Sensing Region Characteristics of Smart Piezoelectric Interface for Damage Monitoring in Plate-Like Structures
Abstract
:1. Introduction
2. Piezoelectric Interface-Based Impedance Monitoring Technique
2.1. Impedance Monitoring via Piezoelectric Interface
2.2. Damage Classification Using Impedance Signatures
3. Sensing Region Characteristics of PZT Interface on a Numerical Plate Domain
3.1. FE Modeling
3.2. Numerical Impedance Responses
3.3. Numerical Characterization of Sensing Region
3.3.1. Sensitivity of Impedance Features with Respect to Damage Location
3.3.2. Detectable Zone of Piezoelectric Interface
3.3.3. Damage Detectability with Respect to Plate’s Thickness
4. Sensing Region Characteristics of PZT Interface on a Realistic Plate Structure
4.1. Test-Setup of Connection Splice Plate
4.2. Experimental Characterization of Sensing Region on Connection Splice Plate
4.2.1. Experimental Impedance Signatures
4.2.2. Sensitivity of Experimental Impedance Features with Respect to Damage Location
4.3. Numerical Validation of Sensing Region on Connection Splice Plate
4.3.1. FE Modeling
4.3.2. Numerical Impedance Signatures
4.3.3. Sensitivity of Numerical Impedance Features with Respect to Damage Location
5. Conclusions
- (1)
- The sensing region characteristics of the PZT interface on the large plate domain was different with the limited plate domain such as the rectangular splice plate.
- (2)
- For the circular plate domain, the detectable distance of the PZT interface analyzed by RMSD was about five times of the interface’s length. The detectable orientation θ was within (45° to 135°) and (225° to 315°) for the range 10–20 kHz; and (75° to 105°) and (255° to 295°) for the range 30–40 kHz.
- (3)
- For the limited plate domain like the connection splice plate, the detectable zones of the PZT interface were the entire plate. The damage locations near the boundaries of the splice plate or at the angle θ ≈ 90° resulted in significant magnitudes of impedance features.
- (4)
- The numerical analyses of the coupled vibration modes of the PZT interface-host structure system can reveal an overall view on the detectable zones over the plate domain.
- (5)
- The frequency range containing the longitudinal flexural motion of the interface device (i.e., 10–20 kHz) had significant sensing regions.
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Aluminum Interface | Steel Circular Plate | Bonding Layer |
---|---|---|---|
Young’s modulus, E (GPa) | 70 | 200 | 6 |
Poisson’s ratio, υ | 0.33 | 0.33 | 0.38 |
Mass density, ρ (kg/m3) | 2700 | 7850 | 1700 |
Damping loss factor, η | 0.004 | 0.004 | 0.004 |
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Huynh, T.-C.; Lee, S.-Y.; Dang, N.-L.; Kim, J.-T. Sensing Region Characteristics of Smart Piezoelectric Interface for Damage Monitoring in Plate-Like Structures. Sensors 2019, 19, 1377. https://doi.org/10.3390/s19061377
Huynh T-C, Lee S-Y, Dang N-L, Kim J-T. Sensing Region Characteristics of Smart Piezoelectric Interface for Damage Monitoring in Plate-Like Structures. Sensors. 2019; 19(6):1377. https://doi.org/10.3390/s19061377
Chicago/Turabian StyleHuynh, Thanh-Canh, So-Young Lee, Ngoc-Loi Dang, and Jeong-Tae Kim. 2019. "Sensing Region Characteristics of Smart Piezoelectric Interface for Damage Monitoring in Plate-Like Structures" Sensors 19, no. 6: 1377. https://doi.org/10.3390/s19061377
APA StyleHuynh, T.-C., Lee, S.-Y., Dang, N.-L., & Kim, J.-T. (2019). Sensing Region Characteristics of Smart Piezoelectric Interface for Damage Monitoring in Plate-Like Structures. Sensors, 19(6), 1377. https://doi.org/10.3390/s19061377