Sliding Mode Observer-Based Current Sensor Fault Reconstruction and Unknown Load Disturbance Estimation for PMSM Driven System
Abstract
:1. Introduction
2. System Description
3. Sensors’ Fault Reconstruction and Unknown Disturbance Estimation Using Sliding Mode Observers
3.1. Sliding Mode Observers Design
- 1.
- ;
- 2.
- , ;
- 3.
- , .
3.2. Lyapunov Stability Analysis
3.3. Sensor Fault Reconstruction and Unknown Load Disturbance Estimation
4. Example: Reconstruct Current Sensor Faults and Estimate the Unknown Load for PMSM
5. Simulations and Experiments
5.1. Simulation Results
5.1.1. Case 1: Incipient Fault of Current Sensor
5.1.2. Case 2: Intermittent Fault of Current Sensor
5.1.3. Case 3: High Frequency and Low Frequency Fault of Current Sensor
5.2. Experiments Results
5.2.1. Case 1: Incipient Faults of Current Sensor
5.2.2. Case 2: Intermittent Fault of Current Sensor
5.2.3. Case 3: High Frequency and Low Frequency Fault of Current Sensor
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameters | Unit | Values |
---|---|---|
stator resistance () | 2.875 | |
number of pole pairs () | pairs | 4 |
q-axis inductance () | H | 0.0075 |
d-axis inductance () | H | 0.0025 |
rotor PM flux () | Wb | 0.175 |
rotational inertia (J) | kg·m | 0.0008 |
viscous friction coefficient (B) | Nm·s/rad | 0.0001 |
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Zhao, K.; Li, P.; Zhang, C.; Li, X.; He, J.; Lin, Y. Sliding Mode Observer-Based Current Sensor Fault Reconstruction and Unknown Load Disturbance Estimation for PMSM Driven System. Sensors 2017, 17, 2833. https://doi.org/10.3390/s17122833
Zhao K, Li P, Zhang C, Li X, He J, Lin Y. Sliding Mode Observer-Based Current Sensor Fault Reconstruction and Unknown Load Disturbance Estimation for PMSM Driven System. Sensors. 2017; 17(12):2833. https://doi.org/10.3390/s17122833
Chicago/Turabian StyleZhao, Kaihui, Peng Li, Changfan Zhang, Xiangfei Li, Jing He, and Yuliang Lin. 2017. "Sliding Mode Observer-Based Current Sensor Fault Reconstruction and Unknown Load Disturbance Estimation for PMSM Driven System" Sensors 17, no. 12: 2833. https://doi.org/10.3390/s17122833