Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy
Low cycle fatigue (LCF) behavior of a single crystal superalloy was investigated at 760 °C. Microstructure evolution and fracture mechanism were studied by scanning electron microscopy (SEM) and transmission electron microscopy (TEM), respectively. The results show that the fatigue data fluctuation...
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doaj-d935e59f0135449bbe077a753108498a2020-11-24T23:48:12ZengElsevierProgress in Natural Science: Materials International1002-00712015-02-01251788310.1016/j.pnsc.2015.01.009Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloyZhenxue ShiXiaoguang WangShizhong LiuJiarong LiLow cycle fatigue (LCF) behavior of a single crystal superalloy was investigated at 760 °C. Microstructure evolution and fracture mechanism were studied by scanning electron microscopy (SEM) and transmission electron microscopy (TEM), respectively. The results show that the fatigue data fluctuation was small and the fatigue parameters of the alloy had been determined. On increasing the cyclic number, the alloy initially showed slight cyclic softening at the early two or three cycles and slowly hardened to some extent afterwards, then kept stable for the most of the remaining fatigue life. The LCF of the alloy at 760 °C can be attributed to the main elastic damage in fatigue processing. The initiation site of fatigue crack was at or near the surface of the samples. Crack propagated perpendicularly to the loading direction at first and then along {111} octahedral slip planes. The fatigue fracture mechanism was quasi-cleavage fracture. The γ′ phase morphology still maintained cubic shape after fracture. There were a number of slip bands shear the γ′ precipitates and γ matrix near the fracture surface of the specimen. The inhomogeneous deformation microstructure was developed by dislocation motion of cross-slip and a limited γ′ precipitate shearing by slip band, stacking faults or single dislocation was observed.http://www.sciencedirect.com/science/article/pii/S1002007115000106Single crystal superalloyLCFFracture mechanismMicrostructure |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhenxue Shi Xiaoguang Wang Shizhong Liu Jiarong Li |
spellingShingle |
Zhenxue Shi Xiaoguang Wang Shizhong Liu Jiarong Li Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy Progress in Natural Science: Materials International Single crystal superalloy LCF Fracture mechanism Microstructure |
author_facet |
Zhenxue Shi Xiaoguang Wang Shizhong Liu Jiarong Li |
author_sort |
Zhenxue Shi |
title |
Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy |
title_short |
Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy |
title_full |
Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy |
title_fullStr |
Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy |
title_full_unstemmed |
Low cycle fatigue properties and microstructure evolution at 760 °C of a single crystal superalloy |
title_sort |
low cycle fatigue properties and microstructure evolution at 760 °c of a single crystal superalloy |
publisher |
Elsevier |
series |
Progress in Natural Science: Materials International |
issn |
1002-0071 |
publishDate |
2015-02-01 |
description |
Low cycle fatigue (LCF) behavior of a single crystal superalloy was investigated at 760 °C. Microstructure evolution and fracture mechanism were studied by scanning electron microscopy (SEM) and transmission electron microscopy (TEM), respectively. The results show that the fatigue data fluctuation was small and the fatigue parameters of the alloy had been determined. On increasing the cyclic number, the alloy initially showed slight cyclic softening at the early two or three cycles and slowly hardened to some extent afterwards, then kept stable for the most of the remaining fatigue life. The LCF of the alloy at 760 °C can be attributed to the main elastic damage in fatigue processing. The initiation site of fatigue crack was at or near the surface of the samples. Crack propagated perpendicularly to the loading direction at first and then along {111} octahedral slip planes. The fatigue fracture mechanism was quasi-cleavage fracture. The γ′ phase morphology still maintained cubic shape after fracture. There were a number of slip bands shear the γ′ precipitates and γ matrix near the fracture surface of the specimen. The inhomogeneous deformation microstructure was developed by dislocation motion of cross-slip and a limited γ′ precipitate shearing by slip band, stacking faults or single dislocation was observed. |
topic |
Single crystal superalloy LCF Fracture mechanism Microstructure |
url |
http://www.sciencedirect.com/science/article/pii/S1002007115000106 |
work_keys_str_mv |
AT zhenxueshi lowcyclefatiguepropertiesandmicrostructureevolutionat760cofasinglecrystalsuperalloy AT xiaoguangwang lowcyclefatiguepropertiesandmicrostructureevolutionat760cofasinglecrystalsuperalloy AT shizhongliu lowcyclefatiguepropertiesandmicrostructureevolutionat760cofasinglecrystalsuperalloy AT jiarongli lowcyclefatiguepropertiesandmicrostructureevolutionat760cofasinglecrystalsuperalloy |
_version_ |
1725486745095503872 |