Ultrasonic Nonlinearity Experiment due to Plastic Deformation of Aluminum Plate Due to Bending Damage
Abstract
:1. Introduction
- It was experimentally verified that the superimposition effect of nonlinear Lamb waves applied to an aluminum plate;
- A comparative assessment of induced nonlinearities was conducted when subjecting the aluminum plate to bending loads within both the elastic and plastic regions;
- The experimental investigation further examined nonlinearity tendencies specific to each mode of the Lamb wave on the aluminum plate subjected to bending loads in the plastic region;
- A comparative analysis was performed to assess and analyze the induced nonlinearity due to compression plasticity and tensile plasticity in the aluminum plate subjected to bending.
2. Nonlinear Ultrasonic Theory
3. Experimental Setup
4. Experimental Result
5. Conclusions
- The nonlinearity of the specimens showed distinct behavior depending on the stress applied. Specimens subjected to stress within the elastic region exhibited increased nonlinearity, while specimens under stress within the plastic region displayed a decrease in nonlinearity. This indicates that the material’s response to bending stress varies depending on its elastic or plastic state;
- When analyzing the specimens with plastic deformation, it was observed that the nonlinearity tended to decrease in sections experiencing both tensile and compressive forces. This suggests that the plastic deformation resulted in a reduction of the nonlinearity of the material, possibly due to signal scattering caused by the plastic deformation itself;
- Both the symmetric and antisymmetric modes of Lamb waves exhibited similar nonlinear characteristics when subjected to compressive and tensile forces. This similarity suggests that the influence of stress on the nonlinearity of the material is consistent based on the chosen Lamb wave modes.
6. Discussion
Author Contributions
Funding
Conflicts of Interest
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81.0 MPa (0.2% Offset) | |
---|---|
Modulus of Elasticity () | 70.3 GPa |
Density () | 2.68 g/cc |
Poission’s ratio () | 0.33 |
Shear Modulus () | 25.9 GPa |
Stress | Maximum Deflection | Thickness | |
---|---|---|---|
Unstressed | - | - | 1 mm |
Elastic Region | 40.5 MPa | 9.45 mm | 1 mm |
Plastic region | 89.6 MPa | 12.13 mm | 1 mm |
Mode | Antisymmetric |
---|---|
(Fundamental frequency) | 4.45 MHz |
(Second harmonic) | 8.9 MHz |
(Phase velocity) | 4.689 |
(Group velocity) | 2.323 |
Mode | Antisymmetric |
---|---|
(Fundamental frequency) | 4.45 MHz |
(Second harmonic) | 8.9 MHz |
(Phase velocity) | |
(Group velocity) |
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Park, J.; Aslam, M.; Lee, J. Ultrasonic Nonlinearity Experiment due to Plastic Deformation of Aluminum Plate Due to Bending Damage. Materials 2023, 16, 4241. https://doi.org/10.3390/ma16124241
Park J, Aslam M, Lee J. Ultrasonic Nonlinearity Experiment due to Plastic Deformation of Aluminum Plate Due to Bending Damage. Materials. 2023; 16(12):4241. https://doi.org/10.3390/ma16124241
Chicago/Turabian StylePark, Junpil, Mohammed Aslam, and Jaesun Lee. 2023. "Ultrasonic Nonlinearity Experiment due to Plastic Deformation of Aluminum Plate Due to Bending Damage" Materials 16, no. 12: 4241. https://doi.org/10.3390/ma16124241
APA StylePark, J., Aslam, M., & Lee, J. (2023). Ultrasonic Nonlinearity Experiment due to Plastic Deformation of Aluminum Plate Due to Bending Damage. Materials, 16(12), 4241. https://doi.org/10.3390/ma16124241