| Citation: | SU Xianjin, HU Jianhui, LI Shaolin, et al. Nonlinear surface wave detection method of corrosion defects of TC4 alloy[J]. Journal of Aerospace Power, 2025, 40(3):20230401 doi: 10.13224/j.cnki.jasp.20230401 |
Considering the issue of hot corrosion in the TC4 alloy compressor blades of aircraft engines, a non-destructive testing method based on nonlinear surface waves was proposed. Firstly, the propagation behavior of nonlinear ultrasonic surface waves with different sizes of pits was studied through numerical simulation, and the relationship between the sizes of elliptical-pitting and nonlinear coefficients was investigated. Subsequently, by establishing a model of the ultrasonic testing probe wedge block, the impact of wedge characteristic dimensions on the surface wave conversion efficiency was examined. Finally, a nonlinear ultrasonic testing system was designed and constructed to experimentally validate the numerical results. The findings indicated that the length and angle of the detection probe wedge block affected the surface wave conversion efficiency. Through numerical simulation and experimental validation, it was observed that, under the same depth-to-width ratio, the corrosion defect size and nonlinear coefficient exhibited a negative correlation, suggesting that the nonlinear ultrasonic coefficient can be used to characterize the extent of material corrosion damage.
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