Enhancing Wireless Charging for Electric Vehicles: Active Load Impedance Matching and Its Impact on Efficiency, Cost and Size
Abstract
:1. Introduction
- Efficiency at Low Operational Frequencies: Achieving better efficiency at frequencies below 10 kHz, allowing the use of standard plain copper wire instead of Litz wire in WPT inductors.
- Loss Distribution: Improved loss distribution in the system, reducing cooling system costs and facilitating integration [15].
- Partial Compensation for Misalignment: Partially compensates for the detuning of the compensation circuit caused by vehicle misalignment, thereby reducing performance loss [16].
2. Compensation Circuit
3. Operation Frequency
4. Load Impedance Matching
4.1. Introduction
4.2. Load Impedance Matching with Synchronous Rectification
4.3. Rectification with Active Load Impedance Matching (ALIM) Strategy
4.4. Control Law
5. Application Case: 800 V 11 kW 7 kHz Bidirectional Wireless Charger
5.1. Product Definition
- Nominal battery voltage at 800 V. Full range is [300–900 V];
- Supply DC voltage at 800 V;
- Maximum charging power: 11 kW;
- Maximum V2X power: 11 kW;
- Maximum EV coil diameter: 400 mm;
- Maximum charging station coil diameter: 450 mm;
- Nominal coil-to-coil airgap: 100 mm.
5.2. Sizing Results
5.3. Overall Performances
5.4. Sensitivity to Parameter Drift
6. Operational Performances on Electric Vehicle Mockup: 350 V 7 kW 3 kHz Bidirectional Wireless Charger
7. Application Case: 800 V 11 kW 85 kHz Bidirectional Wireless Charger
7.1. Circuit Definition and Driving Strategy
7.2. Product Definition
7.3. Sizing Results
8. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
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Attribute | Value |
---|---|
Operating frequencies | Fsw = 7 kHz Fadapt = 140 kHz |
EV-side and charging-station-side transistors | 1200 V 12 mΩ SiC MOSFET |
Primary capacitor | 390 nF ESR ~5 mΩ at 7 kHz |
Secondary capacitor | 460 nF ESR ~5 mΩ at 7 kHz |
Charging station coil | 1.324 mH ESR 587 mΩ at 7 kHz 100 mm airgap Magnetic core + winding total weight 6.8 kg |
EV-side coil | 1.117 mH ESR 456 mΩ at 7 kHz 100 mm airgap Magnetic core + winding total weight 4.9 kg |
Coupling factor at 100 mm airgap | 45.5% |
Total control and driving power | 5 W |
Attribute | Value |
---|---|
Operating frequencies | Fsw = 2.8 kHz Fadapt = 100 kHz |
EV-side and charging-station-side transistors | 750 V 11 mΩ SiC MOSFET |
Primary capacitor | 2 µF ESR ~10 mΩ |
Secondary capacitor | 2.9 µF ESR ~10 mΩ |
Charging station coil | 1.8 mH ESR 437 mΩ at 2.8 kHz 100 mm airgap Magnetic core + winding total weight 3.7 kg |
EV-side coil | 1.2 mH ESR 349 mΩ at 2.8 kHz 100 mm airgap Magnetic core + winding total weight 2.3 kg |
Coupling factor at 100mm airgap | 53.5% |
Total control and driving power | 5 W |
Operating Mode → | EV Charging Mode | V2X Mode | |
---|---|---|---|
↓ Control Variables | |||
Charging station side | Duty cycles αA1/αA2 | 50% | * |
Duty cycles αB1/αB2 | 50% | * | |
Phase shift φA | 0 rd | π rd | |
Phase shift φB | 0 rd | π rd | |
Phase shift φC | Phase shift power loop control | π/2 rd | |
Operating frequency | Fsw | Fadapt | |
EV side | Duty cycles α11/α12 | * | 50% |
Duty cycles α21/α22 | * | 50% | |
Phase shift φ1 | π rd | 0 rd | |
Phase shift φ2 | π rd | 0 rd | |
Phase shift φ3 | π/2 rd | Phase shift power loop control | |
Operating frequency | Fadapt | Fsw |
Attribute | Value |
---|---|
Operating frequencies | Fsw = 85 kHz Fadapt = 425 kHz |
EV-side and charging-station-side transistors | 1200 V 12 mΩ SiC MOSFET |
ZVS inductors | 2 µH 150 A ESR DC ~1.5 mΩ/425 kHz ~2.25 mΩ |
ZVS capacitors | 2 nF 1200 V ~5 mΩ at 425 kHz |
Primary capacitor | 50 nF ESR ~10 mΩ at 85 kHz |
Secondary capacitor | 23 nF ESR ~10 mΩ at 85 kHz |
Charging station coil | 154 µH ESR 71.8 mΩ at 85 kHz 100 mm airgap Magnetic core + winding total weight 5.06 kg |
EV-side coil | 70.5 µH ESR 42.4 mΩ at 85 kHz 100 mm airgap Magnetic core + winding total weight 1.04 kg |
Coupling factor at 100 mm airgap | 22.6% |
Total control and driving power | 16.3 W for ALIM rectification/5.4 W for synchronous rectification |
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Allali, N. Enhancing Wireless Charging for Electric Vehicles: Active Load Impedance Matching and Its Impact on Efficiency, Cost and Size. Electronics 2024, 13, 2720. https://doi.org/10.3390/electronics13142720
Allali N. Enhancing Wireless Charging for Electric Vehicles: Active Load Impedance Matching and Its Impact on Efficiency, Cost and Size. Electronics. 2024; 13(14):2720. https://doi.org/10.3390/electronics13142720
Chicago/Turabian StyleAllali, Nicolas. 2024. "Enhancing Wireless Charging for Electric Vehicles: Active Load Impedance Matching and Its Impact on Efficiency, Cost and Size" Electronics 13, no. 14: 2720. https://doi.org/10.3390/electronics13142720
APA StyleAllali, N. (2024). Enhancing Wireless Charging for Electric Vehicles: Active Load Impedance Matching and Its Impact on Efficiency, Cost and Size. Electronics, 13(14), 2720. https://doi.org/10.3390/electronics13142720