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热处理工艺对一种镍基高温合金微观组织和疲劳行为的影响

Effect of Heat Treatment Process on Microstructure and Fatigue Behavior of a Nickel-Base Superalloy.

作者信息

Zhang Peng, Zhu Qiang, Chen Gang, Qin Heyong, Wang Chuanjie

机构信息

School of Materials Science and Engineering, Harbin Institute of Technology at Weihai, Weihai 264209, China.

Central Iron & Steel Research Institute, Beijing 100081, China.

出版信息

Materials (Basel). 2015 Sep 16;8(9):6179-6194. doi: 10.3390/ma8095299.

Abstract

The study of fatigue behaviors for nickel-base superalloys is very significant because fatigue damage results in serious consequences. In this paper, two kinds of heat treatment procedures (Pro.I and Pro.II) were taken to investigate the effect of heat treatment on microstructures and fatigue behaviors of a nickel-base superalloy. Fatigue behaviors were studied through total strain controlled mode at 650 °C. Manson-Coffin relationship and three-parameter power function were used to predict fatigue life. A good link between the cyclic/fatigue behavior and microscopic studies was established. The cyclic deformation mechanism and fatigue mechanism were discussed. The results show that the fatigue resistance significantly drops with the increase of total strain amplitudes. Manson-Coffin relationship can well predict the fatigue life for total strain amplitude from 0.5% to 0.8%. The fatigue resistance is related with heat treatment procedures. The fatigue resistance performance of Pro.I is better than that of Pro.II. The cyclic stress response behaviors are closely related to the changes of the strain amplitudes. The peak stress of the alloy gradually increases with the increase of total strain amplitudes. The main fracture mechanism is inhomogeneous deformation and the different interactions between dislocations and γ' precipitates.

摘要

镍基高温合金疲劳行为的研究具有重要意义,因为疲劳损伤会导致严重后果。本文采用两种热处理工艺(工艺I和工艺II)来研究热处理对一种镍基高温合金微观组织和疲劳行为的影响。通过在650℃下的总应变控制模式研究疲劳行为。利用曼森 - 科芬关系和三参数幂函数来预测疲劳寿命。建立了循环/疲劳行为与微观研究之间的良好联系。讨论了循环变形机制和疲劳机制。结果表明,随着总应变幅值的增加,疲劳抗力显著下降。曼森 - 科芬关系能够很好地预测总应变幅值在0.5%至0.8%之间的疲劳寿命。疲劳抗力与热处理工艺有关。工艺I的疲劳抗力性能优于工艺II。循环应力响应行为与应变幅值的变化密切相关。合金的峰值应力随着总应变幅值的增加而逐渐增大。主要断裂机制是不均匀变形以及位错与γ'析出相之间的不同相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab40/5512906/731ac1ea1f7a/materials-08-05299-g001.jpg

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