A Practical Guide to Source and Receiver Locations for Surface Wave Transmission Measurements across a Surface-Breaking Crack in Plate Structures
Abstract
:1. Introduction
2. Method
2.1. Numerical Simulation Using FEM
2.2. Experiments: SWT Measurements in Plexiglas Specimens
2.2.1. Test Specimen
2.2.2. Test Setup, Data Acquisition and Signal Processing for the SWT Measurements
3. Result and Discussion
3.1. Interaction of Surface Waves and Multiple Bottom Reflected Waves
3.2. Effect of Bottom Reflected Waves on Trn
3.3. Effect of Bottom Reflected Waves on Crack Depth Estimation
4. Summary and Conclusions
- Consistent with previous research based on the half-space assumption, the transmission coefficient of surface waves in a plate could be significantly enhanced, and the values are sensitive to the location of receivers from crack-opening, which is known as the near-field scattering effect in the SWT measurements. It has been demonstrated in the literature that the near-field effect could be reasonably suppressed when the receivers are located far enough from crack opening (e.g., 2λR). However, results based on experiments and numerical simulations in this study exhibit that the approximate far-field criterion based on the half-space assumption is only valid when the effect of bottom reflected bulk waves is not significant.
- It is recommended in this study that a receiver should be placed not farther than the thickness of a plate from an impact source to reasonably suppress the interference of surface waves and bottom reflected bulk waves in a plate. Please note that this simplified rule; however, may not be effective for the application to relatively thin plate with a thickness less than a critical thickness, Hcr, which is dependent on Poisson’s ratio and the wavelength of surface waves λR. An approximate equation relating the normalized critical thickness, Hcr/λR (critical thickness normalized by wavelength of surface waves) and Poisson’s ratio of materials, v, was established in this study.
- It was verified from a series of FE simulations that the practical guideline to source-to-receiver locations and receiver-to-crack locations are effective to obtain reliable and consistent crack depth estimation by the surface wave transmission measurements in a plate.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A Validation of FE model by a Comparison with Experiments in Plexiglas Specimen
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v | E (GPa) | ρ (kg/m3) | H (mm) | H (mm) | xsc (mm) | T (μs) |
---|---|---|---|---|---|---|
0.33 | 5.8 | 1200 | 100, 150, 200, 300, 400, 800 | 0, 10, 20, 30, 40, 50 | 100, 150,200, 250, 300 | 30 |
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Kim, J.; Kee, S.-H.; Lee, J.-W.; Candelaria, M.D. A Practical Guide to Source and Receiver Locations for Surface Wave Transmission Measurements across a Surface-Breaking Crack in Plate Structures. Sensors 2019, 19, 3793. https://doi.org/10.3390/s19173793
Kim J, Kee S-H, Lee J-W, Candelaria MD. A Practical Guide to Source and Receiver Locations for Surface Wave Transmission Measurements across a Surface-Breaking Crack in Plate Structures. Sensors. 2019; 19(17):3793. https://doi.org/10.3390/s19173793
Chicago/Turabian StyleKim, Janghwan, Seong-Hoon Kee, Jin-Wook Lee, and Ma. Doreen Candelaria. 2019. "A Practical Guide to Source and Receiver Locations for Surface Wave Transmission Measurements across a Surface-Breaking Crack in Plate Structures" Sensors 19, no. 17: 3793. https://doi.org/10.3390/s19173793
APA StyleKim, J., Kee, S. -H., Lee, J. -W., & Candelaria, M. D. (2019). A Practical Guide to Source and Receiver Locations for Surface Wave Transmission Measurements across a Surface-Breaking Crack in Plate Structures. Sensors, 19(17), 3793. https://doi.org/10.3390/s19173793