Self-Calibration Sensor for Contactless Voltage Measurement Based on Dynamic Capacitance
Abstract
:1. Introduction
2. Principle of Voltage Measurement
2.1. Noncontact Voltage Measurement Based on Electric Field Coupling
2.2. A Method Based on Dynamic Capacitance Self-Calibration
2.3. Error Analysis and Model Optimization
3. Design and Application of Self-Calibrating Voltage Sensor
3.1. Design and Parameter Selection of Sensor Probe
3.2. Circuit Topology Parameter Selection
3.3. Switch Control and Voltage Calibration Steps
4. Experimental Testing and Result Analysis
4.1. Establishment of Experimental Platform
4.2. Amplitude and Phase Accuracy Test
4.3. Anti-Interference Ability Test
4.4. Conductor Adaptability Test
5. Conclusions
- (1)
- Aiming at the difficulty in determining the sensor gain in practical measurement of traditional capacitive coupled noncontact voltage sensors, a dynamic capacitive noncontact voltage measurement self-calibration method is proposed to achieve self-calibration of the sensor gain in practical measurement.
- (2)
- Theoretical research and transfer function analysis were conducted on the proposed method. Through error analysis and simulation research, the model and parameter optimization design of the dynamic capacitor conversion system were carried out. Based on this, a prototype of anti-interference sensor probe and remote dynamic capacitance control unit were developed.
- (3)
- The calibration accuracy test was conducted using a sensor prototype at a power frequency voltage of 100 Vrms to 300 Vrms. The results showed that the maximum amplitude error was 0.89%, and the phase error was 1.57%. Subsequently, an anti-interference capability test was conducted, and compared to the error of the reconstructed voltage without interference sources, the overall error offset with interference sources was 0.25%. Finally, adaptability tests were conducted on different types of circuits. The test results show that the maximum relative error is 1.01%, and the measurement line has a small impact on the calibration accuracy.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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S1/mm2 | d1/mm | C1/pF | Change Rate/% |
---|---|---|---|
10 | 1 | 9.122 | / |
16 | 1 | 10.69 | 14.7 |
25 | 1.2 | 11.22 | 18.7 |
35 | 1.2 | 12.53 | 27.2 |
50 | 1.4 | 13.07 | 30.2 |
70 | 1.4 | 14.66 | 37.8 |
Parameter | Value | Parameter | Value |
---|---|---|---|
l1/cm | 4 | l2/cm | 8 |
d1/cm | 3 | d2/cm | 5.4 |
Parameter | Value | Parameter | Value |
---|---|---|---|
/pF | 6.46 | /nF | 2.07 |
/pF | 5.08 | /pF | 31.1 |
/nF | 1.96 | /MΩ | 20 |
Vox/mV | Voy/mV | Vr/V | Va/V | Vox/mV | Voy/mV | Vr/V | Va/V |
---|---|---|---|---|---|---|---|
263.6 | 179.8 | 99.4 | 99.9 | 553.4 | 377.6 | 209.3 | 209.6 |
289.9 | 197.8 | 109.6 | 109.9 | 579.7 | 395.4 | 218.5 | 219.6 |
316.3 | 216 | 120.5 | 119.9 | 606.2 | 414 | 231.1 | 229.6 |
342.5 | 233.9 | 130.5 | 129.8 | 632.7 | 431.4 | 237.8 | 239.5 |
369.1 | 252 | 140.3 | 139.8 | 659 | 450.1 | 251.4 | 249.5 |
395.4 | 269.8 | 149.6 | 149.8 | 685.4 | 468.2 | 261.8 | 259.5 |
421.8 | 287.7 | 159 | 159.8 | 711.7 | 485.8 | 270.1 | 269.5 |
448.1 | 306 | 170.7 | 169.7 | 738.1 | 503.4 | 278 | 279.4 |
474.5 | 323.8 | 179.6 | 179.7 | 764.5 | 521.5 | 288.4 | 289.4 |
500.8 | 341.9 | 190.3 | 189.7 | 789.8 | 539.4 | 301.1 | 299.3 |
527.3 | 359.8 | 199.3 | 199.7 |
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Suo, C.; Huang, R.; Zhou, G.; Zhang, W.; Wang, Y.; He, M. Self-Calibration Sensor for Contactless Voltage Measurement Based on Dynamic Capacitance. Sensors 2023, 23, 3851. https://doi.org/10.3390/s23083851
Suo C, Huang R, Zhou G, Zhang W, Wang Y, He M. Self-Calibration Sensor for Contactless Voltage Measurement Based on Dynamic Capacitance. Sensors. 2023; 23(8):3851. https://doi.org/10.3390/s23083851
Chicago/Turabian StyleSuo, Chunguang, Rujin Huang, Guoqiong Zhou, Wenbin Zhang, Yanyun Wang, and Mingxing He. 2023. "Self-Calibration Sensor for Contactless Voltage Measurement Based on Dynamic Capacitance" Sensors 23, no. 8: 3851. https://doi.org/10.3390/s23083851
APA StyleSuo, C., Huang, R., Zhou, G., Zhang, W., Wang, Y., & He, M. (2023). Self-Calibration Sensor for Contactless Voltage Measurement Based on Dynamic Capacitance. Sensors, 23(8), 3851. https://doi.org/10.3390/s23083851