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In-situ aluminum control for titanium aluminide via electron beam powder bed fusion to realize a dual microstructure

机译:通过电子束粉末床熔融对铝化钛进行原位铝控制,实现双重微观结构

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摘要

With electron beam powder bed fusion (PBF-EB), an additive manufacturing (AM) technique, complex-shaped components with excellent properties from high-temperature materials can be manufactured. The latest research on the PBF-EB technique reveals the possibility of establishing different microstructures and differing mechanical properties inside a component made of titanium aluminides (TiAl). In detail, two different well-adjusted process parameter sets lead to varying melt pool characteristics and a significant change in localized aluminum (Al) loss during melting. After heat treatment, the as-built microstructure containing two different levels of Al is transformed into differing customized microstructure and properties. Areas with high Al concentration will be transformed into a nearly lamellar microstructure (NL+γ) with enhanced strength. In contrast, areas with lowered Al concentration will be changed into a fully lamellar microstructure (FL) that displays an increased creep resistance. The presented dual microstructure concept, based on the functionally graded material (FGM) concept, is a groundbreaking benefit from the PBF-EB process necessary to overcome prevailing design limitations. For the first time, components such as TiAl turbine blades can consist of creep-resistant airfoil sections and high strength root sections taking advantage of new design possibilities and additional weight savings at robust dual microstructure designs.
机译:用电子束粉床融合(PBF-EB)加法制造(AM)技术,复杂形状零件的属性可以从高温材料生产。技术揭示了建立的可能性不同的微观结构和不同力学性能在一个组件构成的多弧离子镀钛铝化合物。不同的适应过程参数集导致不同的熔池和一个特征显著改变局部铝(Al)损失在融化。竣工包含两个不同的微观结构艾尔转化为不同的水平定制的微观结构和性质。高铝浓度将发生改变进近层状微观结构(NL +γ)增强力量。降低铝浓度将变成了全层状微观结构(FL)显示蠕变阻力增加。微观结构的概念,基于功能梯度材料(FGM)的概念,是一个开创性的受益PBF-EB过程需要克服的设计的局限性。随着钛铝合金涡轮叶片可以包含抗蠕变和高机翼部分根部分利用新的力量设计的可能性和额外的重量储蓄在强劲的双微观结构设计。

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