Auxiliary Power Supply System for Electric Power Steering (EPS) and High-Heat-Resistant Lithium-Ion Capacitor †
Abstract
:1. Introduction
- Elimination of the torque-assist delay during abrupt steering and stationary steering
- Peak cut of the electric power consumption during abrupt steering and stationary steering
- Redundant power supply in case of 12 V power supply failure
2. EPS Electric Power Consumption
3. The Configuration of Auxiliary Power Supply System for EPS
3.1. System Summary
3.2. Block Diagram and Control Method, Design of Capacitance of Capacitor
4. Mechanism of High Power Output
5. Actual Vehicle Evaluation
Testing Method
- Steer with only 12 V power supply.
- Steer with 12 V power supply + developed system(lithium-ion capacitor 2 cells; voltage boost + 6 V).
6. Adaptation of Electrical Power Storage Device in Vehicle Environment
6.1. Lithium-Ion Capacitor
6.2. Development of High-Heat-Resistant Lithium-Ion Capacitor
7. Implementation Items
8. Test Specimen and Testing Method
8.1. Test Specimen
- Conventional capacitor using electrolyte solution in which 1.0 mol/L of LiPF6 was dissolved(ethylene carbonate (EC):ethyl methyl carbonate (EMC):dimethyl carbonate (DMC) = 3:4:3)
- Change only electrolyte solution
- Change electrolyte solution and JTEKT proprietary method
8.2. Heat Resistance Evaluation
8.3. Evaluation of Large Current Charge–Discharge Properties
8.4. Low-Temperature Properties Evaluation
9. Results
9.1. Heat Resistance Evaluation
9.2. Evaluation of Large Current Charge–Discharge Properties
9.3. Low-Temperature Properties Evaluation
10. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Technical Challenge | Implementation Items | |
---|---|---|
Heat-resistance Improvement | Prevention of electrolyte solution decomposition | Adoption of high-heat resistance electrolyte salt |
Prevention of electrolyte solution boiling | Adoption of high boiling-point organic solvent | |
JTEKT proprietary method | ||
Improvement of low temperature output | Prevention of electrolyte solution freezing | Adoption of low freezing point organic solvent |
Optimization of organic solvent mixing ratio | ||
Prevention of internal resistance increase | Affecter identification | |
Changing of positive and negative materials |
Upper Limit Voltage of Capacitor, V | ||||||
---|---|---|---|---|---|---|
3.60 | 3.65 | 3.70 | 3.75 | 3.80 | ||
Test atmospheric temperature, degree C | 110 | 24.6% | - | - | - | - |
105 | 7.1% | 5.7% | - | - | - | |
100 | 3.1% | 1.8% | 6.8% | - | - | |
95 | 0.3% | 2.2% | 3.7% | 5.1% | - | |
90 | 0.7% | −0.2% | 3.0% | 2.1% | - | |
85 | 0% | 2.1% | 3.5% | 3.5% | 7.7% |
Upper Limit Voltage of Capacitor, V | ||||||
---|---|---|---|---|---|---|
3.60 | 3.65 | 3.70 | 3.75 | 3.80 | ||
Test atmospheric temperature, degree C | 110 | 3% | - | - | - | - |
105 | 2.3% | −0.3% | - | - | - | |
100 | 1.6% | −0.2% | 0.7% | - | - | |
95 | 0.8% | 0.5% | 0.2% | 0% | - | |
90 | 2.0% | 0.9% | 1.4% | 0.6% | - | |
85 | 0% | 0.8% | 0.5% | 1.4% | 0.2% |
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Share and Cite
Mio, T.; Komatsubara, Y.; Ohmi, N.; Kimoto, Y.; Iizuka, K.; Suganuma, T.; Maruyama, S.; Sugiyama, T.; Sato, F.; Shinoda, S.; et al. Auxiliary Power Supply System for Electric Power Steering (EPS) and High-Heat-Resistant Lithium-Ion Capacitor. World Electr. Veh. J. 2019, 10, 27. https://doi.org/10.3390/wevj10020027
Mio T, Komatsubara Y, Ohmi N, Kimoto Y, Iizuka K, Suganuma T, Maruyama S, Sugiyama T, Sato F, Shinoda S, et al. Auxiliary Power Supply System for Electric Power Steering (EPS) and High-Heat-Resistant Lithium-Ion Capacitor. World Electric Vehicle Journal. 2019; 10(2):27. https://doi.org/10.3390/wevj10020027
Chicago/Turabian StyleMio, Takumi, Yukihiro Komatsubara, Naoki Ohmi, Yusuke Kimoto, Kentaro Iizuka, Tomoki Suganuma, Shun Maruyama, Toyoki Sugiyama, Fumihiko Sato, Satoshi Shinoda, and et al. 2019. "Auxiliary Power Supply System for Electric Power Steering (EPS) and High-Heat-Resistant Lithium-Ion Capacitor" World Electric Vehicle Journal 10, no. 2: 27. https://doi.org/10.3390/wevj10020027
APA StyleMio, T., Komatsubara, Y., Ohmi, N., Kimoto, Y., Iizuka, K., Suganuma, T., Maruyama, S., Sugiyama, T., Sato, F., Shinoda, S., Hibino, T., & Nishi, K. (2019). Auxiliary Power Supply System for Electric Power Steering (EPS) and High-Heat-Resistant Lithium-Ion Capacitor. World Electric Vehicle Journal, 10(2), 27. https://doi.org/10.3390/wevj10020027