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首页> 外文期刊>Materials Science and Engineering >Synergistic effects of crystalline microstructure, architected mesostructure,and processing defects on the mechanical behaviour of Ti6A14V meta-crystals
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Synergistic effects of crystalline microstructure, architected mesostructure,and processing defects on the mechanical behaviour of Ti6A14V meta-crystals

机译:结晶微观结构,架构性腹腔结构和加工缺陷对Ti6a14V Meta晶体力学行为的协同作用

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The mimicry of crystalline microstructure at the meso-scale creates a new class of architected materials, termed meta-crystals, and offers effective ways of significantly improving the toughness and eliminating the post-yield collapse of architected materials. The application of meta-crystal approach to crystalline alloys provides exciting opportunities for high strength structural components. This study investigated the mechanical behaviour of polycrystal-like meta-crystals fabricated from a widely used alloy, Ti6A14V, by laser powder bed fusion (LPBF). The use of Ti6A14V in fabricating meta-crystals created materials containing hierarchical lattice structures across length-scales: the atomic lattice, the intrinsic crystalline microstructure, and the architected polycrystal-like mesostructure, with each hierarchical feature playing an influential role in the mechanical behaviour of meta-crystals. This present study examined the hierarchical lattice structures at different lengthscales and their contribution to the behaviour of meta-crystals. In particular, the presence of acicular α' martensitic micro-structure was responsible for low ductility in the as-printed meta-crystals. Although heat-treatment was able to transform the martensitic microstructure to a typical α+β microstructure thus increasing the ductility, it was found that notch-like defects from lack of fusion at the free surface of struts were significantly detrimental. The study subsequently altered the meso-structural parameters to reduce the influence of the process defects and explored the effects of the heat treatment on the altered meta-crystals. Such alternations of structural design and crystalline microstructure appeared to be successful in minimising the processing effect, enabling the crystal-mimicry approach to effectively improve the toughness of Ti6A14V meta-crystals.
机译:Meso-Scale的结晶微观结构的模拟创造了一类新的架构材料,称为Meta晶体,并提供了显着改善韧性的有效方法,并消除了架构材料的产量后塌陷。 Meta晶体方法在结晶合金中的应用为高强度结构部件提供了令人兴奋的机会。本研究研究了由广泛使用的合金,Ti6a14V,激光粉床融合(LPBF)制造的多晶状状的元晶体的力学行为。使用Ti6a14v在制造元晶体中产生的材料横跨长度尺度含有分层晶格结构的材料:原子晶格,内在结晶微观结构和架构的多晶状型腹腔结构,每个分层特征在机械行为中发挥影响力作用元晶体。本研究检测了不同长度的等级晶格结构及其对元晶体行为的贡献。特别地,针状α'马氏体微结构的存在负责在印刷的Meta晶体中的低延性。尽管热处理能够将马氏体微观结构转化为典型的α+β微观结构,但是增加了延展性,发现延伸性缺乏融合在支柱的自由表面上的缺失缺陷是显着的损害。该研究随后改变了中间结构参数,以减少工艺缺陷的影响,并探讨了热处理对改变的荟萃晶体的影响。这种结构设计和结晶微结构的交替似乎在最小化加工效果方面是成功的,使得晶体模拟方法能够有效地改善Ti6a14V Meta晶体的韧性。

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