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Revealing extraordinary tensile plasticity in layered Ti-Al metal composite

机译:揭示层状Ti-Al金属复合材料的非凡拉伸塑性

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摘要

Layered Ti-Al metal composite (LMC) fabricated by hot-pressing and hot-rolling process displays higher ductility than that of both components. In this paper, a combination of digital image correlation (DIC) and X-ray tomography revealed that strain delocalization and constrained crack distribution are the origin of extraordinary tensile ductility. Strain delocalization was derived from the transfer of strain partitioning between Ti and Al layer, which relieved effectively the strain localization of LMC. Furthermore, the extensive cracks of LMC were restricted in the interface due to constraint effect. Layered architecture constrained the distribution of cracks and significantly relieved the strain localization. Meanwhile, the transfer of strain partitioning and constrained crack distribution were believed to inhibit the strain localization of Ti and change the deformation mechanisms of Ti. Our finding enriches current understanding about simultaneously improving the strength and ductility by structural design.
机译:通过热压和热轧工艺制造的层状Ti-Al金属复合材料(LMC)的延展性高于两种成分。在本文中,数字图像相关性(DIC)和X射线断层扫描技术的结合表明,应变离域和受约束的裂纹分布是非凡的拉伸延展性的起源。应变离域是由Ti和Al层之间的应变分配转移引起的,从而有效地缓解了LMC的应变局部化。此外,由于约束效应,LMC的大裂缝被限制在界面中。分层结构限制了裂纹的分布并显着减轻了应变的局限性。同时,据信应变分配的转移和受约束的裂纹分布会抑制Ti的应变局部化并改变Ti的变形机理。我们的发现丰富了当前关于通过结构设计同时提高强度和延展性的理解。

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