Performance Analysis of Two Receiver Arrangements for Wireless Battery Charging System
Abstract
:1. Introduction
2. WBC Background
2.1. Battery Charging
2.2. Analysis of SP Topology
3. FOMs and Their Calculation
3.1. FOMs Introduction
3.2. FOMs Calculation
3.3. WBC Arrangements #1
3.4. WBC Arrangements #2
4. Arrangement Comparison
4.1. Study Case
4.2. PTR, RE, and Efficiency
4.3. Arrangement #1
4.4. Arrangement #2
4.5. Efficiency Comparison
4.6. PSSF and RCSF
5. Effect on the Chopper
6. Experimental Analysis
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
WBCSs | Wireless Battery Charging Systems |
PFC | Power Factor Correction |
HFI | High-Frequency Inverter |
CN | Compensation Network |
EV | Electrical Vehicle |
SS | Series–Series |
SP | Series–Parallel |
FOM | Figure of Merit |
CC | Constant Current |
CV | Constant Voltage |
IB | Battery Current |
VB | Battery Voltage |
RB | Battery resistance |
PB | Battery power |
Ico | Cutoff current |
Vco | Cutoff voltage |
ICC | Normalized current in CC mode |
VM | Normalized maximum voltage of battery |
RN | Normalized resistance at point N |
PN | Normalized power at point N |
Power source voltage | |
Transmitter-side current | |
Receiver-side current | |
CT | Transmitter-side resonant capacitor |
CR | Receiver-side resonant capacitor |
Transmitter coil terminal voltage | |
Receiver coil terminal voltage | |
rT | Transmitter coil parasitic resistance |
rR | Receiver coil parasitic resistance |
Transmitter coil induce voltage | |
Receiver coil induce voltage | |
Receiver-side capacitor current | |
Load current | |
RL | Load resistance |
Voltage across RL | |
M | Mutual inductance |
ω | Supply angular frequency |
η | Efficiency |
PTR | Power Transfer Ratio |
RE | Receiver Efficiency |
PSSF | Power Source Sizing Factor |
RCSF | Receiver Coil Sizing Factor |
PS | Power source output power |
PR | Power transfer to receiver |
AS | Power source sizing power |
AR | Receiver coil sizing power |
Loss of transmitter coil | |
Loss of receiver coil | |
LDC | Low pass filter inductor |
CDC | Low pass filter capacitor |
VDC | Voltage across CDC in arrangement #2 |
δ | Chopper duty cycle |
Appendix A
References
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Data | Symbol | Value |
---|---|---|
Battery voltages | Vco, VM | 36, 56 V |
Battery currents | ICC, Ico | 10, 1 A |
Battery resistances | RI, RN, RF | 3.6, 5.6, 56 Ω |
Battery power | PI, PN, PF | 360, 560, 56 W |
Trans. and rec. coil inductances | LT, LR | 120 μH |
Trans. and rec. coil parasitic resistance | rT, rR | 0.5 Ω |
Trans. and rec. resonant capacitances | CT, CR | 29 nF |
Mutual inductance | M | 30 μH |
Supply angular frequency | ω | 2π·85,000 rad/s |
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Kumar, A.; Jha, R.K.; Bertoluzzo, M.; Khadse, C.B.; Jaiswal, S.; Mulay, G.; Sagar, A. Performance Analysis of Two Receiver Arrangements for Wireless Battery Charging System. Designs 2023, 7, 92. https://doi.org/10.3390/designs7040092
Kumar A, Jha RK, Bertoluzzo M, Khadse CB, Jaiswal S, Mulay G, Sagar A. Performance Analysis of Two Receiver Arrangements for Wireless Battery Charging System. Designs. 2023; 7(4):92. https://doi.org/10.3390/designs7040092
Chicago/Turabian StyleKumar, Abhay, Rupesh Kumar Jha, Manuele Bertoluzzo, Chetan B. Khadse, Swati Jaiswal, Gourang Mulay, and Amritansh Sagar. 2023. "Performance Analysis of Two Receiver Arrangements for Wireless Battery Charging System" Designs 7, no. 4: 92. https://doi.org/10.3390/designs7040092
APA StyleKumar, A., Jha, R. K., Bertoluzzo, M., Khadse, C. B., Jaiswal, S., Mulay, G., & Sagar, A. (2023). Performance Analysis of Two Receiver Arrangements for Wireless Battery Charging System. Designs, 7(4), 92. https://doi.org/10.3390/designs7040092