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受晶体微观结构启发的耐损伤结构材料。

Damage-tolerant architected materials inspired by crystal microstructure.

作者信息

Pham Minh-Son, Liu Chen, Todd Iain, Lertthanasarn Jedsada

机构信息

Department of Materials, Imperial College London, London, UK.

Department of Materials Science and Engineering, University of Sheffield, Sheffield, UK.

出版信息

Nature. 2019 Jan;565(7739):305-311. doi: 10.1038/s41586-018-0850-3. Epub 2019 Jan 16.

Abstract

Architected materials that consist of periodic arrangements of nodes and struts are lightweight and can exhibit combinations of properties (such as negative Poisson ratios) that do not occur in conventional solids. Architected materials reported previously are usually constructed from identical 'unit cells' arranged so that they all have the same orientation. As a result, when loaded beyond the yield point, localized bands of high stress emerge, causing catastrophic collapse of the mechanical strength of the material. This 'post-yielding collapse' is analogous to the rapid decreases in stress associated with dislocation slip in metallic single crystals. Here we use the hardening mechanisms found in crystalline materials to develop architected materials that are robust and damage-tolerant, by mimicking the microscale structure of crystalline materials-such as grain boundaries, precipitates and phases. The crystal-inspired mesoscale structures  in our architected materials are as important for their mechanical properties as are crystallographic microstructures in metallic alloys. Our approach combines the hardening principles of metallurgy and architected materials, enabling the design of materials with desired properties.

摘要

由节点和支柱的周期性排列组成的结构材料重量轻,并且能够展现出传统固体中不存在的性能组合(如负泊松比)。先前报道的结构材料通常由相同的“单位晶胞”构建而成,这些单位晶胞的排列方式使得它们都具有相同的取向。因此,当加载超过屈服点时,会出现局部高应力带,导致材料机械强度的灾难性崩塌。这种“屈服后崩塌”类似于金属单晶中位错滑移所导致的应力快速下降。在这里,我们利用晶体材料中发现的强化机制,通过模仿晶体材料的微观结构(如晶界、析出物和相)来开发坚固且耐损伤的结构材料。我们的结构材料中受晶体启发的介观结构对其机械性能的重要性,与金属合金中的晶体学微观结构相当。我们的方法将冶金学和结构材料的强化原理相结合,从而能够设计出具有所需性能的材料。

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