Research and Development of a Wireless Self-Powered Sensing Device Based on Bridge Vibration Energy Collection
<p>The composition of wireless acceleration sensor.</p> "> Figure 2
<p>The circuit diagram of ADXL354.</p> "> Figure 3
<p>The circuit diagram of AD7689.</p> "> Figure 4
<p>The circuit diagram of STM32L151C8X6.</p> "> Figure 5
<p>The circuit diagram of LDO-SOT23-5.</p> "> Figure 6
<p>The circuit diagram of battery voltage acquisition circuit.</p> "> Figure 7
<p>The circuit diagram of serial port and power interface.</p> "> Figure 8
<p>Circuit board of acceleration sensor.</p> "> Figure 9
<p>Schematic diagram of the packaging box of wireless acceleration sensor.</p> "> Figure 10
<p>Internal view of sensor’s case before glue filling.</p> "> Figure 11
<p>Internal view of sensor’s case after glue filling.</p> "> Figure 12
<p>The welded of power pin with switch pin.</p> "> Figure 13
<p>Aviation plug after glue filling.</p> "> Figure 14
<p>The wireless acceleration sensor.</p> "> Figure 15
<p>Schematic diagram of the sensor being accelerated by gravity.</p> "> Figure 16
<p>Sensor No. 1.</p> "> Figure 17
<p>Sensor No. 2.</p> "> Figure 18
<p>Simulation data of rectangular, trapezoidal, and triangular piezoelectrics [<a href="#B24-sensors-21-08319" class="html-bibr">24</a>].</p> "> Figure 19
<p>The photo of triangular PCB.</p> "> Figure 20
<p>The test of triangular PCB.</p> "> Figure 21
<p>The relation between voltage and frequency of triangular PCB.</p> "> Figure 22
<p>The physical test results of triangular and rectangular PCBs.</p> "> Figure 23
<p>Circuit connection on breadboard.</p> "> Figure 24
<p>Power generation capacity test of triangular PCB.</p> "> Figure 25
<p>The relationship between power generated by triangular PCB with time.</p> "> Figure 26
<p>Pin circuit welding of aviation plug.</p> "> Figure 27
<p>The self-powered performance test of sensor.</p> "> Figure 28
<p>Acceleration sensor data.</p> ">
Abstract
:1. Introduction
2. Wireless Acceleration Sensor
2.1. The Composition of Acceleration Sensor
2.1.1. Circuit Diagram
2.1.2. Production and Package of Circuit Board
2.2. Calibration of Acceleration Sensor
3. Vibration Energy Harvesting Device
4. The Performance Test of Self-Power Sensor
4.1. The Capacity Test of Piezoelectric Power Generation
4.2. The Self-Powered Performance Test of Sensor
5. Summary
- A wireless acceleration sensor with low power consumption and high sensitivity for bridge vibration monitoring was developed, which solves the difficulties of traditional wiring monitoring. Calibration and performance comparison tests have verified the accuracy of the sensor in data collection.
- A triangular PCB was designed and fabricated based on the research results of different shapes of PCBs. It was shown that the triangular PCB has greater power generation capacity than the rectangular and trapezoidal PCBs, and the natural frequency is lower than the rectangular and trapezoidal PCBs.
- The acceleration sensor was integrated with the triangular PCB through the circuit, and its self-powered ability was tested. The experiment results showed that the single triangular PCB can generate 0.245 J within 1 h under excitation of 12 Hz, which proved the feasibility of installing piezoelectric energy harvesting devices on bridges to supply power for the sensors.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Tong, X.; Hou, Y.; Dong, Y.; Zhang, Y.; Yang, H.; Qian, Z. Research and Development of a Wireless Self-Powered Sensing Device Based on Bridge Vibration Energy Collection. Sensors 2021, 21, 8319. https://doi.org/10.3390/s21248319
Tong X, Hou Y, Dong Y, Zhang Y, Yang H, Qian Z. Research and Development of a Wireless Self-Powered Sensing Device Based on Bridge Vibration Energy Collection. Sensors. 2021; 21(24):8319. https://doi.org/10.3390/s21248319
Chicago/Turabian StyleTong, Xinlong, Yun Hou, Yuanshuai Dong, Yanhong Zhang, Hailu Yang, and Zhenyu Qian. 2021. "Research and Development of a Wireless Self-Powered Sensing Device Based on Bridge Vibration Energy Collection" Sensors 21, no. 24: 8319. https://doi.org/10.3390/s21248319