Effect of Rotor Spacing and Duct Diffusion Angle on the Aerodynamic Performances of a Counter-Rotating Ducted Fan in Hover Mode
Abstract
:1. Introduction
2. Numerical Model
2.1. Model Description
2.2. Governing Equation
2.3. Numerical Method
2.4. Grid Independence Test and Validation
3. Results and Discussion
3.1. Effect of Relative Angle between Front and Rear Rotor
3.2. Aerodynamic Performance Analysis of Counter-Rotating Ducted Fan
4. Conclusions
- The effect of the relative angle between the front and the rear rotor, due to the usage of the frozen rotor model, is negligible since the variation of thrust for the different relative angles is extremely low.
- Comparison of the aerodynamic performance parameters for different rotor spacings revealed that the thrust, thrust coefficient, and FOM slightly increases with an increasing rotor spacing up to 200 mm, regardless of the duct diffusion angle. However, the thrust, thrust coefficient, and FOM start to reduce on further increases in the rotor spacing. Conversely, the power coefficient is at a minimum when the rotor spacing is 120 mm.
- The maximum thrust coefficient is observed when the rotor spacing is 200 mm, and the thrust of the 200 mm rotor spacing increases by about 1.3–1.5% compared with the 120 mm rotor spacing.
- The duct diffusion angle of 0° generates about 9% higher thrust and increases the FOM by 6.7%, compared with the 6° duct diffusion angle.
- However, the increase in thrust also increases the power coefficient, which results in increased power consumption. The minimum power coefficient is attained for a 6° diffusion angle.
- The duct diffusion angle is highly effective in improving the thrust and FOM of the counter-rotating ducted fan, rather than the rotor spacing.
5. Future Work
Author Contributions
Funding
Conflicts of Interest
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Parameter | Value |
---|---|
Duct diameter, D | 559.0 mm |
Rotor diameter, Dr | 558.8 mm |
Tip clearance, t | 1.71% |
Hub diameter, Dh | 127 mm |
Length of the duct diffuser, Ld | 117.85 mm |
Duct Diffusion Angle [°] | Rotor Spacing [mm] | Thrust [N] | ||||
---|---|---|---|---|---|---|
Rotating Speed [rpm] | ||||||
6 | 120 | 49.49 | 71.30 | 97.09 | 126.86 | 160.62 |
160 | 50.18 | 72.27 | 98.40 | 128.58 | 162.72 | |
200 | 50.38 | 72.56 | 98.84 | 129.15 | 163.52 | |
240 | 50.22 | 72.34 | 98.54 | 128.75 | 162.99 | |
0 | 120 | 53.96 | 77.76 | 105.90 | 138.38 | 175.21 |
160 | 54.78 | 78.93 | 107.49 | 140.46 | 177.80 | |
200 | 54.95 | 79.17 | 107.84 | 140.89 | 178.36 | |
240 | 54.81 | 78.98 | 107.58 | 140.55 | 177.91 | |
Duct Diffusion Angle [°] | Rotor Spacing [mm] | Thrust Coefficient | ||||
Rotating Speed [rpm] | ||||||
6 | 120 | 0.017335 | 0.017343 | 0.017350 | 0.017357 | 0.017364 |
160 | 0.017576 | 0.017579 | 0.017584 | 0.017592 | 0.017591 | |
200 | 0.017646 | 0.017650 | 0.017664 | 0.017671 | 0.017678 | |
240 | 0.017589 | 0.017595 | 0.017609 | 0.017616 | 0.017620 | |
0 | 120 | 0.018902 | 0.018914 | 0.018924 | 0.018933 | 0.018942 |
160 | 0.019193 | 0.019199 | 0.019208 | 0.019218 | 0.019221 | |
200 | 0.019247 | 0.019256 | 0.019272 | 0.019277 | 0.019281 | |
240 | 0.019199 | 0.019212 | 0.019226 | 0.019231 | 0.019234 | |
Duct Diffusion Angle [°] | Rotor Spacing [mm] | Power Coefficient | ||||
Rotating Speed [rpm] | ||||||
6 | 120 | 0.003112 | 0.003103 | 0.003096 | 0.003090 | 0.003085 |
160 | 0.003152 | 0.003143 | 0.003135 | 0.003130 | 0.003125 | |
200 | 0.003160 | 0.003151 | 0.003143 | 0.003138 | 0.003133 | |
240 | 0.003148 | 0.003139 | 0.003132 | 0.003126 | 0.003122 | |
0 | 120 | 0.003327 | 0.003318 | 0.003311 | 0.003305 | 0.003301 |
160 | 0.003371 | 0.003361 | 0.003354 | 0.003349 | 0.003344 | |
200 | 0.003372 | 0.003363 | 0.003356 | 0.003351 | 0.003347 | |
240 | 0.003362 | 0.003353 | 0.003347 | 0.003341 | 0.003337 |
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Kim, W.-Y.; Senguttuvan, S.; Kim, S.-M. Effect of Rotor Spacing and Duct Diffusion Angle on the Aerodynamic Performances of a Counter-Rotating Ducted Fan in Hover Mode. Processes 2020, 8, 1338. https://doi.org/10.3390/pr8111338
Kim W-Y, Senguttuvan S, Kim S-M. Effect of Rotor Spacing and Duct Diffusion Angle on the Aerodynamic Performances of a Counter-Rotating Ducted Fan in Hover Mode. Processes. 2020; 8(11):1338. https://doi.org/10.3390/pr8111338
Chicago/Turabian StyleKim, Woo-Yul, Santhosh Senguttuvan, and Sung-Min Kim. 2020. "Effect of Rotor Spacing and Duct Diffusion Angle on the Aerodynamic Performances of a Counter-Rotating Ducted Fan in Hover Mode" Processes 8, no. 11: 1338. https://doi.org/10.3390/pr8111338
APA StyleKim, W. -Y., Senguttuvan, S., & Kim, S. -M. (2020). Effect of Rotor Spacing and Duct Diffusion Angle on the Aerodynamic Performances of a Counter-Rotating Ducted Fan in Hover Mode. Processes, 8(11), 1338. https://doi.org/10.3390/pr8111338