Design and Implementation of a Wireless Charging System Connected to the AC Grid for an E-Bike
Abstract
:1. Introduction
- (1)
- A wireless charging system connected to the AC grid has been designed to meet the battery charging requirements of the e-bike.
- (2)
- The IPT and AC grid are isolated from each other by the use of a forward converter. At the same time, the low primary side DC-link voltage required testing the presence of load and large misalignment can be provided with the forward converter.
- (3)
- The CC/CV control is achieved with a forward converter working in PCM mode instead of an H-bridge inverter. Thus, the soft-switching methods can be easily applied in an inverter operating at a constant frequency and duty-ratio.
2. Design of Inductive Power Transfer System for E-Bikes
3. Forward Converter Design
4. The Control Strategy of No-Load Condition and Charging
4.1. No-Load Condition Control
4.2. CC-CV Control Strategy
5. Simulation and Experimental Results
5.1. Open Loop System Response
5.2. Closed Loop System Response
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
Parameters | |
equivalent load resistance | |
load resistance | |
mutual inductance | |
input voltage of rectifier in the secondary side of IPT | |
Primary side input voltage of IPT | |
output voltage of forward converter | |
, | primary and secondary side self-inductances of IPT |
, | primary and secondary side resonance capacitors of IPT |
, | primary and secondary side currents of the IPT |
operating angular frequency | |
, | primary and secondary side quality factors of IPT |
distance between the primary and secondary pads of IPT | |
, | Turn numbers of primary and secondary coils of IPT |
resonance frequency | |
AC-AC efficiency of IPT | |
input power of the rectifier on the secondary side of IPT | |
current–voltage gain of the IPT | |
voltage–voltage gain of the IPT | |
forward converter efficiency | |
turn ratio of the forward transformer | |
Duty ratio of the forward converter | |
, | inductor and capacitor of low-pass filter for forward converter |
switching frequency of forward converter | |
, | the ripple in current and voltage of the forward converter output |
magnetic coupling | |
, | load voltage and current |
forward converter test voltage to control IPT load | |
maximum forward converter current level to set for CC mode | |
maximum forward converter current level to set for CV mode | |
Abbreviations | |
IPT | inductive power transfer |
CC | constant current |
CV | constant voltage |
PTE | power transfer efficiency of IPT |
ESR | effective series resistance |
PCM | peak current mode |
SOC | state of charge |
WCS | wireless charging systems |
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Parameter | MATLAB | Measured |
---|---|---|
(Ω) | 0.3698 | 0.433 |
(Ω) | 0.3501 | 0.4067 |
(μH) | 205.1179 | 203.1 |
(μH) | 189.9593 | 187.31 |
(μH) | 26.4054 | 25.5 |
(nF) | 17.1281 | 17.447 |
(nF) | 18.4895 | 18.791 |
(Volt) | 41.1 | 41.1 |
(A) | 2.9087 | 2.94 |
(A) | 2.8465 | 2.85 |
(kHz) | 84.9234 | 85.19 |
(Watt) | 113.5933 | 113.145 |
(%) | 95.012 | 93.18 |
250 mA | % 15–47 | ||
10 mV | 1.63 | ||
310 V | % 96 | ||
1000 uF | 330 uH |
Topology | Primary Side Voltage (V) | Secondary Side Voltage (V) | Power (W) | Distance (mm) | Freqency | Eff. (%) | |
---|---|---|---|---|---|---|---|
[3] | LCL-LCL | 50 | 50 | 100 | 180 | 1 Mhz | 73.6 |
[17] | S-S | 48 | 18 | 53,79 | 30 | 85.5 kHz | 81 |
[18] | LCL-S | 48 | 26 | 78,31 | 35 | 85 kHz | 84.103 |
[23] | S-S | 20 | 20 | 90 | - | 95.6 kHz | 90.3 |
[25] | S-S | - | 24 | 100 | 30 | - | 79 |
[26] | S-S | 24 | 48 | 250 | 200 | 200 kHz | 92.15 |
[27] | S-S | 72 | 48 | 100 | 30 | 100 kHz | - |
[29] | S-S | 48 | 36 | - | 30 | 100 kHz | - |
[29] | S-LCC | 48 | 20 | 55 | - | 200 kHz | - |
[30] | S-S | ~21 V | 44,5 | 84 | - | 85 kHz | 93.17 |
[31] | S-S | 400 V | 42 V | 100 | 70 | 83.1 kHz | 80 |
Prop. | S-S | 310 V | 44 V | 110 | 100 | 85 kHz | 87.52 |
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Yildiriz, E.; Bayraktar, M. Design and Implementation of a Wireless Charging System Connected to the AC Grid for an E-Bike. Energies 2022, 15, 4262. https://doi.org/10.3390/en15124262
Yildiriz E, Bayraktar M. Design and Implementation of a Wireless Charging System Connected to the AC Grid for an E-Bike. Energies. 2022; 15(12):4262. https://doi.org/10.3390/en15124262
Chicago/Turabian StyleYildiriz, Emin, and Murat Bayraktar. 2022. "Design and Implementation of a Wireless Charging System Connected to the AC Grid for an E-Bike" Energies 15, no. 12: 4262. https://doi.org/10.3390/en15124262
APA StyleYildiriz, E., & Bayraktar, M. (2022). Design and Implementation of a Wireless Charging System Connected to the AC Grid for an E-Bike. Energies, 15(12), 4262. https://doi.org/10.3390/en15124262