Energy Transfer Efficiency Based Nonlinear Ultrasonic Testing Technique for Debonding Defects of Aluminum Alloy Foam Sandwich Panels
Abstract
:1. Introduction
2. Nonlinear Ultrasonic Debonding Detection Theory of Thin Plate
2.1. Traditional Nonlinear Ultrasound
2.2. Energy Transfer Integral Method
3. Experimental Study
3.1. Testing Platform
3.2. Sample Preparation
3.3. Nonlinear Ultrasonic Characteristics in Thin Plate
3.4. Quantitative Test of Debonding Defects
4. Conclusions
- The nonlinear coefficient has a monotone correspondence with the size of the debonding defect. With the increase in the size of the debonding defect, the nonlinear characteristics will be significantly enhanced, and the relative nonlinear coefficient will also increase.
- Plate thickness will greatly affect the nonlinear coefficient in the detection of debonding defects. When the plate thickness is less than the near-surface blind region of ultrasonic probe, the generation of second harmonic wave will be affected by the fundamental wave echo, thus affecting the traditional nonlinear coefficient. The energy transfer efficiency integral method presented in this paper to characterize the nonlinear coefficients can effectively improve the detection accuracy.
- Compared with the traditional nonlinear coefficient method, the integral method can be used as an effective supplement for the detection of debonding defects in the near surface blind region.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Frequency | Nominal Element Size | Transducer Type |
---|---|---|
0.5 | 1/25 | VIDEOSCAN V101-RB |
1 | 0.5/12.7 | VIDEOSCAN V103-RB |
2.25 | 0.5/12.7 | VIDEOSCAN V106-RB |
5 | 0.5/12.7 | VIDEOSCAN V109-RB |
Sample Number | Sample Size | Debonding Defects Size |
---|---|---|
1# | 1000 1 | 0, 1, , 3, 4, , 6, 7, , 9, |
2# | 1000 2 | 0, 1, , 3, 4, , 6, 7, , 9, |
3# | 1000 3 | 0, 1, , 3, 4, , 6, 7, , 9, |
4# | 250 10 | 0, 1, , 3, 4, , 6, 7, , 9, |
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Tu, J.; Yao, N.; Ling, Y.; Zhang, X.; Song, X. Energy Transfer Efficiency Based Nonlinear Ultrasonic Testing Technique for Debonding Defects of Aluminum Alloy Foam Sandwich Panels. Sensors 2023, 23, 3008. https://doi.org/10.3390/s23063008
Tu J, Yao N, Ling Y, Zhang X, Song X. Energy Transfer Efficiency Based Nonlinear Ultrasonic Testing Technique for Debonding Defects of Aluminum Alloy Foam Sandwich Panels. Sensors. 2023; 23(6):3008. https://doi.org/10.3390/s23063008
Chicago/Turabian StyleTu, Jun, Nan Yao, Yi Ling, Xu Zhang, and Xiaochun Song. 2023. "Energy Transfer Efficiency Based Nonlinear Ultrasonic Testing Technique for Debonding Defects of Aluminum Alloy Foam Sandwich Panels" Sensors 23, no. 6: 3008. https://doi.org/10.3390/s23063008
APA StyleTu, J., Yao, N., Ling, Y., Zhang, X., & Song, X. (2023). Energy Transfer Efficiency Based Nonlinear Ultrasonic Testing Technique for Debonding Defects of Aluminum Alloy Foam Sandwich Panels. Sensors, 23(6), 3008. https://doi.org/10.3390/s23063008