Magnesium Alloy Matching Layer for High-Performance Transducer Applications
Abstract
:1. Introduction
2. Materials and Methods
2.1. Design of the Transducers
2.2. Transducer Fabrication and Characterization
3. Results and Discussions
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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PZT-5H | |
---|---|
Density, ρ | 7450 kg/m3 |
Longitudinal velocity, v | 4560 m/s |
Piezoelectric constant, d33 | 670 pC/N |
Related clamped dielectric constant, εs/ε0 | 1802 |
Frequency constant (thickness mode), | 1989 Hz·m |
Electromechanical coupling coefficient, kt | 0.505 |
Acoustic impedance, Za | 34.2 MRayl |
Material 1 | Use | v (m/s) | ρ (kg/m3) | Za (MRayl) | Loss (dB/mm) |
---|---|---|---|---|---|
Tungsten/glass spheres/Epo-Tek 301 1 | Backing | 2256 | 4040 | 9.1 | N/A |
Epo-Tek 301 | Matching layer 2 | 2650 | 1150 | 3.0 | 9.5 (at 30 MHz) [14] |
AZ31B Magnesium alloy | Matching layer 1 | 5800 | 1780 | 10.3 | 0.02 (at 7.5 MHz) |
Silver–epoxy composite 2 | Matching layer | 3860 | 1900 | 7.3 | 13.8 (at 30 MHz) |
Alumina/polymer nanocomposite films 2 | Matching layer | 3200 | 1630 | 5.1 | 15 (at 40 MHz) |
Property | 5 MHz Transducer | 10 MHz Transducer |
---|---|---|
Resonance frequency | 4.4 MHz | 8.81 MHz |
Anti-resonance frequency | 4.87 MHz | 9.67 MHz |
kt(eff.) | 0.43 | 0.41 |
Active Element | Matching Materials | Backing Layers | fc (MHz) | BW (%) | IL (dB) |
---|---|---|---|---|---|
PZT-5H | AZ31B/Epo-Tek 301 | Tungsten powder/glass microspheres/Epo-Tek 301 | 4.60 | 79 | −11.11 |
PZT-5H | AZ31B/Epo-Tek 301 | Tungsten powder/glass microspheres/Epo-Tek 301 | 9.25 | 71 | −14.43 |
PZT-5A 1 | Anodic aluminum oxide-epoxy/Epo-Tek 301 | Tungsten powder/micro bubbles/Epo-Tek 301 | 11.6 | 68 | −22.7 |
PZT-5A 1 | silicon–polymer 1–3 composite/Epo-Tek 301 | Tungsten powder/micro bubbles/Epo-Tek 301 | 15 | 50 | - |
PZT 2 | 2-2 silicon–polymer composite/Spurr’s epoxy | Air | 14.6 | 70.2 | −18.4 |
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Wang, Y.; Tao, J.; Guo, F.; Li, S.; Huang, X.; Dong, J.; Cao, W. Magnesium Alloy Matching Layer for High-Performance Transducer Applications. Sensors 2018, 18, 4424. https://doi.org/10.3390/s18124424
Wang Y, Tao J, Guo F, Li S, Huang X, Dong J, Cao W. Magnesium Alloy Matching Layer for High-Performance Transducer Applications. Sensors. 2018; 18(12):4424. https://doi.org/10.3390/s18124424
Chicago/Turabian StyleWang, Yulei, Jingya Tao, Feifei Guo, Shiyang Li, Xingyi Huang, Jie Dong, and Wenwu Cao. 2018. "Magnesium Alloy Matching Layer for High-Performance Transducer Applications" Sensors 18, no. 12: 4424. https://doi.org/10.3390/s18124424