Using Zone Impedance Matching Technique to Improve the Power Transfer Capability of an Inductive Charging System over a Long Distance
Abstract
:1. Introduction
2. Conventional Three-Coil IPT System
3. Multi-Tap Three-Coil IPT System
3.1. System Overview
3.2. Circuit Model
3.3. Desgin Methodology
4. Control Method
5. Experimental Verification
5.1. Desgin Methodology
5.2. Controller Desgin
5.3. Results—Distance Variation
5.4. Results—Lateral Misalignment
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Self-inductance of nth coil | |
Parasitic resistance of nth coil | |
External capacitor of nth coil | |
Coupling coefficient between ith coil and jth coil | |
Mutual inductance between ith coil and jth coil | |
AC input voltage | |
Power source impedance | |
Load resistance | |
Resonant angular frequency | |
Resonant angular frequency | |
Output voltage | |
Total impedance of ith coil | |
Quality factor of ith coil at the resonant frequency | |
Inductance of different turns of transmitter coil | |
Parasitic resistance of different turns of transmitter coil | |
External capacitors for different turns of transmitter coil | |
Total impedance of different turns of transmitter coil | |
Coupling coefficient between different turns of transmitter coil and repeater coil | |
Mutual inductance between different turns of transmitter coil and repeater coil | |
Quality factor of different turns of transmitter coil | |
Current in ith coil |
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Parameters | Values |
---|---|
Radius of repeater coil | 10 cm |
Turns of repeater coil | 9 |
L2 | 33 μH |
R2 | 0.23 Ω |
C2 | 2.25 nF |
Radius of receiver coil | 10 cm |
Turns of receiver coil | 9 |
L3 | 33 μH |
R3 | 0.23 Ω |
C3 | 2.25 nF |
Zones | No. of Turns | k12 | M12 | k23 |
---|---|---|---|---|
Zone 1 | 4 | 0.28 | 4.0 μH | k23 ≥ 0.09 |
Zone 1 | 3 | 0.274 | 3.1 μH | 0.06 < k23 < 0.09 |
Zone 1 | 2 | 0.268 | 2.1 μH | k23 ≤ 0.06 |
Parameters | Values |
---|---|
Inner radius of transmitter coil | 5 cm |
Outer radius of transmitter coil | 6 cm |
Total turns of transmitter coil | 4 |
L1–1 | 6.2 μH |
L1–2 | 3.8 μH |
L1–3 | 1.9 μH |
R1–1 | 1 Ω |
R1–2 | 0.6 Ω |
R1–3 | 0.3 Ω |
C1–1 | 12 nF |
C1–2 | 20 nF |
C1–3 | 40 nF |
50 Ω | |
RL | 50 Ω |
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Hu, J.; He, L.; Liu, H.; Ng, R.W.M.; Lee, C.-K. Using Zone Impedance Matching Technique to Improve the Power Transfer Capability of an Inductive Charging System over a Long Distance. Electronics 2022, 11, 1982. https://doi.org/10.3390/electronics11131982
Hu J, He L, Liu H, Ng RWM, Lee C-K. Using Zone Impedance Matching Technique to Improve the Power Transfer Capability of an Inductive Charging System over a Long Distance. Electronics. 2022; 11(13):1982. https://doi.org/10.3390/electronics11131982
Chicago/Turabian StyleHu, Jintao, Liangxi He, Heng Liu, Raymond Wai Man Ng, and Chi-Kwan Lee. 2022. "Using Zone Impedance Matching Technique to Improve the Power Transfer Capability of an Inductive Charging System over a Long Distance" Electronics 11, no. 13: 1982. https://doi.org/10.3390/electronics11131982
APA StyleHu, J., He, L., Liu, H., Ng, R. W. M., & Lee, C. -K. (2022). Using Zone Impedance Matching Technique to Improve the Power Transfer Capability of an Inductive Charging System over a Long Distance. Electronics, 11(13), 1982. https://doi.org/10.3390/electronics11131982