Structure Design and Optimization of the Radial Magnetic Bearing
Abstract
:1. Introduction
2. RMB Structure Topology
2.1. Four-Pole RMBs
2.2. Three-Pole RMBs and Six-Pole RMBs
2.3. Eight-Pole RMBs and Twelve-Pole RMBs
2.4. Equivalent Magnetic Circuit Analysis
3. Structural Design and Simulation
3.1. The 8-Pole RMBs Structure Design Process
- 1.
- Air gap and related parameters;
- 2.
- Magnetic pole area and width;
- 3.
- Stator pole parameters and rotor dimensions;
- 4.
- Coil parameters;
- 5.
- Design process and 3D model;
3.2. Magnetic Field Analysis and Verification
4. Structural Optimization
5. Conclusions
- The 3-pole RMB is a strongly coupled nonlinear system, and its control is difficult. In contrast, an optimized 6-pole magnetic bearing has higher bearing capacity and stability.
- A commonly used 8-pole magnetic bearing performs better than a 4-pole magnetic bearing. However, the magnetic pole produces magnetic saturation quickly, and optimizing the structural parameters can be used to reduce the impact.
- The 12-pole E-type RMB is superior to the standard 8-pole C-type RMB in carrying capacity, stability, and control performance, but it has high energy consumption and few applications.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
The outer diameter of the stator yoke (mm) | 90 |
The inner diameter of the stator yoke (mm) | 68 |
Stator thickness (mm) | 30 |
Pole width (mm) | 9 |
Air gap (mm) | 0.5 |
Magnetic pole area (mm2) | 286 |
The outer diameter of the rotor (mm) | 30 |
The inner diameter of the rotor (mm) | 15 |
Turn ratio (At) | 240 |
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Li, Q.; Hu, Y.; Wu, H. Structure Design and Optimization of the Radial Magnetic Bearing. Actuators 2023, 12, 27. https://doi.org/10.3390/act12010027
Li Q, Hu Y, Wu H. Structure Design and Optimization of the Radial Magnetic Bearing. Actuators. 2023; 12(1):27. https://doi.org/10.3390/act12010027
Chicago/Turabian StyleLi, Qiang, Yefa Hu, and Huachun Wu. 2023. "Structure Design and Optimization of the Radial Magnetic Bearing" Actuators 12, no. 1: 27. https://doi.org/10.3390/act12010027
APA StyleLi, Q., Hu, Y., & Wu, H. (2023). Structure Design and Optimization of the Radial Magnetic Bearing. Actuators, 12(1), 27. https://doi.org/10.3390/act12010027