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钛中氧敏感性的作用机制基础。

Mechanistic basis of oxygen sensitivity in titanium.

作者信息

Chong Yan, Poschmann Max, Zhang Ruopeng, Zhao Shiteng, Hooshmand Mohammad S, Rothchild Eric, Olmsted David L, Morris J W, Chrzan Daryl C, Asta Mark, Minor Andrew M

机构信息

Department of Materials Science and Engineering, University of California, Berkeley, Berkeley, CA 94720, USA.

National Center for Electron Microscopy, Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

Sci Adv. 2020 Oct 23;6(43). doi: 10.1126/sciadv.abc4060. Print 2020 Oct.

Abstract

One of the most potent examples of interstitial solute strengthening in metal alloys is the extreme sensitivity of titanium to small amounts of oxygen. Unfortunately, these small amounts of oxygen also lead to a markedly decreased ductility, which in turn drives the increased cost to purify titanium to avoid this oxygen poisoning effect. Here, we report a systematic study on the oxygen sensitivity of titanium that provides a clear mechanistic view of how oxygen impurities affect the mechanical properties of titanium. The increased slip planarity of Ti-O alloys is caused by an interstitial shuffling mechanism, which is sensitive to temperature, strain rate, and oxygen content and leads to the subsequent alteration of deformation twinning behavior. The insights from our experimental and computational work provide a rationale for the design of titanium alloys with increased tolerance to variations in interstitial content, with notable implications for more widespread use of titanium alloys.

摘要

金属合金中间隙溶质强化最显著的例子之一是钛对少量氧的极端敏感性。不幸的是,这些少量的氧也会导致延展性显著降低,这反过来又增加了提纯钛以避免这种氧中毒效应的成本。在此,我们报告了一项关于钛的氧敏感性的系统研究,该研究提供了一个清晰的机理视图,以说明氧杂质如何影响钛的力学性能。Ti-O合金中滑移平面性的增加是由一种间隙重排机制引起的,该机制对温度、应变速率和氧含量敏感,并导致随后变形孪晶行为的改变。我们的实验和计算工作所得出的见解为设计对间隙含量变化具有更高耐受性的钛合金提供了理论依据,这对钛合金更广泛的应用具有显著意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31c0/7608824/dc1dbd331e47/abc4060-F1.jpg

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