Design and Characterization of Surface Acoustic Wave-Based Wireless and Passive Temperature Sensing System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Basic Principles of The Wireless SAW Temperature Sensing System
- (1)
- Firstly, the MCU controls the PLL to generate a continuous sinusoidal interrogation signal at the required frequency. This signal is then amplified by the radio frequency power amplifier (RFPA). The MCU also controls the single-pole double-throw switch to disconnect the mother antenna from the receive path and connect it to the emission path. At this point, the mother antenna is in a continuous transmission state, and the interrogation signal is radiated into the air through the mother antenna.
- (2)
- The sensor antenna captures the electromagnetic interrogation signal and transmits it to the IDT of the SAW resonator. An impedance-matching network is used to match the impedances of the antenna and the resonator, allowing for maximum energy transfer between the two. The IDT converts the voltage signal into SAWs propagating in both directions. When the SAWs encounter the reflector of the Bragg structure, they reflect and form a standing wave. As the interrogation signal is continuous, the resonator remains in a sustained resonance state. Temperature fluctuations cause variations in parameters such as the width of the IDT and the elastic constants of AlN during the resonance of the resonator, leading to changes in its resonance frequency [33].
- (3)
- Once the transceiver has emitted the interrogation signal continuously for a period, the MCU controls the single-pole double-throw switch. This connects the mother antenna to the receive path while disconnecting it from the emission path. As a result, the mother antenna is in the receiving phase and stops emitting interrogation signals into the air. At this point, if the sensor antenna fails to receive the interrogation signal, the resonator releases the accumulated energy. The SAWs are converted into an electrical signal by the IDT, which is then transmitted into the air via the sensor antenna. The energy stored in the resonator is finite and subject to losses, causing the residual amplitude of the SAW to gradually decrease until it ceases entirely. This results in a transient signal of limited duration and gradually decaying waveform that characterizes the return signal of the wireless passive SAW sensor.
- (4)
- The return signal is received by the mother antenna, which remains connected to the receiving path at this point, allowing the echo signal to enter the receiving path for processing. The signal then passes through a bandpass filter (BPF) to eliminate noise from other frequency bands. Next, the signal is amplified using a low-noise amplifier (LNA) and then passed through another bandpass filter (BPF) to reduce noise. During the sampling of the echo signal, to accurately reconstruct the original signal, the sampling frequency needs to be more than twice the frequency of the echo signal. To reduce this requirement, a mixer is used to shift the echo signal’s frequency. If the input of the mixer has a local signal frequency of w1 and a return signal frequency of w2, the output signal is a mixed signal possessing two frequencies, the ultra-high frequency w1 + w2, and the intermediate frequency w1−w2. Subsequently, a low-pass filter (LPF) is used to eliminate the high-frequency signal, leaving only the intermediate-frequency signal. Finally, the signal is amplified again using RFPA before being output for collection and analysis. In future research, we aim to explore the direct use of an MCU for signal acquisition and analysis to obtain real-time temperature information.
2.2. Simulation of the SAW Resonator
2.3. Fabrication of the SAW Resonator
2.4. Characterization of the SAW Resonator
2.5. Preparation of the Helix Antenna
2.6. Setup of the Wireless Temperature Test Platform
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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AlN | Si | Mo | |||
---|---|---|---|---|---|
Elastic constants cij (GPa) | c11 | 410.06 | Young’s modulus E (GPa) | 170 | 385 |
c12 | 100.69 | ||||
c13 | 83.82 | ||||
c33 | 286.24 | ||||
c44 | 100.58 | ||||
c66 | 154.70 | ||||
Temperature coefficient of constants TECij (1 × 10−6∙K) | TEC11 | −10.65 | Temperature coefficient of Young’s modulus TCE (1 × 10−6∙K) | −63 | −181 |
TEC12 | −11.67 | ||||
TEC13 | −11.22 | ||||
TEC33 | −11.13 | ||||
TEC44 | −10.82 | ||||
TEC66 | −10.80 | ||||
Thermal expansion αij (1 × 10−6∙K) | α11 | 5.27 | 2.6 | 3.49 | |
α22 | 5.27 | 2.6 | 3.49 | ||
α33 | 4.15 | 2.6 | 3.49 | ||
Mass density ρ (kg/m3) | ρ | 3300 | 2329 | 10,200 |
D (Helix Diameter) | S (Space) | N (Number of Turns) | d (Wire Diameter) |
---|---|---|---|
5.8 mm | 2 mm | 21.5 | 1.2 mm |
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Zhou, Z.; Wang, H.; Lou, L. Design and Characterization of Surface Acoustic Wave-Based Wireless and Passive Temperature Sensing System. Micromachines 2024, 15, 544. https://doi.org/10.3390/mi15040544
Zhou Z, Wang H, Lou L. Design and Characterization of Surface Acoustic Wave-Based Wireless and Passive Temperature Sensing System. Micromachines. 2024; 15(4):544. https://doi.org/10.3390/mi15040544
Chicago/Turabian StyleZhou, Zhixin, Hui Wang, and Liang Lou. 2024. "Design and Characterization of Surface Acoustic Wave-Based Wireless and Passive Temperature Sensing System" Micromachines 15, no. 4: 544. https://doi.org/10.3390/mi15040544
APA StyleZhou, Z., Wang, H., & Lou, L. (2024). Design and Characterization of Surface Acoustic Wave-Based Wireless and Passive Temperature Sensing System. Micromachines, 15(4), 544. https://doi.org/10.3390/mi15040544