Capacitive Coupling Wireless Power Transfer with Quasi-LLC Resonant Converter Using Electric Vehicles’ Windows
<p>Electric vehicle charging method. (<b>a</b>) Slow wired charging. (<b>b</b>) Quick wired charging. (<b>c</b>) Wireless power transfer (WPT) charging.</p> "> Figure 2
<p>Coupling capacitor implementation in a vehicle.</p> "> Figure 3
<p>Proposed capacitive coupling wireless power transfer (CCWPT) charging system using the windows of an electric vehicle.</p> "> Figure 4
<p>Proposed quasi-LLC resonant CCWPT power conversion circuit.</p> "> Figure 5
<p>Key waveforms of the proposed CCWPT circuit.</p> "> Figure 6
<p>Structure of capacitor with glass dielectric layer.</p> "> Figure 7
<p>Equivalent circuit for the proposed CCWPT system.</p> "> Figure 8
<p>Output voltage gain according to the transformer turn ratios. (<b>a</b>) Output voltage gain according to a turn ratio of transformer T<sub>1</sub>. (<b>b</b>) Output voltage gain according to a turn ratio of transformer T<sub>2</sub>.</p> "> Figure 9
<p>Experimental set: transmitter circuit, rectifier, the resonant inductor, two transformers, the coupling capacitors using glass and copper plate.</p> "> Figure 10
<p>Experimental key waveforms according to load variation: the gate-source voltage of <span class="html-italic">M</span><sub>1</sub>, the drain-source voltage of <span class="html-italic">M</span><sub>1</sub>, the resonant inductor current, the voltage across the magnetized inductor of the transformer <span class="html-italic">T</span><sub>2</sub>, the voltage of the coupling capacitor, the zero voltage switching (ZVS) operation of <span class="html-italic">M</span><sub>1.</sub></p> "> Figure 11
<p>Power conversion efficiency according to output power.</p> ">
Abstract
:1. Introduction
2. The Proposed CCWPT System
2.1. Substrates for Dielectric Layers in Vehicle
2.2. Quasi-LLC Power Conversion Circuit for Adjusting Impedance of a Coupling Capacitor
- (1)
- All analyses are performed in steady-state operation.
- (2)
- The capacitances of Cb and Co are sufficiently large to make their voltages constant.
- (3)
- M1–M4 are ideal except for their internal diodes and output capacitors.
- (4)
- D1–D4 are ideal except for their junction capacitors.
- (5)
- The inductance of Lm2 is several times greater than the inductance of Lr.
- (6)
- It is assumed that the inductance of Lm1 is large enough and is infinite.
- (7)
- The turn ratio of the step-up transformer T1 is n1.
- (8)
- The turn ratio of the step-down transformer T2 is n2.
3. Design Considerations of the Proposed CCWPT System
3.1. Capacitor Estimation
3.2. Output Voltage DC Gain of the Proposed Power Conversion Circuit
4. Experimental Results
5. Conclusions
Funding
Acknowledgments
Conflicts of Interest
References
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Material | Relative Permittivity |
---|---|
Air | 1.0005 |
Glass | 4–7 |
Polypropylene | 2.2–2.4 |
ABS Resin | 2.3–2.5 |
Parameters | Symbol | Value/Part |
---|---|---|
Input voltage | Vin | 400 V |
Output power | Po | 1.6 kW |
Resonant inductor | Lr | 63 μH |
n1 and n2 | Np1:Ns1 and Np2:Ns2 | 1:2.2 and 2.2:1 |
Magnetizing inductor of T2 | Lm2 | 1600 μH |
Coupling capacitor | CC1 and CC2 | 16 nF |
Transformer core | T1 and T2 | EI6044 |
Primary switches | M1,2,3,4 | STW13NK100Z |
Diodes | D1,2,3,4 | VS-HFA16PA60C-N3 |
Width of glass | - | 2 mm |
Coupling capacitor electrode | - | Copper |
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Yi, K. Capacitive Coupling Wireless Power Transfer with Quasi-LLC Resonant Converter Using Electric Vehicles’ Windows. Electronics 2020, 9, 676. https://doi.org/10.3390/electronics9040676
Yi K. Capacitive Coupling Wireless Power Transfer with Quasi-LLC Resonant Converter Using Electric Vehicles’ Windows. Electronics. 2020; 9(4):676. https://doi.org/10.3390/electronics9040676
Chicago/Turabian StyleYi, KangHyun. 2020. "Capacitive Coupling Wireless Power Transfer with Quasi-LLC Resonant Converter Using Electric Vehicles’ Windows" Electronics 9, no. 4: 676. https://doi.org/10.3390/electronics9040676
APA StyleYi, K. (2020). Capacitive Coupling Wireless Power Transfer with Quasi-LLC Resonant Converter Using Electric Vehicles’ Windows. Electronics, 9(4), 676. https://doi.org/10.3390/electronics9040676