Unsteady Aerodynamic Characteristics Simulations of Rotor Airfoil under Oscillating Freestream Velocity
Abstract
:1. Introduction
2. Aerodynamic Environment of Helicopter Rotor
3. Numerical Simulation Method
4. Analyses and Discussions
4.1. The Dynamic Stall Characteristics of Airfoil Under 3D Conditions
4.2. Aerodynamic Loads of Airfoil under Coupled Condition
4.2.1. Case 1
4.2.2. Case 2
4.3. Vortex Characters of Dynamic Stall under the OFV Condition
4.3.1. Circulation of Flowfield
4.3.2. Dissipation Process of Separated Vortex
5. Conclusions
- (1).
- By comparing the simulated result, it is indicated that the dynamic stall characteristics of the OA209 airfoil would be enhanced with increased oscillating velocity when the maximum negative pressure exceeds the critical value (−1.08). On the contrary, it would be inhibited when the maximum negative pressure is less than this critical value.
- (2).
- By comparing the dissipation processes of vortex circulation at a fixed integral window, it indicates that the dissipation of LEV presents as exponent characteristics under different oscillating velocities. Meanwhile, the dissipation rate of LEV is not sensitive to different oscillating velocities. However, the dissipation rate of TEV would be reduced by increasing the oscillating velocity.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
sound velocity of far flowfield, normalized by | |
AoA | angle of attack |
airfoil chord length, dimensionless standard | |
drag coefficient, normalized by | |
lift coefficient, normalized by | |
pitch moment, normalized by | |
pressure coefficient, normalized by | |
pressure coefficient, normalized by | |
k | reduced frequency |
LEV | leading edge vortex |
Mach number | |
basic Mach number | |
oscillating Mach number | |
P | pressure of airflow, normalized by |
R | radius of rotor, normalized by c |
t | time, dimensionless standard |
TEV | trailing edge vortex |
basic velocity | |
relative velocity of far flowfield, dimensionless standard | |
angle of attack, degree | |
mean angle of attack, degree | |
amplitude of pitch oscillation, degree | |
normalized oscillating velocity | |
airflow density of far flowfield; dimensionless standard | |
angular velocity, rad/s | |
vorticity, normalized by | |
vortex circulation, normalized by | |
original vortex circulation, normalized by | |
dissipation coefficient |
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Blade Section | k | ||
---|---|---|---|
0.6 R | 0.36 | 0.5 | 0.0556 |
0.7 R | 0.42 | 0.43 | 0.0476 |
LEV | 14.47° | 14.07° | 12.84° |
TEV | 15.25° | 14.87° | 13.66° |
Loads | ||||||
---|---|---|---|---|---|---|
Peak | Increment | Peak | Increment | Peak | Increment | |
Cl | 2.06 | 0.0 | 2.21 | 7.3% | 2.38 | 15.5% |
Cd | 0.67 | 0.0 | 0.75 | 11.9% | 0.81 | 20.9% |
Cm | −0.54 | 0.0 | −0.61 | 13.0% | −0.82 | 51.9% |
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Wang, Q.; Zhao, Q. Unsteady Aerodynamic Characteristics Simulations of Rotor Airfoil under Oscillating Freestream Velocity. Appl. Sci. 2020, 10, 1822. https://doi.org/10.3390/app10051822
Wang Q, Zhao Q. Unsteady Aerodynamic Characteristics Simulations of Rotor Airfoil under Oscillating Freestream Velocity. Applied Sciences. 2020; 10(5):1822. https://doi.org/10.3390/app10051822
Chicago/Turabian StyleWang, Qing, and Qijun Zhao. 2020. "Unsteady Aerodynamic Characteristics Simulations of Rotor Airfoil under Oscillating Freestream Velocity" Applied Sciences 10, no. 5: 1822. https://doi.org/10.3390/app10051822
APA StyleWang, Q., & Zhao, Q. (2020). Unsteady Aerodynamic Characteristics Simulations of Rotor Airfoil under Oscillating Freestream Velocity. Applied Sciences, 10(5), 1822. https://doi.org/10.3390/app10051822