Cost-Effectiveness Comparison of Coupler Designs of Wireless Power Transfer for Electric Vehicle Dynamic Charging
Abstract
:1. Introduction
2. Cost-Effectiveness Comparison of Basic Coupler Designs
2.1. Basic Topology and Coupler Design
2.2. Comparison and Analysis
- The rectangular coil can be used as the main transmitting part for dynamic charging since it has the larger cost-effectiveness value. Namely, the rectangular coil has the better capability of transferring the power under the suitable material cost.
- The hexagonal coil can be used as the main transmitting part for the static charging since it has the larger cost-effectiveness value. On the other hand, the hexagonal coil can be used as the auxiliary part for the dynamic charging because it has the ability of concentrating the output power at a specific point.
- The circular coil has the medium value of the cost-effectiveness for the power transfer. Hence, this type of coupler is not preferred for the system installation.
- The CE equation includes the power output and the effective area, which directly relate with the charging frequency and the charging distance. When the frequency is higher, the power would be higher for the same WPT system. Also, when the distance is larger, the power would be less for the same WPT system. Actually, the CE equation is for the general cost-effectiveness estimation of a WPT system, which is independent from the charging frequency and the charging distance.
3. Proposed Dynamic Charging System
3.1. System Configuration
3.2. Simulation Result
3.3. Experimentation Result
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Item | Rectangular | Circular | Hexagonal |
---|---|---|---|
Effective length | 800 mm | 800 mm | 800 mm |
Coil width | 86 mm | 114.8 mm | 143.4 mm |
Number of turns | 21 | 28 | 35 |
Thickness | 4 mm | 4 mm | 4 mm |
Primary current (AMS) | 10 A | 10 A | 10 A |
Air gap length | 200 mm | 200 mm | 200 mm |
Operating frequency | 35 kHz | 35 kHz | 35 kHz |
Item | Conventional Type | Combined Type |
---|---|---|
Total length | 2400 mm | 2400 mm |
Coil width | 86 mm | 98.3 mm |
Number of turns | 21 | 24 |
Thickness | 4 mm | 4 mm |
Primary current (AMS) | 10 A | 10 A |
Air gap length | 200 mm | 200 mm |
Operating frequency | 35 kHz | 35 kHz |
Item | Conventional Transmitting Coil | Combined Transmitting Coil | Receiving Coil |
---|---|---|---|
Coil length | 240 mm | 240 mm | 80 mm |
Coil width | 25.5 mm | 30.4 mm | 25.5 mm |
Number of turns | 21 | 25 | 21 |
Thickness | 1.2 mm | 1.2 mm | 1.2 mm |
Inductance | 0.0967 mH | 0.1022 mH | 0.02784 mH |
Capacitance | 220 nF | 204 nF | 746 nF |
Resistance | 0.4059 ohm | 0.407 ohm | 0.1435 ohm |
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Chen, W.; Liu, C.; Lee, C.H.T.; Shan, Z. Cost-Effectiveness Comparison of Coupler Designs of Wireless Power Transfer for Electric Vehicle Dynamic Charging. Energies 2016, 9, 906. https://doi.org/10.3390/en9110906
Chen W, Liu C, Lee CHT, Shan Z. Cost-Effectiveness Comparison of Coupler Designs of Wireless Power Transfer for Electric Vehicle Dynamic Charging. Energies. 2016; 9(11):906. https://doi.org/10.3390/en9110906
Chicago/Turabian StyleChen, Weitong, Chunhua Liu, Christopher H.T. Lee, and Zhiqiang Shan. 2016. "Cost-Effectiveness Comparison of Coupler Designs of Wireless Power Transfer for Electric Vehicle Dynamic Charging" Energies 9, no. 11: 906. https://doi.org/10.3390/en9110906
APA StyleChen, W., Liu, C., Lee, C. H. T., & Shan, Z. (2016). Cost-Effectiveness Comparison of Coupler Designs of Wireless Power Transfer for Electric Vehicle Dynamic Charging. Energies, 9(11), 906. https://doi.org/10.3390/en9110906