Aerodynamic Interactions of Wind Lenses at Close Proximities
Abstract
:1. Introduction
1.1. Examination of Multirotor Work
1.2. Prior Work
1.3. Aerodynamic Interactions between Bluff Bodies
2. Experimental Setup
2.1. Wind Tunnel
2.2. Wind Lens Models
2.3. PIV Setup
2.4. Hotwire Anemometry Testing
3. Results
3.1. PIV Results
3.1.1. U Velocity Results
3.1.2. Mean Vorticity Results
3.1.3. Two-Point Correlations
3.1.4. Modal Analysis
3.2. Hotwire Anemometry Results
4. Conclusions
- The two wakes sense the presence of each other such that the peak shedding frequency for one of the wakes is lowered when compared to the other. This causes changes in the mean flow parameters such as the mean velocity and vorticity. The relative energy in the POD modes starts to decrease.
- Reducing the spacing between the lenses further results in the onset of wake merging that causes significant changes in the vortex shedding frequency, and the size of the coherent structures in the wake starts to increase. This results in that wake having a higher momentum deficit and a higher turbulence intensity.
- The choice of the direction of the skewness in the wake is hypothesized to be due to the extent of cancellation on the inboard vorticity magnitude from the two wakes. If the vorticity is perfectly canceled between the wakes, little to no wake skewness is observed. The direction of skewness of the merged wake causes one of the turbines in the lens turbine pair to outperform the other, as seen in the wind tunnel results.
- When the lenses are brought even closer, the high-frequency shedding disappears, and the lower frequency shedding starts to dominate. This results in a longer resting time of the vortex behind the lenses that results in a more stable low-pressure zone, as seen in two-point correlation and modal analysis, which draws in air more consistently at higher speeds than when the lenses are spaced at greater distances, resulting in higher power production.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
PIV | Particle image velocimetry |
POD | Proper orthogonal decomposition |
SVD | Singular value decomposition |
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Lens Profile | /c | h/c | /c | /c | /c | ||
---|---|---|---|---|---|---|---|
Profile 1 | 0.574 | 0.250 | 1.705 | 0.426 | 1.824 | 0.896 | 0.664 |
Profile 2 | 0.533 | 0.547 | 1.539 | 0.467 | 1.702 | 1.056 | 1.055 |
Profile 3 | 0.523 | 0.436 | 1.509 | 0.477 | 1.669 | 1.003 | 0.876 |
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Gunasekaran, S.; Peyton, M.; Novotny, N. Aerodynamic Interactions of Wind Lenses at Close Proximities. Energies 2022, 15, 4622. https://doi.org/10.3390/en15134622
Gunasekaran S, Peyton M, Novotny N. Aerodynamic Interactions of Wind Lenses at Close Proximities. Energies. 2022; 15(13):4622. https://doi.org/10.3390/en15134622
Chicago/Turabian StyleGunasekaran, Sidaard, Madison Peyton, and Neal Novotny. 2022. "Aerodynamic Interactions of Wind Lenses at Close Proximities" Energies 15, no. 13: 4622. https://doi.org/10.3390/en15134622
APA StyleGunasekaran, S., Peyton, M., & Novotny, N. (2022). Aerodynamic Interactions of Wind Lenses at Close Proximities. Energies, 15(13), 4622. https://doi.org/10.3390/en15134622