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High-performance integrated additive manufacturing with laser shock peening -induced microstructural evolution and improvement in mechanical properties of Ti6Al4V alloy components

机译:高性能综合添加剂制造,激光冲击喷丸 - 诱导的微观结构演化和改善Ti6Al4V合金组分的力学性能

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摘要

High-performance integrated additive manufacturing with laser shock peening (LSP), is an innovative selective laser melting (SLM) method to improve mechanical properties, and refine microstructure in the surface layer of metallic components. Phase, residual stress distribution, surface micro-hardness, tensile properties and microstructural evolution of SLMed and SLM-LSPed specimens in horizontal and vertical directions were examined. In particular, typical microstructural features in the surface layer were characterized by transmission electron microscopy (TEM) observations. Results indicated that surface micro-hardness subjected to massive LSP treatment had significantly improved, tensile residual stress was transformed into compressive residual stress by LSP-induced plastic deformation, and both SLMed specimens in two directions exhibited a good combination of the ultimate tensile strength (UTS) and ductility. Meanwhile, high-density dislocations and a large number of mechanical twins were generated in the coarse alpha' martensites by laser shock wave (LSW), and gradually evolved into refined alpha' martensites. Furthermore, according to the included angle between LSW and the deposited plane, two kinds of LSW-induced atomic diffusion processes at the interfaces between both adjacent deposited layers were presented, and the influence mechanisms of the included angle between LSW and the deposited plane on tensile properties of both SLM-LSPed specimens were revealed. The hybrid additive manufacturing technology combined SLM with LSP realizes the high-efficiency and high-quality integrated manufacturing of the formed metallic components for practical applications.
机译:具有激光冲击喷丸(LSP)的高性能综合添加剂制造是一种创新的选择性激光熔化(SLM)方法,可改善机械性能,并在金属部件的表面层中细胞细胞进行细胞结构。检查了水平和垂直方向上的SLM和SLM-LSPED样本的SLME和SLM-LSPED试样的相位,残余应力分布,表面微硬度和微观结构演化。特别地,表面层中的典型微观结构特征通过透射电子显微镜(TEM)观察表征。结果表明,对大规模的LSP处理进行的表面微硬度显着提高,通过LSP诱导的塑性变形转化到压缩残余应力中的拉伸残余应力,两个方向上的两个SLMED样本都表现出极限拉伸强度的良好组合(UTS和延展性。同时,通过激光冲击波(LSW)在粗alpha的马氏体中产生高密度脱位和大量机械双胞胎,并逐渐进化到精制的α马氏体中。此外,根据LSW和沉积平面之间的夹角,呈现了两种相邻沉积层之间的接口处的两种LSW诱导的原子扩散过程,并且LSW与拉伸沉积平面之间的伸出角度的影响机制揭示了SLM-LSPED样本的性质。混合添加剂制造技术组合使用LSP的SLM实现了实际应用的形成金属部件的高效率和高质量的综合制造。

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