser shock processing (LSP) is a novel surface engineering technique that utilizes a nanosecond pulse laser to generate plasma-driven shock waves, which can induce high compressive residual stresses extending to a depth of more than 1 mm from the surface. It has been widely applied to metallic components in aircrafts to improve the fatigue resistance. However, the fundamental mechanisms underlying the effects of LSP on the different materials and their performance remain poorly understood. This manuscript reviews the novel research studies by our team to use experimental approaches to understand the microstructural evolution in metal and ceramic materials during the LSP process, and elucidate the mechanisms that enable LSP to improve mechanical and irradiation properties. In austenitic steels, we discovered that the LSP-induced microstructures could improve the resistance to irradiation damage. The mechanisms are related to the defect sinks generated by LSP such as dislocations and twin boundaries. Compared to metals, LSP has not been widely applied to ceramics and its mechanisms on ceramics are less understood. LSP of alumina ceramics can induce localized plastic deformation near the surface and along grain boundaries. As a result, the mechanical properties of ceramic materials such as fracture toughness can be improved.
机译:激光冲击处理(LSP)是一种新颖的表面工程技术,利用纳秒脉冲激光产生等离子驱动的冲击波,该电磁波可引起高压缩残余应力,延伸至距表面1mm以上的深度。它已被广泛应用于飞机的金属部件,以提高抗疲劳性。但是,对LSP对不同材料及其性能产生影响的基本机制仍知之甚少。该手稿回顾了我们团队的新颖研究成果,旨在使用实验方法来了解LSP过程中金属和陶瓷材料的微观结构演变,并阐明使LSP改善机械性能和辐照性能的机理。在奥氏体钢中,我们发现LSP诱导的显微组织可以提高对辐射损伤的抵抗力。这些机制与LSP产生的缺陷汇有关,例如位错和孪晶边界。与金属相比,LSP尚未广泛应用于陶瓷,并且其在陶瓷上的作用机理还不甚了解。氧化铝陶瓷的LSP可以在表面附近和沿晶界引起局部塑性变形。结果,可以改善陶瓷材料的机械性能,例如断裂韧性。

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