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合金化对钛中滑移间歇性的影响及其对驻留疲劳的启示。

The influence of alloying on slip intermittency and the implications for dwell fatigue in titanium.

作者信息

Worsnop Felicity F, Lim Rachel E, Bernier Joel V, Pagan Darren C, Xu Yilun, McAuliffe Thomas P, Rugg David, Dye David

机构信息

Department of Materials, Royal School of Mines, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.

Department of Materials Science and Engineering, Pennsylvania State University, 221 Steidle Building, University Park, PA, 16802, USA.

出版信息

Nat Commun. 2022 Oct 10;13(1):5949. doi: 10.1038/s41467-022-33437-z.

Abstract

Dwell fatigue, the reduction in fatigue life experienced by titanium alloys due to holds at stresses as low as 60% of yield, has been implicated in several uncontained jet engine failures. Dislocation slip has long been observed to be an intermittent, scale-bridging phenomenon, similar to that seen in earthquakes but at the nanoscale, leading to the speculation that large stress bursts might promote the initial opening of a crack. Here we observe such stress bursts at the scale of individual grains in situ, using high energy X-ray diffraction microscopy in Ti-7Al-O alloys. This shows that the detrimental effect of precipitation of ordered TiAl is to increase the magnitude of rare pri〈a〉 and bas〈a〉 slip bursts associated with slip localisation. By contrast, the addition of trace O interstitials is beneficial, reducing the magnitude of slip bursts and promoting a higher frequency of smaller events. This is further evidence that the formation of long paths for easy basal plane slip localisation should be avoided when engineering titanium alloys against dwell fatigue.

摘要

驻留疲劳是指钛合金在应力低至屈服强度60%时保持应力所经历的疲劳寿命降低,这与几起喷气发动机非包容式故障有关。长期以来,人们观察到位错滑移是一种间歇性的、跨越尺度的现象,类似于地震中观察到的现象,但发生在纳米尺度,这引发了一种推测,即大应力突发可能促进裂纹的初始开裂。在这里,我们使用高能X射线衍射显微镜在Ti-7Al-O合金中原位观察到单个晶粒尺度上的这种应力突发。这表明有序TiAl析出的有害作用是增加与滑移局部化相关的罕见的〈a〉和〈a〉滑移突发的幅度。相比之下,添加微量间隙氧是有益的,可降低滑移突发的幅度并促进更高频率的较小事件。这进一步证明,在设计抗驻留疲劳的钛合金时,应避免形成易于基面滑移局部化的长路径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1825/9551089/183d02050b0a/41467_2022_33437_Fig1_HTML.jpg

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