Design and Analysis of 5-DOF Compact Electromagnetic Levitation Actuator for Lens Control of Laser Cutting Machine
Abstract
:1. Introduction
2. 5-DOF Magnetic Levitation Driver
2.1. Magnetic Levitation Driver Function
2.2. 5-DOF Magnetic Levitation Actuator Principle of Operation
3. Analysis of Magnetic Field Characteristics of Magnetic Drive Platform
3.1. Axial Single Electromagnetic Force Analysis
3.2. Equilibrium Position Electromagnetic Force Analysis
3.3. Magnetic Field Analysis
4. Mathematical Modeling of a 5-DOF Maglev Actuator
4.1. Sensor Coordinate Transformation for Magnetic Levitation Actuators
4.2. Modeling of Magnetic Levitation Drive Systems
5. Levitation Experiments with a 5-DOF Magnetic Levitation Actuator
5.1. Centralized Control Strategy for Magnetic Levitation Drives
5.2. Experimental System Composition
5.3. Magnetic Levitation Drive Experiment
6. Discussion and Recommendations
7. Conclusions
- The five-degree-of-freedom magnetic levitation actuator exhibits a positive correlation between the electromagnetic force and the control current within the range of 0 to 1.5 A. The maximum output electromagnetic force reaches 6.1 N. Specifically, at a control current of 0.9 A, the electromagnetic force measures 3.64 N, ensuring the stability of the levitation platform.
- When the suspended platform was in the equilibrium position, the different bias currents ranging from 0.5 A to 1.4 A were applied to observe the change in electromagnetic force. Similarly, we set the equilibrium position at 0 mm and selected four sets of control currents to observe the change in electromagnetic force as the displacement varied from 0.1 mm to 0.4 mm. It was found that the slopes of the electromagnetic force curves remained relatively consistent. However, when the displacement exceeded 0.4 mm, the slope increased significantly, indicating the onset of electromagnetic force nonlinearity. These results suggest that the electromagnetic force exhibits a strong linear relationship within the equilibrium position range.
- In the experiments, step signals were applied to the , , , , and degrees of freedom. The experimental results indicate that the axial range is 0.05 mm, the radial range is 0.1 mm, and the range for the and degrees of freedom is 0.001 rad. Furthermore, sinusoidal signals were applied to the radial actuator, and the tracking characteristics were also analyzed, achieving the desired results in both cases.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter Name | Symbol | Value |
---|---|---|
number of turns | 100 | |
Balance air gap | (mm) | 1 |
permeability in vacuum | 4π × 10−7 | |
Air gap cross-sectional area | (mm2) | 60 |
Suspended platform inner diameter | (mm) | 67 |
Suspended platform outer diameter | (mm) | 114 |
Electromagnet cross section width | (mm) | 10 |
Electromagnet cross section length | (mm) | 6 |
Coupling collar inner diameter | (mm) | 126 |
Parameter Name | Symbol | Value |
---|---|---|
Quality | (kg) | 0.3 |
Moment of inertia about the -axis | (kg·m2) | 9.7 × 10−4 |
Moment of inertia about the -axis | (kg·m2) | 9.7 × 10−4 |
Sensor distance | (mm) | 42.5 |
Axial current coefficient | (N/A) | 1.13 |
Axial displacement coefficient | (N/m) | 1.7 × 103 |
Radial current coefficient | (N/A) | 1.13 |
Radial displacement coefficient | (N/m) | 1.7 × 103 |
Damping coefficient in Z direction | (N/(m/s)) | 0.3 |
Damping coefficient in α direction | (N/(m/s)) | 9.7 × 10−4 |
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Zhao, C.; Zhang, Q.; Pei, W.; Jin, J.; Sun, F.; Zhang, H.; Zhou, R.; Liu, D.; Xu, F.; Zhang, X.; et al. Design and Analysis of 5-DOF Compact Electromagnetic Levitation Actuator for Lens Control of Laser Cutting Machine. Micromachines 2024, 15, 641. https://doi.org/10.3390/mi15050641
Zhao C, Zhang Q, Pei W, Jin J, Sun F, Zhang H, Zhou R, Liu D, Xu F, Zhang X, et al. Design and Analysis of 5-DOF Compact Electromagnetic Levitation Actuator for Lens Control of Laser Cutting Machine. Micromachines. 2024; 15(5):641. https://doi.org/10.3390/mi15050641
Chicago/Turabian StyleZhao, Chuan, Qinwei Zhang, Wenzhe Pei, Junjie Jin, Feng Sun, Hongkui Zhang, Ran Zhou, Dongning Liu, Fangchao Xu, Xiaoyou Zhang, and et al. 2024. "Design and Analysis of 5-DOF Compact Electromagnetic Levitation Actuator for Lens Control of Laser Cutting Machine" Micromachines 15, no. 5: 641. https://doi.org/10.3390/mi15050641
APA StyleZhao, C., Zhang, Q., Pei, W., Jin, J., Sun, F., Zhang, H., Zhou, R., Liu, D., Xu, F., Zhang, X., & Yang, L. (2024). Design and Analysis of 5-DOF Compact Electromagnetic Levitation Actuator for Lens Control of Laser Cutting Machine. Micromachines, 15(5), 641. https://doi.org/10.3390/mi15050641