Effect of Stress Ratio on the Fatigue Crack Propagation Behavior of the Nickel-based GH4169 Alloy
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作者:
Shen Ye
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机构:East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
Shen Ye
Jian-Guo Gong
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机构:East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
Jian-Guo Gong
Xian-Cheng Zhang
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机构:East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
Xian-Cheng Zhang
Shan-Tung Tu
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机构:East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
Shan-Tung Tu
Cheng-Cheng Zhang
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机构:East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
Cheng-Cheng Zhang
机构:
[1] East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education, School of Mechanical and Power Engineering
[2] Shanghai Engineering Research Center for Commercial Aircraft Engine,AECC Commercial Aircraft Engine Co. LTD
The fatigue crack growth behavior of the newly developed GH4169 nickel-based alloy at a maximum stress of 700 MPa and different stress ratios was investigated in the present work employing the specimens with a single micro-notch at a frequency of 129 Hz at room temperature. The results demonstrate a typical three-stage process of fatigue crack propagation processing from the microstructurally small crack (MSC) stage to the physically small crack (PSC) stage, and finally to the long crack stage. The crack growth rate in the MSC stage is relatively high, while the crack growth rate in the PSC stage is relatively low. A linear function of crack-tip reversible plastic zone size was proposed to predict the crack growth rate, indicating an adequate prediction solution.