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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >As-Fabricated and Heat-Treated Microstructures of the Ti-6AI-4V Alloy Processed by Selective Laser Melting
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As-Fabricated and Heat-Treated Microstructures of the Ti-6AI-4V Alloy Processed by Selective Laser Melting

机译:选择性激光熔化处理的Ti-6Al-4V合金的加工组织和热处理组织

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Selective laser melting (SLM) is a rapid manufacturing process that enables the buildup of very complex parts in short delays directly from powder beds. Due to the high laser beam energy during very short interaction times and the high solidification rates of the melting pool, the resulting micro structure is out-of-equilibrium and particularly textured. This type of as-fabricated micro structure may not satisfy the aeronautical criterion and requires post heat treatments. Optimized heat treatments are developed, in one side, to homogenize and form the stable phases α and β while preventing exaggerated grain growth. In the other side, heat treatment is investigated to relieve the thermal stresses appearing during cooling. This study is aimed at presenting the various types of microstructure of the Ti-6Al-4V alloy after postfab-rication heat treatments below or above the β transus. Tensile tests are then carried out at room temperature in order to assess the effect of the microstructures on the mechanical properties. The fine as-fabricated microstructure presents high yield and ultimate strengths, whereas the ductility is well below the standard. A strong anisotropy of fracture between the two loading directions is noted, which is attributed to the manufacturing defects. Conventional and optimized heat treatments exhibit high yield and ultimate strengths while the ductility is significantly improved. This is due to a new optimization of the process parameters allowing drastic reduction of the number of defects. These two heat treatments enable now a choice of the morphology of the grains between columnar or equiaxial as a function of the type of loading.
机译:选择性激光熔化(SLM)是一种快速的制造过程,可在很短的时间内直接从粉末床中堆积非常复杂的零件。由于在非常短的相互作用时间内就具有很高的激光束能量,并且熔池的固化速度很高,因此,所形成的微结构是不平衡的,尤其是织构化的。这种类型的微结构可能无法满足航空标准,因此需要进行后期热处理。在一侧开发了优化的热处理,以均匀化并形成稳定相α和β,同时防止晶粒过大生长。另一方面,研究了热处理以减轻冷却过程中出现的热应力。这项研究的目的是介绍在Ti瞬态之后或之后进行的预制热处理后的Ti-6Al-4V合金的各种显微组织。然后在室温下进行拉伸测试,以评估微结构对机械性能的影响。精细的预制微结构具有高屈服和极限强度,而延展性却远远低于标准。注意到在两个加载方向之间的强烈的断裂各向异性,这归因于制造缺陷。常规和优化的热处理具有高屈服强度和极限强度,同时延展性得到显着改善。这是由于对工艺参数进行了新的优化,可大幅减少缺陷数量。通过这两种热处理,现在可以根据负载类型选择圆柱状或等轴状之间的晶粒形态。

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