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梯度结构钛合金超高周疲劳中的内部裂纹特征

Internal crack characteristics in very-high-cycle fatigue of a gradient structured titanium alloy.

作者信息

Pan Xiangnan, Qian Guian, Wu Shengchuan, Fu Yanan, Hong Youshi

机构信息

State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, Chinese Academy of Sciences, Beijing, 100190, China.

School of Engineering Science, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Sci Rep. 2020 Mar 16;10(1):4742. doi: 10.1038/s41598-020-61484-3.

Abstract

Gradient structure (GS) is commonly designed and processed in engineering materials to improve mechanical properties especially fatigue performance by taking advantage of the strengthened surface. However, whether the very-high-cycle fatigue (VHCF) property can be improved by GS is questioning due to the different crack initiation mechanisms between low-, high-cycle and VHCF. In this paper, GS of a Ti-6Al-4V alloy is generated by pre-torsion and characterized by electron backscatter diffraction. Then the VHCF behavior of the GS specimen is studied. The fractography and synchrotron radiation X-ray microtomography presented detailed characteristics of the internal crack initiation region in VHCF of the titanium alloy with GS. The results indicated that, in contrast to the low- and high-cycle regimes, the VHCF strength is reduced for the specimens with GS. Thus, the GS induced by pre-torsion cannot enhance the VHCF strength of the titanium alloy. This implies that VHCF test (property) is an important consideration for the microstructural designed materials. The graphical abstract is available in Supplementary information.

摘要

梯度结构(GS)在工程材料中通常被设计和加工,以利用强化表面来改善机械性能,尤其是疲劳性能。然而,由于低周、高周和超高周疲劳之间不同的裂纹萌生机制,超高周疲劳(VHCF)性能是否能通过梯度结构得到改善仍存在疑问。在本文中,通过预扭转产生了Ti-6Al-4V合金的梯度结构,并通过电子背散射衍射进行表征。然后研究了梯度结构试样的超高周疲劳行为。断口分析和同步辐射X射线显微断层扫描揭示了具有梯度结构的钛合金在超高周疲劳中内部裂纹萌生区域的详细特征。结果表明,与低周和高周情况相反,具有梯度结构的试样的超高周疲劳强度降低。因此,预扭转诱导的梯度结构不能提高钛合金的超高周疲劳强度。这意味着超高周疲劳试验(性能)是微观结构设计材料的一个重要考虑因素。图形摘要见补充信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c89/7075889/cd6d72c35f9d/41598_2020_61484_Fig1_HTML.jpg

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