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Microstructure Evolution, Tensile Properties, and Fatigue Damage Mechanisms in Ti-6Al-4V Alloys Fabricated by Two Additive Manufacturing Techniques

机译:两种添加剂制造技术制造的Ti-6Al-4V合金中的微观结构演化,拉伸性能和疲劳损伤机制

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Additive Manufacturing (AM) technology is capable of building 3D near-net-shaped functional parts directly from computer models, using unit materials, such as powder or wire. AM offers superior geometrical flexibility with significantly reduced manufacturing lead time, energy, and material waste. These benefits make AM desirable for critical transportation applications, providing that structural integrity and performance requirements are met or exceeded. In this study, structural materials fabricated by two AM techniques were investigated: Laser Engineered Net Shaping (LENS) and Electron Beam Melting (EBM). Ti-6Al-4V alloys were produced using both methods and various processing conditions, which resulted in different microstructures and mechanical properties given their unique thermal histories. Characteristic microstructures were determined for all cases. Room temperature tensile and fatigue crack growth (FCG) properties were also evaluated and compared in different orientations with respect to the deposition direction. The effects of post-deposition heat treatment on tensile and FCG properties were determined. The results are systematically presented and discussed from both the material/process optimization, as well as structural design and fatigue life prediction perspectives.
机译:添加剂制造(AM)技术能够使用单位材料(如粉末或电线)直接从计算机型号建立3D近净功能部件。我提供卓越的几何灵活性,可显着减少制造铅,能量和材料浪费。这些益处对关键的运输应用来说是理想的,提供结构完整性和性能要求满足或超过。在该研究中,研究了两种AM技术制造的结构材料:激光工程净整形(透镜)和电子束熔化(EBM)。使用两种方法和各种加工条件制备Ti-6Al-4V合金,这导致鉴于其独特的热历史,产生不同的微观结构和机械性能。确定所有病例的特征微观结构。还评估室温拉伸和疲劳裂纹生长(FCG)性质,并以不同取向相对于沉积方向进行比较。确定了沉积后热处理对拉伸和FCG性能的影响。从材料/过程优化以及结构设计和疲劳寿命预测视角,系统地呈现和讨论了结果。

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