| Literature DB >> 23012534 |
Huidong Li1, Zhiqun Daniel Deng, Yong Yuan, Thomas J Carlson.
Abstract
PZT ceramics have been widely used in underwater acoustic transducers. However, literature available discussing the design parameters of a miniaturized PZT-based low-duty-cycle transmitter is very limited. This paper discusses some of the design parameters--the backing material, driving voltage, PZT material type, power consumption and the transducer length of a miniaturized acoustic fish tag using a PZT tube. Four different types of PZT were evaluated with respect to the source level, energy consumption and bandwidth of the transducer. The effect of the tube length on the source level is discussed. The results demonstrate that ultralow-density closed-cell foam is the best backing material for the PZT tube. The Navy Type VI PZTs provide the best source level with relatively low energy consumption and that a low transducer capacitance is preferred for high efficiency. A 35% reduction in the transducer length results in 2 dB decrease in source level.Entities:
Keywords: PZT; fish tag; miniaturized transmitter; piezoelectric ceramic; piezoelectric transducer; transducer power consumption; underwater acoustic transmitter
Year: 2012 PMID: 23012534 PMCID: PMC3444092 DOI: 10.3390/s120709098
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Current JSATS micro transmitters; the top and side views are shown.
Dimensions and electrical properties of the PZT ceramic tubes used in this study.
| PZT product name | PZT508 | Pz21 | EBL1 | EBL2 | ||
| Outer diameter | OD | mm | 2.54 | 2.54 | 2.54 | 2.28 |
| Inner diameter | ID | mm | 1.70 | 1.90 | 2.10 | 1.80 |
| Length | L | mm | 1.65 | 1.75 | 1.20–2.30 | 1.52 |
| Dielectric constant (@1 kHz) | K33T | 3,900 | 3,800 | 1,300 | 1,725 | |
| Dielectric loss (@1 kHz) | tanδ | 0.02 | 0.018 | 0.004 | 0.02 | |
| Mechanical quality factor | Qm | 55 | 65 | 400 | 100 | |
| Piezoelectric charge constant | d31 | 10−12C/N | −315 | −250 | −127 | −173 |
| Coupling coefficient | kp | 0.71 | 0.60 | 0.60 | 0.62 | |
Figure 2.Experimental setup of the source level measurements.
Acoustic properties of the filler materials used in this study and the measured source levels.
| Density | g/cm3 | 2.85 | 1.15 | 0.94 | 0.13 |
| Acoustic impedance | MRayl | Not available | 3.05 | 1.69 | Not available |
| Source level | dB (Ref: 1 μPa@1 m) | 151.3 | 152.5 | 153.1 | 158.5 |
Figure 3.Voltage responses of PZT tubes of different material types (the EBL1 PZT shown in this graph were 1.75 mm long).
Figure 4.Energy consumption as a function of source level for different types of PZT ceramics.
Figure 5.Frequency responses of PZT tubes of different material types.
Figure 6.Effect of the PZT tube length on the source level for the EBL1 PZT.