摘要
In this study, high–cycle fatigue (HCF) damage behavior of Ti–55531 alloy with bimodal microstructure (BM) was studied at room temperature. Fatigue crack initiation and propagation mechanisms of the alloy were thoroughly investigated by studying fracture morphology, crack front profiles, polished microstructure and dislocation structures beneath fatigue main–crack initiation sites of HCF samples. The results indicate that this alloy presents an excellent HCF strength (107cycles, R = −1) as equal to 656 MPa. Dislocation analyses exhibit that typical dislocation structures include straight prismatic slip lines, curved dislocation lines, dislocation tangles and {1¯011}αtype twins in fatigued specimens. Primary αpparticles and secondary αslamellae accommodate more cyclic deformation than retained βrlaths. Furthermore, the dislocation free zone can be observed in the αp/βtrans(β transformed microstructure) boundary. As a result, microcracks primarily nucleate at the αp/βtransinterface or at αpparticles. Moreover, a few microcracks initiate at the αs/βrinterface or at αsplates of βtransmicrostructure. These fatigue crack initiation behaviors promote the fracture of Ti–55531 alloy.
源语言 | 英语 |
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页(从-至) | 1966-1975 |
页数 | 10 |
期刊 | Journal of Alloys and Compounds |
卷 | 695 |
DOI | |
出版状态 | 已出版 - 2017 |