Multi-Mode Lithium-Ion Battery Balancing Circuit Based on Forward Converter with Resonant Reset
Abstract
:1. Introduction
2. Balancing Circuit
2.1. Circuit Structure
2.2. Operation Principle
2.3. Circuit Analysis
2.4. ZVS Analysis
3. Analysis and Verification
3.1. Verification
3.1.1. Verification of Balancing Circuit
3.1.2. Verification of ZVS
3.2. Analysis of Balancing Performance
3.3. Influencing Factors of Balancing Performance
3.3.1. Effect of Converter Turn Ratios
3.3.2. Effect of Switching Cycles
3.3.3. Effect of Output Resistances
3.3.4. Effect of Balancing Modes
4. Balancing Strategy
- (1)
- The voltage of each cell in the battery pack is measured. Umax and Umin are found by the measured voltages. Then the numbers of cells of Umax and Umin are recorded.
- (2)
- (Umax − Umin) is calculated and compared with Uref1. If (Umax − Umin) > Uref1, the balancing circuit is activated. If (Umax − Umin) ≤ Uref1, the system is stopped to enter the balancing operation.
- (3)
- When the balancing system is controlled to enter the balancing state, Uavg is calculated, and (Ui − Uavg) is calculated with Ui. Then (Ui − Uavg) is compared with Uref2. If (Ui − Uavg) ≥ Uref2, the cell is identified as a high-energy cell. If (Ui − Uavg) ≤ −Uref2, the cell is identified as a low-energy cell.
- (4)
- The numbers of high-energy cells and low-energy cells involved in balancing are counted, and their numbers are noted as a and b. The balancing mode is selected according to the result of the comparison of a and b.
- (5)
- After completing the above operations, the balancing system enters a waiting state, and the next cycle is entered by the balancing system.
5. Experiments and Analysis
5.1. Experimental Parameters
5.2. Prototype Verification
5.3. Experimental Results
6. Discussion
7. Conclusions
- The proposed balancing circuit utilizes a forward converter to achieve high-power balancing.
- A switching matrix consisting of an SPST relay realizes the MC2MC (Multi-Cell-to-Multi-Cell)) balancing method, simplifies the structure of the balancing circuit, makes the circuit easier to drive and control, and reduces the cost of the balancing circuit.
- The proposed balancing strategy allows the balancing circuit to have both n-cell-to-n-cell and n-cell-to-(n-1)-cell balancing modes and provides a flexible transmission path for energy.
- An experiment with an eight-cell lithium-ion battery pack was performed. The experiment result at 1260 s shows that the proposed method has a fast balancing speed, and the comparison with [31] shows that the balancing time in the proposed method is reduced by about 82.5%. Moreover, the maximum balancing efficiency of the proposed method is about 83.31%. Consequently, the proposed method has a good balancing performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Values |
---|---|
Lm1 Lm2 | 80 μH |
Cr1 Cr2 | 100 nF |
Ro1 Ro2 | 1 Ω |
RT1a RT2a/RT1b RT2b | 0.36 Ω/3 Ω |
TS | 25 μs 30 μs 35 μs 40 μs 45 μs 50 μs |
TS/μs | Theory/% | Simulation/% |
---|---|---|
25 | 44 | 55 |
30 | 53 | 64 |
35 | 60 | 70 |
40 | 65 | 75 |
45 | 69 | 78 |
50 | 72 | 80 |
Component | Parameter |
---|---|
Rated capacity | 3.2 Ah |
MOSFET | SPN2054 |
MOSFET driver | UCC27524 |
Relay driver | 74HC595 |
MCU controller | STM32 |
Transformer inductance/turn ratio | 80 μH/1:2 |
Resonant capacitor | 100 nF |
Output resistance | 1 Ω |
Switch period/duty cycle | 50 μs/73% |
Balancing Circuit | Balancing Time/s | Balancing Voltage/V |
---|---|---|
Balancing Circuit in ref. [35] | 7250 | 3.533–3.58 |
Proposed Balancing Circuit | 1260 | 3.151–3.193 |
Balancing Circuit | Type | Component | ||||||
---|---|---|---|---|---|---|---|---|
M | D | L | C | RE | T | DR | ||
SC circuit [24] | AC2C | 2n | 0 | n-1 | n-1 | 0 | 0 | 2n |
LCSR circuit [26] | DC2C | 2n + 10 | 4 | 1 | 1 | 0 | 0 | n + 5 |
Flyback circuit [30] | C2P | n + 2 | n + 2 | 0 | 0 | 0 | 1 | n + 2 |
Forward circuit [35] | AC2AC | n | n | 0 | n | 0 | n | n |
BRLC circuit [37] | MC2MC | 4(n + 1) | 4 | 1 | 1 | 0 | 0 | 2(n + 1) |
Proposed circuit | MC2MC | 2 | 2 | 0 | 4 | 4n | 2 | n/2 + 1 |
Balancing Circuit | Type | Size | Cost (USD) | Speed | Drive | |
---|---|---|---|---|---|---|
SC circuit [24] | AC2C | Large | 21.6 | Very High | Poor | Good |
LCSR circuit [26] | DC2C | Small | 17 | High | Normal | Poor |
Flyback circuit [30] | C2P | Small | 9.3 | Very Low | Normal | Good |
Forward circuit [35] | AC2AC | Medium | 18.8 | High | Normal | Good |
BRLC circuit [37] | MC2MC | Small | 23 | Very High | Good | Poor |
Proposed circuit | MC2MC | Large | 13.9 | Low | Excellent | Excellent |
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Zong, Y.; Li, K.; Wang, Q.; Meng, J. Multi-Mode Lithium-Ion Battery Balancing Circuit Based on Forward Converter with Resonant Reset. Appl. Sci. 2023, 13, 10430. https://doi.org/10.3390/app131810430
Zong Y, Li K, Wang Q, Meng J. Multi-Mode Lithium-Ion Battery Balancing Circuit Based on Forward Converter with Resonant Reset. Applied Sciences. 2023; 13(18):10430. https://doi.org/10.3390/app131810430
Chicago/Turabian StyleZong, Yanliang, Kun Li, Qing Wang, and Jiaheng Meng. 2023. "Multi-Mode Lithium-Ion Battery Balancing Circuit Based on Forward Converter with Resonant Reset" Applied Sciences 13, no. 18: 10430. https://doi.org/10.3390/app131810430
APA StyleZong, Y., Li, K., Wang, Q., & Meng, J. (2023). Multi-Mode Lithium-Ion Battery Balancing Circuit Based on Forward Converter with Resonant Reset. Applied Sciences, 13(18), 10430. https://doi.org/10.3390/app131810430