Directional Characteristics of Wireless Power Transfer via Coupled Magnetic Resonance
Abstract
:1. Introduction
2. Analysis of Angular Deviation of WPT System
2.1. Description on CMR-WPT System
2.2. Influences of Angular Deviation
3. Simulation Analysis
3.1. Establishement of Simulation Model
3.2. Simulation of Symmetrical System
3.3. Simulation of Asymmetrical System
3.3.1. Asymmetric Systems with Different Radius Ratios
3.3.2. Asymmetric System with Different Coil Types
4. Experimental Verification and Analysis
4.1. Experimental System
4.2. Analysis of Symmetrical System
4.3. Analysis of Asymmetrical System
5. Conclusions
- In a symmetrical WPT system via CMR, the load receive power increases first and then decreases with the growing deviation angle when the receiving coil is within the over-coupling distance from the transmitting coil. This shows that the angular offset can compensate to a certain extent for the power loss caused by the frequency splitting phenomenon. The system efficiency can remain non-directional within a certain range of deviation angle. The tolerance of the maximum deviation angle is about 70°. The closer the distance between coupling coils, the longer the range of non-directionality.
- In an asymmetrical WPT system via CMR, the system efficiency can remain non-directional within a range of deviation angle. The larger the radius of the receiving coil, the larger the range of non-directionality, and at the same time, the transmission efficiency of the system is reduced. When the shape of the transmitting coil is flat spiral and that of the receiving coil is solenoid, the non-directional range of the system is larger than other combinations. The tolerance of the maximum deviation angle is about 70°.
Author Contributions
Funding
Conflicts of Interest
References
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Parameter | Symbol | Value |
---|---|---|
Number of turns of coupling coil | N | 5 |
Principal radius of coupling coil | r1 | 147.5 mm |
Wire diameter of coupling coil | r2 | 1.06 mm |
Winding space of coupling coil | a | 10.5 mm |
Frequency | f | 6.78 MHz |
Load resistance | R | 50 Ω |
Power supply voltage | V0 | 100 V |
Radius of air domain | A | 800 mm |
Ratio of transmitting coil radius to receiving coil radius b | 1:0.2 | 1:0.4 | 1:0.6 | 1:0.8 | 1:1 | 1:1.2 | 1:1.4 | 1:1.6 | 1:1.8 | 1:2 |
Tuning capacitance of receiving coils (pF) | 172.03 | 90.62 | 57.54 | 39.8 | 28.65 | 21.24 | 15.22 | 9.95 | 6.97 | 3.82 |
Combination | Tuning Capacitance | Critical Coupling Distance |
---|---|---|
Flat spiral vs. square | 22.3 pF | 337 mm |
Solenoid vs. flat spiral | 28.9 pF | 322 mm |
Square vs. solenoid | 21.7 pF | 364 mm |
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Li, Y.; Liu, J.; Yang, Q.; Ni, X.; Zhai, Y.; Lou, Z. Directional Characteristics of Wireless Power Transfer via Coupled Magnetic Resonance. Electronics 2020, 9, 1910. https://doi.org/10.3390/electronics9111910
Li Y, Liu J, Yang Q, Ni X, Zhai Y, Lou Z. Directional Characteristics of Wireless Power Transfer via Coupled Magnetic Resonance. Electronics. 2020; 9(11):1910. https://doi.org/10.3390/electronics9111910
Chicago/Turabian StyleLi, Yang, Jiaming Liu, Qingxin Yang, Xin Ni, Yujie Zhai, and Zhigang Lou. 2020. "Directional Characteristics of Wireless Power Transfer via Coupled Magnetic Resonance" Electronics 9, no. 11: 1910. https://doi.org/10.3390/electronics9111910
APA StyleLi, Y., Liu, J., Yang, Q., Ni, X., Zhai, Y., & Lou, Z. (2020). Directional Characteristics of Wireless Power Transfer via Coupled Magnetic Resonance. Electronics, 9(11), 1910. https://doi.org/10.3390/electronics9111910