Improvement of Braking Response Performance of Fault-Tolerant Dual Winding Motor for Integrated Brake System Using Winding Switching
Abstract
:1. Introduction
- (1)
- The proposed DWM with WS considers both the overheating problem in the faulty mode and the performance degradation problem of IEB system in the normal mode.
- (2)
- In order to minimize the development cost, the DWM with WS was developed utilizing the previously developed base model.
- (3)
- The proposed DWM with WS was effectively applied to the IEB system. In addition, the scope of various other DWM-based applications can be expanded.
2. Integrated Electric Brake System
3. Dual Winding Motor
3.1. Conventional Dual Winding Motor
3.2. DWM with an Increased Stack Length
4. Proposed Dual Winding Motor with Winding Switching
4.1. Topology
4.2. Performance Comparison
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Items | Unit | Base Model |
---|---|---|
Number of slots/poles | - | 12/8 |
Outer diameter of stator | mm | 72 |
Stack length of stator | mm | 34 |
Mechanical airgap | mm | 0.5 |
Steel sheet of stator/rotor | - | 50PN470 |
Line to line resistance | mΩ | 21.5 |
Max. voltage | V | 12 |
Max. current | A | 120 |
Min. torque constant | Nm/A | 0.03 |
Max. power | W | 900 |
Items | Unit | Base Model | Conventional DWM | |
---|---|---|---|---|
Master Part | Slave Part | |||
Max. peak voltage | V | 14 | ← | ← |
Max. peak current | A | 120 | 120 (=60 + 60) | |
Resistance L–L | mΩ | 21.5 | 43 | ← |
Flux linkage | Wb | 0.0053 | ← | ← |
D-axis inductance | μH | 35.3 | 70.5 | ← |
Q-axis inductance | μH | 35.9 | 71.9 | ← |
Items | Unit | Base Model | DWM with an Increased Stack Length | |
---|---|---|---|---|
Master Part | Slave Part | |||
Max. peak voltage | V | 14 | ← | ← |
Max. peak current | A | 120 | 120 (=60 + 60) | |
Resistance L–L | mΩ | 21.5 | 73.9 | ← |
Flux linkage | Wb | 0.0053 | ← | ← |
D-axis inductance | μH | 35.3 | 141.0 | ← |
Q-axis inductance | μH | 35.9 | 144.0 | ← |
Mode | ON | OFF |
---|---|---|
Mode I (Normal mode) | S1, S2, S3 | S4, S5, S6, S7, S8, S9 |
Mode II (Faulty mode) | S4, S5, S6, S7, S8, S9 | S1, S2, S3 |
Items | Unit | Base Model | Proposed DWM with WS | |||
---|---|---|---|---|---|---|
@Normal | @Faulty | |||||
Master Part | Slave Part | Master Part | Slave Part | |||
Max. peak voltage | V | 14 | ← | ← | ← | ← |
Max. peak current | A | 120 | 120 (=60 + 60) | 60 | ||
Resistance L–L | mΩ | 21.5 | 43 | ← | 86 | ← |
Flux linkage | Wb | 0.0053 | ← | ← | 0.0106 | ← |
D-axis inductance | μH | 35.3 | 70.5 | ← | 282 | ← |
Q-axis inductance | μH | 35.9 | 71.9 | ← | 287 | ← |
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Hwang, K.-Y.; Yoon, K.-Y. Improvement of Braking Response Performance of Fault-Tolerant Dual Winding Motor for Integrated Brake System Using Winding Switching. Appl. Sci. 2023, 13, 3442. https://doi.org/10.3390/app13063442
Hwang K-Y, Yoon K-Y. Improvement of Braking Response Performance of Fault-Tolerant Dual Winding Motor for Integrated Brake System Using Winding Switching. Applied Sciences. 2023; 13(6):3442. https://doi.org/10.3390/app13063442
Chicago/Turabian StyleHwang, Kyu-Yun, and Keun-Young Yoon. 2023. "Improvement of Braking Response Performance of Fault-Tolerant Dual Winding Motor for Integrated Brake System Using Winding Switching" Applied Sciences 13, no. 6: 3442. https://doi.org/10.3390/app13063442
APA StyleHwang, K.-Y., & Yoon, K.-Y. (2023). Improvement of Braking Response Performance of Fault-Tolerant Dual Winding Motor for Integrated Brake System Using Winding Switching. Applied Sciences, 13(6), 3442. https://doi.org/10.3390/app13063442