Optimization-Based Control for a Large-Scale Electrical Vertical Take-Off and Landing during an Aircraft’s Vertical Take-Off and Landing Phase with Variable-Pitch Propellers
Abstract
:1. Introduction
- A typical tail-sitter eVTOL platform with distributed variable-pitch propellers is designed, which is able to achieve excellent flying performances during both the VTOL and cruise phase. Simulation data of the platform are then utilized as the objective for the designed controller with nonlinear flight dynamics. In addition, an actuator system consisting of four variable-pitch propellers is designed and its thrust and torque models are accurately analyzed.
- A specific optimization-based control allocation module is achieved to fully excavate the control potential of the variable-pitch propellers with four extra control variables, and the control allocation solution can be generated with low-dimensional quadratic programming solvers.
- This module is then mounted in a complete control system including position and attitude controllers to track the given trajectory. Constraints such as power consumption and the maximum rate of the control variables are considered to maintain the stability of the system.
- A series of simulation experiments are accomplished in order to validate the effectiveness of the designed controller under different circumstances, such as set-point arrival and aggressive trajectory tracking under measurement noise and external disturbances.
2. System Design and Flight Dynamics Analysis
2.1. Platform Introduction and Frame Description
2.2. Variable-Pitch Propeller Design and Analysis
2.2.1. Propeller System Design
2.2.2. Efficiency Analysis
2.2.3. Propulsion System Model Analysis
2.3. Aircraft Dynamics and Differential Flatness Property
3. Control Law Design
3.1. Control System Overview
3.2. Penalty Function Construction
3.2.1. Control Inputs’ Penalty
3.2.2. Control Variables’ Shifting Penalty
3.2.3. Energy Consumption Penalty
3.3. Optimization-Based Control Allocation Algorithm
4. Simulation Experiments
4.1. Set-Point Control
4.2. Aggressive Trajectory Tracking
4.3. Flying under Measurement Noise and External Disturbances
4.4. Numerical Analysis
4.4.1. Set-Point Control
4.4.2. Aggressive Trajectory Control
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Parameter | Value | Notation |
---|---|---|
g | gravitational acceleration | |
I | moment of inertia | |
1.482 | motor parameters | |
13.23 | ||
0.5933 | ||
optimization coefficients | ||
50,000 | ||
50,000 | ||
L | [m] | motor installation position |
30.9 [deg] | motor installation angle | |
m | 101.8 [kg] | eVTOL mass |
10 [kW] | maximum power | |
4500 [rpm] | maximum rotation speed | |
800 [rpm/s] | maximum rotation acceleration | |
25 [deg] | maximum pitch angle | |
−15 [deg] | minimum pitch angle | |
30 [deg/s] | maximum pitch velocity |
Parameter | Observation Error Amplitude |
---|---|
position | ±1.5 [m] |
attitude | ±20 [deg] |
velocity | ±0.4 [m/s] |
angular velocity | ±0.5 [rad/s] |
Index | Variable-Pitch Propellers | Regular Propellers with Virtual Pitch |
---|---|---|
maximum power [kW] | 6.3987 | 6.5036 |
stable power [kW] | 3.7985 | 4.5021 |
average power [kW] | 3.8609 | 4.5358 |
Situation | AVGMSE | Maximum Power [kW] | Average Power [kW] |
---|---|---|---|
Aggressive trajectory tracking | 10 | 4.0294 | |
Aggressive trajectory tracking with noise | 10 | 4.5643 | |
Aggressive trajectory tracking with noise and disturbances | 10 | 5.0322 |
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Duan, L.; He, Y.; Fan, L.; Qiu, W.; Wen, G.; Xu, Y. Optimization-Based Control for a Large-Scale Electrical Vertical Take-Off and Landing during an Aircraft’s Vertical Take-Off and Landing Phase with Variable-Pitch Propellers. Drones 2024, 8, 121. https://doi.org/10.3390/drones8040121
Duan L, He Y, Fan L, Qiu W, Wen G, Xu Y. Optimization-Based Control for a Large-Scale Electrical Vertical Take-Off and Landing during an Aircraft’s Vertical Take-Off and Landing Phase with Variable-Pitch Propellers. Drones. 2024; 8(4):121. https://doi.org/10.3390/drones8040121
Chicago/Turabian StyleDuan, Luyuhang, Yunhan He, Li Fan, Wei Qiu, Guangwei Wen, and Yun Xu. 2024. "Optimization-Based Control for a Large-Scale Electrical Vertical Take-Off and Landing during an Aircraft’s Vertical Take-Off and Landing Phase with Variable-Pitch Propellers" Drones 8, no. 4: 121. https://doi.org/10.3390/drones8040121
APA StyleDuan, L., He, Y., Fan, L., Qiu, W., Wen, G., & Xu, Y. (2024). Optimization-Based Control for a Large-Scale Electrical Vertical Take-Off and Landing during an Aircraft’s Vertical Take-Off and Landing Phase with Variable-Pitch Propellers. Drones, 8(4), 121. https://doi.org/10.3390/drones8040121