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钛的晶粒细化可防止低温氧脆。

Grain refinement in titanium prevents low temperature oxygen embrittlement.

机构信息

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

Department of Materials Science and Engineering, Kyoto University, Kyoto, Japan.

出版信息

Nat Commun. 2023 Feb 1;14(1):404. doi: 10.1038/s41467-023-36030-0.

Abstract

Interstitial oxygen embrittles titanium, particularly at cryogenic temperatures, which necessitates a stringent control of oxygen content in fabricating titanium and its alloys. Here, we propose a structural strategy, via grain refinement, to alleviate this problem. Compared to a coarse-grained counterpart that is extremely brittle at 77 K, the uniform elongation of an ultrafine-grained (UFG) microstructure (grain size ~ 2.0 µm) in Ti-0.3wt.%O is successfully increased by an order of magnitude, maintaining an ultrahigh yield strength inherent to the UFG microstructure. This unique strength-ductility synergy in UFG Ti-0.3wt.%O is achieved via the combined effects of diluted grain boundary segregation of oxygen that helps to improve the grain boundary cohesive energy and enhanced <c + a> dislocation activities that contribute to the excellent strain hardening ability. The present strategy will not only boost the potential applications of high strength Ti-O alloys at low temperatures, but can also be applied to other alloy systems, where interstitial solution hardening results into an undesirable loss of ductility.

摘要

间隙氧会使钛脆化,尤其是在低温下,这就需要严格控制钛及其合金的氧含量。在这里,我们通过细化晶粒提出了一种结构策略来缓解这个问题。与在 77K 下极其脆的粗晶相比,Ti-0.3wt.%O 的均匀伸长率成功地提高了一个数量级,同时保持了超细晶(晶粒尺寸约为 2.0μm)微观结构固有的超高屈服强度。UFG Ti-0.3wt.%O 中的这种独特的强度-延性协同作用是通过稀释晶界氧偏析的综合作用实现的,这有助于提高晶界结合能,并增强<c+α>位错活动,从而提高了优异的应变硬化能力。该策略不仅可以提高高强度 Ti-O 合金在低温下的潜在应用,还可以应用于其他合金体系,其中间隙固溶硬化会导致延性的不可接受的损失。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5125/9892041/94a084e0150f/41467_2023_36030_Fig1_HTML.jpg

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