A Bimodal Multichannel Battery Pack Equalizer Based on a Quasi-Resonant Two-Transistor Forward Converter
Abstract
:1. Introduction
- 1.
- Full-switching-cycle (FSC) equalization, which was verified by simulation and experimental waveforms, was innovatively realized by a quasi-resonant, two-transistor forward converter. This structure can not only limit the forward transformer’s induced EMF without the forward transformer’s magnetic reset coil, but also obtain three balancing channels in each switching cycle.
- 2.
- The bimodal hybrid control strategy was designed to achieve a tradeoff between balancing efficiency and speed, which can select the best operation mode according to the status of battery pack group.
- 3.
- The experimental data of the prototype, which was in good agreement with theoretical and simulation analysis, confirmed the proposed pack equalizer’s ability to prevent pack-level over-discharge.
2. Proposed Pack Equalizer
2.1. Pack Equalizer Configuration and Operation Principles
2.2. Operation Principles, Modeling, and Analysis of P2PG&AP Mode
2.3. Operation Principles, Modelling, and Analysis of DP2P Mode
2.4. Equalizer Efficiency and Loss Analysis of P2PG&AP Mode
2.5. Equalizer Efficiency and Loss Analysis of DP2P Mode
3. The Bimodal Hybrid Control Strategy
4. Experiment Results
4.1. P2PG&AP Mode
4.2. DP2P Mode
4.3. The Bimodal Hybrid Mode
5. Comparison with Conventional Pack Equalizers
6. Conclusions
- (1)
- (2)
- An inter-pack equalization with minute level balancing time and more than 89.66% efficiency can be achieved through the bimodal hybrid control strategy, which can also effectively prevent the repeated equalization.
- (3)
- The equalizer is robust to different switching frequencies and different initial pack voltage distributions.
- (4)
- The proposed pack equalizer, which can cooperate with passive equalizer chips, provides a solution to simplify the structure of numerous cell equalizers in a long series battery group. This two-stage equalization scheme—which can be applied to electric vehicles, clean energy storage equipment and other fields—reduces the total number of power switches (including MOSFETs and power diodes) by at least 60%, and the total numbers of transformers and transformer coils by at least 75% and 97.5% respectively, as shown in Table 9.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Abbreviations | Explanations |
---|---|
P2PG&AP | pack-to-pack-group and pack-to- any-pack |
DP2P | direct-pack-to-pack |
STMR | secondary side two-transistor magnetic reset structure |
SBC | secondary side boost converter |
FSC | full-switching-cycle |
ZVG | zero voltage gap |
LC2AP | LC quasi-resonator to any pack |
Parameters | Explanations |
---|---|
the EMF value of TP’s primary coil | |
the EMF value of TP’s secondary coil | |
the excitation impedance value of TP | |
the current value of primary side electrified circuit under different switching states | |
the output current value of secondary coil under different switching states | |
the SBC current | |
the quasi-resonator current | |
the STMR output current | |
the excitation inductance of TP | |
the voltage value of the battery pack BPi | |
the leakage inductance of TP’s primary coil | |
the leakage inductance of TP’s secondary coil | |
the total equivalent resistance of the primary side electrified circuit in Figure 2b,c | |
the total equivalent resistance of the primary side circuit in Figure 2d | |
the total equivalent resistance of the primary side circuit in Figure 2e | |
the sum of the forward voltage drop of diodes on the energized circuit | |
the inductance value of LC quasi-resonator | |
the boost inductance value of the secondary side | |
the capacitance value of LC quasi-resonator | |
The output capacitance of MOSFET | |
The junction capacitance of power diode | |
The equivalent resistance of quasi-resonator | |
the total equivalent resistance of the secondary side electrified circuit in Figure 2b | |
the total equivalent resistance of the secondary side electrified circuit in Figure 2c | |
the equivalent resistance of SBC circuit in Figure 2d | |
the equivalent resistance of STMR in both Figure 2d, e |
Parameter | Value |
---|---|
0.485 | |
0.08 | |
0.315 | |
360 μH | |
330 μH | |
3.3 nF | |
330 μH | |
150 nF | |
Turns ratio of TP | 1/4 |
Parameters | Explanations |
---|---|
The total input power of pack equalizer | |
the conduction and switching loss of all primary lines | |
the average power loss of LC quasi-resonator caused by output capacitance of Q11 in 0−t05 | |
the primary input power of transformer TP | |
the total output power of pack equalizer | |
the average power output from SBC to the whole pack group in 0−t05 | |
the average power output from STMR to the whole group in t05−T0 | |
the average power of the LC quasi-resonator reversely charging into the acceptor battery pack in t06–T0 | |
the equalizer energy efficiency of P2PG&AP mode | |
the ratios of output powers from SBC to input power of equalizer | |
the ratios of output powers from STMR to input power of equalizer | |
the ratios of output powers from LC quasi-resonator to input power of equalizer | |
The circuit conduction loss of equalizer | |
the total equivalent resistance of the primary side circuit in Figure 4b | |
the total equivalent resistance of the primary side circuit in Figure 4c | |
the total equivalent resistance of the primary side circuit in Figure 4d | |
The switching loss of equalizer | |
The core loss of equalizer’s transformer | |
the turn-on losses of power switch | |
the turn-off losses of power switch | |
the switching frequency | |
the withstand voltage of the power switch before it turns on | |
the withstand voltage of the power switch before it turns on | |
the turnoff current of MOSFET | |
the falling time of MOSFET | |
the reverse recovery current of power diode | |
the reverse recovery time of power diode |
Component | Product |
---|---|
Q1,Q8,Q14 | STW32NM50N,, |
Q2-Q7,Q12 | SIHP25N40D-GE3, , |
Q9,Q10 | PTW40N50, , |
Q11,Q13 | IRFP4768PBF, , |
D1-D10 | BYV29-400, , |
D11,D12 | MBR20H150CTG, (Schottky diodes) |
D13 | PFR20V300CTF, (Schottky diodes) |
D14, D15,D18 | B1D04065K, (SiC schottky diodes) |
D16,D17 | ES2GB, , |
CP1 | Film capacitor, 3.3 nF |
CP2 | Film capacitor, 150 nF |
LP1,LP2 | Inductors, 330 μH |
MOSFET optocoupler driver | TLP152 |
Parameter | Value |
---|---|
10 | |
40 | |
346.07 μH | |
1.28 μH | |
0.90 μH | |
183.81 mΩ | |
613.64 mΩ |
Quantity | Equalization Experiments | |
---|---|---|
Figure 12a | Figure 12b | |
66.82 V | 65.19 V | |
65.53 V | 65.76 V | |
64.26 V | 65.12 V | |
64.61 V | 65.09 V | |
Balancing Time (s) | 558 s | 1013 s |
Equalizers | Power | Efficiency | Speed | MOSFET Withstand Voltage | |
---|---|---|---|---|---|
Cooperative | Integrated equalizer based on multiwinding transformers [25] | <2.8 W (Small) | AP2P ≤ 91.3% | Hour level (Slow) | No MOSFET used in pack equalization |
Buck and forward converter equalizer [26] | <40 W (Medium) | PG2P ≤ 83.84% | Second level (Fast) | ||
Independent | Switch capacitor direct pack equalizer [28] | No specific data | AP2P No specific data | Hour level (Extremely Slow) | |
Inductor adjacent pack equalizer [29] | <0.2 W (Small) | AP2P No specific data | Hour level (Medium) | ||
Proposed pack equalizer | ≤98 W (Large) | Bimodal ≥ 89.66% | Minute level (Fast) |
Equalizers | Component Number | Total Size | Total Cost | |||||||||||
Pack Level | Cell Level | |||||||||||||
M | D | W | T | L | C | M | D | W | T | L | ||||
Cooperative | Integrated equalizer based on multiwinding transformers [25] | 0 | 0 | 6 | SH | 0 | 0 | 80 | 0 | 80 | 4 | 0 | Large | High |
Buck and forward converter equalizer [26] | 1 | 1 | 0 | SH | 1 | 1 | 4 | 80 | 84 | 4 | 0 | Large | Low | |
Independent | Switch capacitor direct pack equalizer [28] | 12 | 0 | 0 | 0 | 0 | 3 | 4 | 80 | 84 | 4 | 0 | Large | Medium |
Inductor adjacent pack equalizer [29] | 6 | 0 | 0 | 0 | 3 | 0 | 152 | 0 | 0 | 0 | 76 | Small | High | |
Proposed pack equalizer | 14 | 18 | 2 | 1 | 2 | 2 | 16 five-series chip level cell equalizers | Small | Medium |
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Wu, Q.; Gao, M.; Lin, H.; Dong, Z. A Bimodal Multichannel Battery Pack Equalizer Based on a Quasi-Resonant Two-Transistor Forward Converter. Energies 2021, 14, 1112. https://doi.org/10.3390/en14041112
Wu Q, Gao M, Lin H, Dong Z. A Bimodal Multichannel Battery Pack Equalizer Based on a Quasi-Resonant Two-Transistor Forward Converter. Energies. 2021; 14(4):1112. https://doi.org/10.3390/en14041112
Chicago/Turabian StyleWu, Qixing, Mingyu Gao, Huipin Lin, and Zhekang Dong. 2021. "A Bimodal Multichannel Battery Pack Equalizer Based on a Quasi-Resonant Two-Transistor Forward Converter" Energies 14, no. 4: 1112. https://doi.org/10.3390/en14041112
APA StyleWu, Q., Gao, M., Lin, H., & Dong, Z. (2021). A Bimodal Multichannel Battery Pack Equalizer Based on a Quasi-Resonant Two-Transistor Forward Converter. Energies, 14(4), 1112. https://doi.org/10.3390/en14041112