首页> 美国卫生研究院文献>Materials >Influence of Inherent Surface and Internal Defects on Mechanical Properties of Additively Manufactured Ti6Al4V Alloy: Comparison between Selective Laser Melting and Electron Beam Melting
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Influence of Inherent Surface and Internal Defects on Mechanical Properties of Additively Manufactured Ti6Al4V Alloy: Comparison between Selective Laser Melting and Electron Beam Melting

机译:固有表面和内部缺陷对增材制造的Ti6Al4V合金力学性能的影响:选择性激光熔化和电子束熔化的比较

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摘要

Additive manufacture (AM) appears to be the most suitable technology to produce sophisticated, high quality, lightweight parts from Ti6Al4V alloy. However, the fatigue life of AM parts is of concern. In our study, we focused on a comparison of two techniques of additive manufacture—selective laser melting (SLM) and electron beam melting (EBM)—in terms of the mechanical properties during both static and dynamic loading. All of the samples were untreated to focus on the influence of surface condition inherent to SLM and EBM. The EBM samples were studied in the as-built state, while SLM was followed by heat treatment. The resulting similarity of microstructures led to comparable mechanical properties in tension, but, due to differences in surface roughness and specific internal defects, the fatigue strength of the EBM samples reached only half the value of the SLM samples. Higher surface roughness that is inherent to EBM contributed to multiple initiations of fatigue cracks, while only one crack initiated on the SLM surface. Also, facets that were formed by an intergranular cleavage fracture were observed in the EBM samples.
机译:增材制造(AM)似乎是用Ti6Al4V合金生产精密,高质量,轻质零件的最合适技术。但是,AM零件的疲劳寿命值得关注。在我们的研究中,我们着眼于静态和动态加载过程中的机械性能,比较了两种增材制造技术-选择性激光熔化(SLM)和电子束熔化(EBM)。所有样品均未经处理,以关注SLM和EBM固有的表面条件的影响。在建成状态下对EBM样品进行了研究,同时对SLM进行了热处理。所产生的微观结构相似性导致张力具有可比的机械性能,但是由于表面粗糙度和特定内部缺陷的差异,EBM样品的疲劳强度仅为SLM样品的一半。 EBM固有的较高的表面粗糙度会导致疲劳裂纹的多次引发,而在SLM表面上只会引发一个裂纹。此外,在EBM样品中观察到由晶间乳沟断裂形成的小面。

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