Inductive Power Transmission System for Electric Car Charging Phase: Modeling plus Frequency Analysis
Abstract
:1. Introduction
2. Wireless Charging System Presentation and Modelisation
2.1. The Position of the Frequency Controller
2.2. Model of the Wireless Charging System
2.2.1. Static Modeling
2.2.2. Dynamic Modeling
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
M | Mutual inductance (H) |
ω | Oscillation angular frequency (rad/s) |
k | Magnetic coupling constant |
L2 | Secondary inductance (H) |
L1 | Primary inductance (H) |
Z2 | Primary impedance (Ω) |
Zs | Secondary impedance (Ω) |
I1 | Primary current (A) |
I2 | Secondary current (A) |
V1 | Primary voltage (V) |
V2 | Secondary voltage (V) |
N | Number of turns |
Magnetic constant | |
L | Inductance (H) |
P1 | Primary power |
P2 | Secondary power |
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Drive Battery | Lithium-ion |
Coil diameter (cm) | 50 |
Distance between coil (cm) | 150 |
Test frequency (kHz) | (10; 30; 50; 65) |
Self-Inductance, Lp = Ls | (37 μH 140 μH) |
SS compensation capacitance, Cp = Cs | [95 nF 0.37 μF] |
Frequency | The Energy Gain for 3 s × 10−3 | The Energy Gain for 10 h |
---|---|---|
10 kHz | 48.5% | 9.7% |
30 kHz | 86.5% | 17.3% |
50 Khz | 99.1% | 19.82% |
65 kHz | 100% | 20.01% |
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Mohamed, N.; Aymen, F.; Alqarni, M. Inductive Power Transmission System for Electric Car Charging Phase: Modeling plus Frequency Analysis. World Electr. Veh. J. 2021, 12, 267. https://doi.org/10.3390/wevj12040267
Mohamed N, Aymen F, Alqarni M. Inductive Power Transmission System for Electric Car Charging Phase: Modeling plus Frequency Analysis. World Electric Vehicle Journal. 2021; 12(4):267. https://doi.org/10.3390/wevj12040267
Chicago/Turabian StyleMohamed, Naoui, Flah Aymen, and Mohammed Alqarni. 2021. "Inductive Power Transmission System for Electric Car Charging Phase: Modeling plus Frequency Analysis" World Electric Vehicle Journal 12, no. 4: 267. https://doi.org/10.3390/wevj12040267