Open-Loop Simulation of Active Vibration Control of Electrically Controlled Rotor
Abstract
:1. Introduction
2. Aeroelastic Model of the ECR
2.1. Dynamic Modeling of the Blade
2.2. Aerodynamic Modeling of the Blade
2.3. Aeroelastic Equation of ECR
2.4. Higher-Order Harmonic Flap Control Variables
3. Results and Analysis
3.1. Example ECR and Calculation Condition
3.2. Effect of Higher-Order Harmonic Flap Control on the Vibration Load of ECR
3.2.1. Amplitude Sweep of Higher-Order Harmonic Flap Control
3.2.2. Phase Sweep of Higher-Order Harmonic Flap Control
3.3. Effect of Higher-Order Harmonic Flap Control on the Main Control of ECR
3.3.1. Amplitude Sweep of Higher-Order Harmonic Flap Control
3.3.2. Phase Sweep of Higher-Order Harmonic Flap Control
4. Conclusions
- (1)
- The 2Ω higher-order flap deflection has the most significant control effect on the 2Ω vertical vibration load of the hub. The control patterns of the six vibration components of the hub are similar, except for that of the lateral moment vibration of the hub. In the wind tunnel trim state investigated in this study, the 2Ω vibration load of the hub could achieve the best control effect when the 2Ω higher-order deflection of the trailing edge flaps had a phase of −50° and an amplitude of 0.6°.
- (2)
- The higher-order flap deflection is coupled with the main control of the ECR and destroys the original equilibrium state of the ECR. Therefore, it is necessary to perform coupling trim through the main control/active vibration coupling control to improve the accuracy of the primary control and active vibration control of the ECR.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Parameter (Unit) | Value |
---|---|
Blade pre-index angle (°) | 7.63 |
Longitudinal cyclic pitch of flaps (°) | −7.9 |
Lateral cyclic pitch of flaps (°) | 1.8 |
Number of blades | 2 |
Flap diameter (m) | 2.8 |
Blade chord length (m) | 0.178 |
Rotor speed (rpm) | 700 |
Flap midpoint spanwise position (m) | 1.05 |
Flap chord length (m) | 0.05 |
Flap span (m) | 0.15 |
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Li, K.; Su, T.; Ma, J.; Zhang, Z. Open-Loop Simulation of Active Vibration Control of Electrically Controlled Rotor. Machines 2023, 11, 237. https://doi.org/10.3390/machines11020237
Li K, Su T, Ma J, Zhang Z. Open-Loop Simulation of Active Vibration Control of Electrically Controlled Rotor. Machines. 2023; 11(2):237. https://doi.org/10.3390/machines11020237
Chicago/Turabian StyleLi, Kewei, Taoyong Su, Jinchao Ma, and Zhaozhong Zhang. 2023. "Open-Loop Simulation of Active Vibration Control of Electrically Controlled Rotor" Machines 11, no. 2: 237. https://doi.org/10.3390/machines11020237
APA StyleLi, K., Su, T., Ma, J., & Zhang, Z. (2023). Open-Loop Simulation of Active Vibration Control of Electrically Controlled Rotor. Machines, 11(2), 237. https://doi.org/10.3390/machines11020237