Phenomenon Analysis and Improvement of Magnetic Shield Fringe Effect on Wireless Power Transmission of EV
Abstract
:1. Introduction
2. Structure of Coupler
3. Phenomenon and Relationships Analyses
3.1. Phenomenon
3.2. Relationships for Fringe Effect
3.2.1. Radius Influences
3.2.2. Depth Influences
3.2.3. Input Power Influences
3.2.4. Relative Permeability Influences
3.3. Correlation Analyses and Linear Fitting
4. Improvement Method
4.1. Physical Structure
4.2. Finite Element Analysis
4.2.1. Fitting Result Demonstration
4.2.2. Horizontal Offset Influence
4.2.3. Circuit Validation
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
References
- Zhu, C.; Yu, J.; Gu, Y.; Gao, J.; Yang, H.; Mai, R.; Li, Y.; He, Z. Analysis and Design of Cost-Effective WPT Systems With Dual Independently Regulatable Outputs for Automatic Guided Vehicles. IEEE Trans. Power Electron. 2021, 36, 6183–6187. [Google Scholar] [CrossRef]
- Xia, C.; Wang, W.; Ren, S.; Wu, X.; Sun, Y. Robust Control for Inductively Coupled Power Transfer Systems with Coil Misalignment. IEEE Trans. Power Electron. 2018, 33, 8110–8122. [Google Scholar] [CrossRef]
- Campi, T.; Cruciani, S.; Maradei, F.; Feliziani, M. Magnetic Field Mitigation by Multicoil Active Shielding in Electric Vehicles Equipped With Wireless Power Charging System. IEEE Trans. Electromagn. Compat. 2020, 62, 1398–1405. [Google Scholar] [CrossRef]
- Zakerian, A.; Vaez-Zadeh, S.; Babaki, A. A Dynamic WPT System with High Efficiency and High Power Factor for Electric Vehicles. IEEE Trans. Power Electron. 2020, 35, 6732–6740. [Google Scholar] [CrossRef]
- Yao, Y.; Gao, S.; Mai, J.; Liu, X.; Zhang, X.; Xu, D. A Novel Misalignment Tolerant Magnetic Coupler for Electric Vehicle Wireless Charging. IEEE J. Emerg. Sel. Top. Ind. Electron. 2021. early access. [Google Scholar] [CrossRef]
- Songcen, W.; Bin, W.; Xiaokang, W.; Chong, X.; Jinxing, X.; Weimei, G.; Jiaqi, X. Electromagnetic shielding design for magnetic coupler of N-type dynamic electric vehicle wireless power transfer systems. In Proceedings of the 2019 22nd International Conference on Electrical Machines and Systems (ICEMS), Harbin, China, 11–14 August 2019. [Google Scholar]
- Xiang, L.; Li, X.; Tian, J.; Tian, Y. A Crossed DD Geometry and Its Double-Coil Excitation Method for Electric Vehicle Dynamic Wireless Charging Systems. IEEE Access 2018, 6, 45120–45128. [Google Scholar] [CrossRef]
- Zaheer, A.; Hao, H.; Covic, G.A.; Kacprzak, D. Investigation of Multiple Decoupled Coil Primary Pad Topologies in Lumped IPT Systems for Interoperable Electric Vehicle Charging. IEEE Trans. Power Electron. 2015, 30, 1937–1955. [Google Scholar] [CrossRef]
- Tejeda, A.; Kim, S.; Lin, F.Y.; Covic, G.A.; Boys, J.T. A Hybrid Solenoid Coupler for Wireless Charging Applications. IEEE Trans. Power Electron. 2019, 34, 5632–5645. [Google Scholar] [CrossRef]
- Kim, S.; Covic, G.A.; Boys, J.T. Tripolar Pad for Inductive Power Transfer Systems for EV Charging. IEEE Trans. Power Electron. 2017, 32, 5045–5057. [Google Scholar] [CrossRef]
- Ahmad, A.; Alam, M.S.; Mohamed, A.A.S. Design and Interoperability Analysis of Quadruple Pad Structure for Electric Vehicle Wireless Charging Application. IEEE Trans. Transp. Electrif. 2019, 5, 934–945. [Google Scholar] [CrossRef]
- Li, Y.; Zhao, J.; Yang, Q.; Liu, L.; Ma, J.; Zhang, X. A Novel Coil with High Misalignment Tolerance for Wireless Power Transfer. IEEE Trans. Magn. 2019, 55, 1–4. [Google Scholar] [CrossRef]
- Li, Y.; Jiang, S.; Liu, J.M.; Ni, X.; Wang, R.; Ma, J.N. Maximizing Transfer Distance for WPT via Coupled Magnetic Resonances by Coupling Coils Design and Optimization. IEEE Access 2020, 8, 74157–74166. [Google Scholar] [CrossRef]
- Liu, F.; Ding, Z.; Fu, X.; Kennel, R.M. Parametric Optimization of a Three-Phase MCR WPT System With Cylinder-Shaped Coils Oriented by Soft-Switching Range and Stable Output Power. IEEE Trans. Power Electron. 2020, 35, 1036–1044. [Google Scholar] [CrossRef]
- Hwang, Y.J.; Jang, J.Y. Design and Analysis of a Novel Magnetic Coupler of an In-Wheel Wireless Power Transfer System for Electric Vehicles. Energies 2020, 13, 332. [Google Scholar] [CrossRef] [Green Version]
- Chen, H.; Qian, Z.; Zhang, R.; Zhang, Z.; Wu, J.; Ma, H.; He, X. Modular Four-Channel 50 kW WPT System With Decoupled Coil Design for Fast EV Charging. IEEE Access 2021, 9, 136083–136093. [Google Scholar] [CrossRef]
- Zhang, Y.; Wang, L.; Guo, Y.; Tao, C. Null-Coupled Magnetic Integration for EV Wireless Power Transfer System. IEEE Trans. Transp. Electrif. 2019, 5, 968–976. [Google Scholar] [CrossRef]
- Liu, Y.; Madawala, U.K.; Mai, R.; He, Z. Zero-Phase-Angle Controlled Bidirectional Wireless EV Charging Systems for Large Coil Misalignments. IEEE Trans. Power Electron. 2020, 35, 5343–5353. [Google Scholar] [CrossRef]
- Zhang, X.; Zhang, Y.; Zhang, Z.; Li, M. Mode Conversion and Structure Optimization of Quadrature Coils for Electric Vehicles Wireless Power Transfer. IEEE Trans. Energy Convers. 2020, 35, 575–590. [Google Scholar] [CrossRef]
- Zaheer, A.; Kacprzak, D.; Covic, G.A. A bipolar receiver pad in a lumped IPT system for electric vehicle charging applications. In Proceedings of the 2012 IEEE Energy Conversion Congress and Exposition (ECCE), Raleigh, NC, USA, 15–20 September 2012; pp. 283–290. [Google Scholar]
- Choi, S.Y.; Gu, B.W.; Jeong, S.Y.; Rim, C.T. Advances in Wireless Power Transfer Systems for Roadway-Powered Electric Vehicles. IEEE J. Emerg. Sel. Top. Power Electron. 2015, 3, 18–36. [Google Scholar] [CrossRef]
- Nagasaki, Y.; Solovyov, M.; Gömöry, F. Experimental and Numerical Investigation of Shielding Performance of Superconducting Magnetic Shields Using Coated Conductor Tapes. IEEE Trans. Appl. Supercond. 2018, 28, 1–5. [Google Scholar] [CrossRef]
- Zhang, W.; Yang, Q.; Li, Y.; Lin, Z.; Yang, M.; Mi, M. Comprehensive Analysis of Nanocrystalline Ribbon Cores in High-Power-Density Wireless Power Transfer Pads for Electric Vehicles. IEEE Trans. Magn. 2021. [Google Scholar] [CrossRef]
- Kvitkovic, J.; Patel, S.; Pamidi, S. Magnetic Shielding Characteristics of Hybrid High-Temperature Superconductor/Ferromagnetic Material Multilayer Shields. IEEE Trans. Appl. Supercond. 2017, 27, 1–5. [Google Scholar] [CrossRef]
- Wei, Y.; Tian, Y. A Weighting factor online tuning method based PSO algorithm for MPTC strategy of PMSM. In Proceedings of the 2021 IEEE 12th Annual Information Technology, Electronics and Mobile Communication Conference (IEMCON), Vancouver, BC, Canada, 27–30 October 2021. [Google Scholar]
Symbol | Quantity | Values |
---|---|---|
r | Radius | 120 mm |
d | Depth | 1 mm |
μr | Relative permeability | 2500 |
pi | Input power | 10 W |
Radius | Depths | Input Powers | Relative Permeabilities | |
---|---|---|---|---|
Pearson correlation | −0.898 | −0.243 | 0.979 | - 1 |
Pearson significance | 0.002 | 0.562 | 0.000 | - |
Kendall correlation | −0.786 | −0.214 | 1.000 | 1.000 |
Kendall significance | 0.006 | 0.458 | 0.000 | 0.000 |
Spearman correlation | −0.905 | −0.429 | 1.000 | 1.000 |
Spearman significance | 0.002 | 0.289 | 0.000 | 0.000 |
Coefficients | Values | Coefficients | Values |
---|---|---|---|
a1 for r | −0.0242 | a3 for pi | 6.1127 |
a2 for r | 9.2502 | a4 for pi | −45.0215 |
a3 for r | −1182.99 | a5 for pi | 434.4354 |
a4 for r | 50,871.69 | a1 for μr | −4.075 × 10−7 |
a1 for pi | 0.0022 | a2 for μr | 0.0049 |
a2 for pi | −0.2040 | a3 for μr | 483.4461 |
Symbol | Quantity | Values |
---|---|---|
r | Radius | 120 mm |
d | Depth | 1 mm |
μr | Relative permeability | 2500 |
pi | Input power | 10 W |
ri | Inner radius | 110 mm |
db | Extended depth | 5 mm |
rb | Extended length | 10 mm |
rs | Ring width of the secondary coil | 110 mm |
r | Radius of the coil line | 2.5 mm |
ns | Number of turns of the secondary coil | 15 |
rp | Ring width of the primary coil | 120 mm |
np | Number of turns of the primary coil | 17 |
dps | Distance between the primary and secondary coils | 50 mm |
Symbol | Quantity | Values |
---|---|---|
ii | Input current | 10 A |
Cp | Primary compensation capacity | 120 nF |
Rpc | Resistance of the primary coil | 0.2 Ω |
Cs | Secondary compensation capacity | 53 nF |
Rsc | Resistance of the secondary coil | 0.1 Ω |
Lf | Induction filter | 21.85 μH |
Cf | Capacity filter | 16 μF |
Ro | Output resistance | 10 Ω |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Sun, Y.; Wei, Y.; Tian, Y. Phenomenon Analysis and Improvement of Magnetic Shield Fringe Effect on Wireless Power Transmission of EV. World Electr. Veh. J. 2021, 12, 252. https://doi.org/10.3390/wevj12040252
Sun Y, Wei Y, Tian Y. Phenomenon Analysis and Improvement of Magnetic Shield Fringe Effect on Wireless Power Transmission of EV. World Electric Vehicle Journal. 2021; 12(4):252. https://doi.org/10.3390/wevj12040252
Chicago/Turabian StyleSun, Yening, Yao Wei, and Yi Tian. 2021. "Phenomenon Analysis and Improvement of Magnetic Shield Fringe Effect on Wireless Power Transmission of EV" World Electric Vehicle Journal 12, no. 4: 252. https://doi.org/10.3390/wevj12040252
APA StyleSun, Y., Wei, Y., & Tian, Y. (2021). Phenomenon Analysis and Improvement of Magnetic Shield Fringe Effect on Wireless Power Transmission of EV. World Electric Vehicle Journal, 12(4), 252. https://doi.org/10.3390/wevj12040252