An Autonomous Coil Alignment System for the Dynamic Wireless Charging of Electric Vehicles to Minimize Lateral Misalignment
Abstract
:1. Introduction
2. Analysis of Power Loss Due to Lateral Misalignment in Dynamic Wireless Charging (DWC) Systems
3. Concept of the Autonomous Coil Alignment System (ACAS)
3.1. ACAS Sensor Coil Unit
Verification of the ACAS Sensor Coil Unit through Simulation
3.2. ACAS Lateral Position Detection Unit
3.3. ACAS Fuzzy Steering Controller
4. Experimental Validation
4.1. Experimental Setup
4.2. Experimental Results from the First Experiment (Static Load: 10 Ohm Resistor)
4.3. Experimental Results from the Second Experiment (Load: Experimental Vehicle)
- For the vehicle without ACAS, the estimated power shown in Figure 27 was assumed to be the level of power that would actually be received by the DWC vehicle while in operation.
- For the vehicle with ACAS, it was assumed that a constant 11W of power is generated, as the vehicle’s load coil is kept in constant alignment with the source coil on the road.
5. Conclusions
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameter | Source Coil | Load Coil | Sensor Coil |
---|---|---|---|
# of turns | 8 | 50 | 10 |
Inductance | 116 μH | 2.35 mH | 732 nH |
Operating frequency | 20 kHz | ||
Current through source coil | 200 A |
Parameter | Source Coil | Load Coil | Sensor Coil |
---|---|---|---|
Dimensions (W × L × H) | 19.0 cm × 54.0 cm × 1.5 cm | 8.0 cm × 16.0 cm × 2.0 cm | 2.0 cm × 2.5 cm × 2.5 cm |
# of turns | 20 | 42 | 10 |
inductance | 590.00 μH | 186.15 μH | 2.45 μH |
Parameter | Ferrite Block Type A | Ferrite Block Type B |
---|---|---|
Dimensions (W × L × H) | 10.0 cm × 10.0 cm × 1.0 cm | 10.0 cm × 4.0 cm × 1.0 cm |
Material | Manganese-Zinc (Mn-Zn) | |
Permeability () | 3200 | |
Saturation flux density () | 520 mT |
Component | Symbol | Value |
---|---|---|
Source/load coil components to match resonance @ 20 kHz | 590.00 μH | |
170 | ||
107.33 nF | ||
186.15 μH | ||
103 | ||
328.11 nF | ||
Rectifier smoothing capacitor | 3200 μF | |
Low-pass filter (LPF) components | 919 | |
9.8 nF | ||
Load resistance for first experiment (static load) | 10 | |
Load resistance for second experiment (experimental vehicle load) | 2~3 |
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Hwang, K.; Cho, J.; Kim, D.; Park, J.; Kwon, J.H.; Kwak, S.I.; Park, H.H.; Ahn, S. An Autonomous Coil Alignment System for the Dynamic Wireless Charging of Electric Vehicles to Minimize Lateral Misalignment. Energies 2017, 10, 315. https://doi.org/10.3390/en10030315
Hwang K, Cho J, Kim D, Park J, Kwon JH, Kwak SI, Park HH, Ahn S. An Autonomous Coil Alignment System for the Dynamic Wireless Charging of Electric Vehicles to Minimize Lateral Misalignment. Energies. 2017; 10(3):315. https://doi.org/10.3390/en10030315
Chicago/Turabian StyleHwang, Karam, Jaeyong Cho, Dongwook Kim, Jaehyoung Park, Jong Hwa Kwon, Sang Il Kwak, Hyun Ho Park, and Seungyoung Ahn. 2017. "An Autonomous Coil Alignment System for the Dynamic Wireless Charging of Electric Vehicles to Minimize Lateral Misalignment" Energies 10, no. 3: 315. https://doi.org/10.3390/en10030315
APA StyleHwang, K., Cho, J., Kim, D., Park, J., Kwon, J. H., Kwak, S. I., Park, H. H., & Ahn, S. (2017). An Autonomous Coil Alignment System for the Dynamic Wireless Charging of Electric Vehicles to Minimize Lateral Misalignment. Energies, 10(3), 315. https://doi.org/10.3390/en10030315