Design and Characterization of a Self-Oscillating Fluxgate-Based Current Sensor for DC Distribution System Applications
Abstract
:1. Introduction
2. Methodology
2.1. Measurement Principle
2.2. Analysis of the Transformer Noise and Its Suppression
2.3. Derivation of the Transfer Function and Steady Error
3. Design and Realization
3.1. Magnetic Core and Windings
3.2. Circuit Design
3.3. Finished Prototype
4. Experimental Results and Discussion
4.1. Linearity
4.2. Small-Signal Bandwidth
4.3. Output Noise
4.4. Power-On Repeatability
4.5. Comparison Results
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
SNR | Singal-to-noise ratio |
LPF | Low pass filter |
PI | Proportional-integral |
PA | Power amplifier |
DMM | Digital multimeter |
MCCB | Molded case circuit breaker |
RMS | Root mean square |
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Method | Bandwidth | Accuracy | Temperature Drift | Range | Power Dissipation |
---|---|---|---|---|---|
Shunt | kHz-MHz | 0.1–2% | 25–300 ppm/K | A-kA | W-kW |
Hall effect | kHz | 0.5–5% | 50–1000 ppm/K | A-kA | mW |
Giant magnetoresistance | kHz | 1–10% | 200–1000 ppm/K | mA-kA | mW |
Tunnel magnetoresistance | kHz | 0.05–3% | 50–200 ppm/K | mA-kA | mW |
Magneto-optic | kHz-MHz | 0.1–1% | <100 ppm/K | kA-MA | W |
Fluxgate | kHz | 0.001–0.5% | <50 ppm/K | mA-kA | mW-W |
Parameter | Description | Value | Unit |
---|---|---|---|
μm | Max. magnetic permeability | 84,670 | |
Bs | Saturation magnetic flux density | 1.069 | T |
Hc | Coercivity | 0.8488 | A/m |
do | External diameter of the magnetic core | 38.18 | mm |
di | Internal diameter of the magnetic core | 29.10 | mm |
hc | Height of the magnetic core | 8.22 | mm |
lc | Effective magnetic path length | 78.75 | mm |
Nex | Exciting winding turns | 225 | |
Nf | Feedback winding turns | 500 | |
Ni | Induction winding turns | 500 |
Parameter | Proposed | Sensor B | Danisense DS400ID | LEM LF 505-S | Unit |
---|---|---|---|---|---|
Measurement principle | One-core self-oscillating fluxgate | Three-core self-oscillating fluxgate | One-core fluxgate with modulation circuit | Hall effect | - |
Nominal current | 600 | 600 | 600 | 500 | A |
External diameter | 43.81 | 45.79 | 91.5 | 65 | mm |
Internal diameter | 23.37 | 23.11 | 27.6 | 30.2 | mm |
Height | 20.54 | 32.54 | 44.5 | 31 | mm |
Volume | 2.22 × 104 | 3.99 × 104 | 2.66 × 105 | 8.07 × 104 | mm3 |
Cost/Price | 41.38 | 54.13 | ~400 | ~500 | CNY |
Current transfer ratio | 500:1 | 500:1 | 2000:1 | 5000:1 | - |
Excitation frequency | 0.27 | 0.27 | 31.25 | - | kHz |
Linearity error | 0.07 | 0.01 | 0.0001 | 0.1 | % |
Relative error | 0.15 | 0.10 | 0.04 | 0.6 | % |
Small-signal bandwidth | 100 (−1 dB) 170 (−3 dB) | 100 (−1 dB) 170 (−3 dB) | 300 (−3.5 dB) | 100 (−1 dB) | kHz |
SNR at nominal current | 48.88 | 37.66 | - | - | dB |
Power-on repeatability | 11.66 | 18.83 | 9 | - | ppm |
Power consumption at nominal current | 7.1 | 8.5 | 6 | 2.23 | W |
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Chen, W.; Chen, H.; Xu, H.; Li, L. Design and Characterization of a Self-Oscillating Fluxgate-Based Current Sensor for DC Distribution System Applications. Sensors 2025, 25, 2360. https://doi.org/10.3390/s25082360
Chen W, Chen H, Xu H, Li L. Design and Characterization of a Self-Oscillating Fluxgate-Based Current Sensor for DC Distribution System Applications. Sensors. 2025; 25(8):2360. https://doi.org/10.3390/s25082360
Chicago/Turabian StyleChen, Wei, Huaijie Chen, Haibo Xu, and Li Li. 2025. "Design and Characterization of a Self-Oscillating Fluxgate-Based Current Sensor for DC Distribution System Applications" Sensors 25, no. 8: 2360. https://doi.org/10.3390/s25082360
APA StyleChen, W., Chen, H., Xu, H., & Li, L. (2025). Design and Characterization of a Self-Oscillating Fluxgate-Based Current Sensor for DC Distribution System Applications. Sensors, 25(8), 2360. https://doi.org/10.3390/s25082360