Contrast Icing Wind Tunnel Tests between Normal Droplets and Supercooled Large Droplets
Abstract
:1. Introduction
2. Icing Wind Tunnel
3. Model
4. Test Conditions
5. Test Results
6. Conclusions
- (1)
- As the LWC of SLD is smaller than the LWC of normal droplets, the ice horn height of SLD is smaller than that of the normal droplets. At the same time, due to the splashing and rebound phenomenon of large droplets, the main ice horn of SLD ice will be further reduced, and the position of the main ice horn will move to the trailing edge, especially in the case of freezing rain.
- (2)
- After splashing and rebounding, droplets will continue to fly to the trailing edge with the airflow. Due to the influence of gravity and airflow, some droplets will hit the airfoil twice, thus forming rough elements in a far range after the main ice horn of the leading edge. This rough element is mainly caused by the splashing and rebound of droplets, rather than the runback water, so the height of the rough element does not decrease significantly with the distance away from the main ice angle, and obvious discontinuities between rough elements will occur.
Author Contributions
Funding
Conflicts of Interest
References
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Run No. | H (ft) | V (m/s) | AOA (°) | Ts (°C) | MVD (μm) | LWC (g/m3) | Time (min) | Cloud |
---|---|---|---|---|---|---|---|---|
1 | 14,000 | 95 | 4.9 | −6.6 | 20 | 0.50 | 11 min | App.C-CM |
2 | 14,000 | 95 | 0.0 | −6.6 | 20 | 0.50 | 11 min | App.C-CM |
3 | 14,000 | 95 | 4.9 | −6.6 | 20 | 0.40 | 11 min | App.O-FZDZ/L |
4 | 14,000 | 95 | 0.0 | −6.6 | 20 | 0.40 | 11 min | App.O-FZDZ/L |
5 | 14,000 | 95 | 4.9 | −6.6 | 110 | 0.25 | 11 min | App.O-FZDZ/G |
6 | 14,000 | 95 | 0.0 | −6.6 | 110 | 0.25 | 11 min | App.O-FZDZ/G |
7 | 5900 | 95 | 4.9 | −6.6 | 19 | 0.28 | 11 min | App.O-FZRA/L |
8 | 5900 | 95 | 0.0 | −6.6 | 19 | 0.28 | 11 min | App.O-FZRA/L |
9 | 5900 | 95 | 4.9 | −6.6 | 526 | 0.24 | 11 min | App.O-FZRA/G |
10 | 5900 | 95 | 0.0 | −6.6 | 526 | 0.24 | 11 min | App.O-FZRA/G |
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Han, Z.; Si, J.; Wu, D. Contrast Icing Wind Tunnel Tests between Normal Droplets and Supercooled Large Droplets. Aerospace 2022, 9, 844. https://doi.org/10.3390/aerospace9120844
Han Z, Si J, Wu D. Contrast Icing Wind Tunnel Tests between Normal Droplets and Supercooled Large Droplets. Aerospace. 2022; 9(12):844. https://doi.org/10.3390/aerospace9120844
Chicago/Turabian StyleHan, Zhirong, Jiangtao Si, and Dawei Wu. 2022. "Contrast Icing Wind Tunnel Tests between Normal Droplets and Supercooled Large Droplets" Aerospace 9, no. 12: 844. https://doi.org/10.3390/aerospace9120844
APA StyleHan, Z., Si, J., & Wu, D. (2022). Contrast Icing Wind Tunnel Tests between Normal Droplets and Supercooled Large Droplets. Aerospace, 9(12), 844. https://doi.org/10.3390/aerospace9120844