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Prediction of short fatigue crack growth of Ti‐6Al‐4V
Authors:K Wang  F Wang  W Cui  T Hayat  B Ahmad
Affiliation:1. School of Naval Architecture, Ocean and Civil Engineering, Shanghai Jiao Tong University, , Shanghai, 200030 China;2. School of Naval Architecture and Ocean Engineering, Jiangsu University of Science and Technology, , Zhenjiang, 212003 China;3. Hadal Science and Technology Research Center, Shanghai Ocean University, , Shanghai, 201306 China;4. Nonlinear Analysis and Applied Mathematics (NAAM) Research Group, Faculty of Science, King Abdulaziz University, , Jeddah, 21589 Saudi Arabia;5. Department of Mathematics, Quaid‐i‐Azam University, , Islamabad, 45320 Pakistan
Abstract:It is observed that the short fatigue cracks grow faster than long fatigue cracks at the same nominal driving force and even grow at stress intensity factor range below the threshold value for long cracks in titanium alloy materials. The anomalous behaviours of short cracks have a great influence on the accurate fatigue life prediction of submersible pressure hulls. Based on the unified fatigue life prediction method developed in the authors' group, a modified model for short crack propagation is proposed in this paper. The elastic–plastic behaviour of short cracks in the vicinity of crack tips is considered in the modified model. The model shows that the rate of crack propagation for very short cracks is determined by the range of cyclic stress rather than the range of the stress intensity factor controlling the long crack propagation and the threshold stress intensity factor range of short fatigue cracks is a function of crack length. The proposed model is used to calculate short crack propagation rate of different titanium alloys. The short crack propagation rates of Ti‐6Al‐4V and its corresponding fatigue lives are predicted under different stress ratios and different stress levels. The model is validated by comparing model prediction results with the experimental data.
Keywords:crack propagation threshold  fatigue crack propagation rate  short fatigue cracks  titanium alloy  unified fatigue life prediction method
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