Investigation on the Mechanism of Heat Load Reduction for the Thermal Anti-Icing System
Abstract
:1. Introduction
2. Numerical Simulation and Optimization Method
2.1. Modeling of the Anti-Icing Process
2.2. Optimization Method of the Anti-Icing Heat Load
3. Experimental Setup and Test Model
4. Results and Discussions
4.1. Validation of the Numerical Simulation
4.1.1. Convective Heat Transfer Coefficient
4.1.2. Water Droplet Impinging Limit
4.1.3. Surface Temperature
4.2. The Optimal Heating Power Distribution
4.3. Mechanism of the Anti-Icing Heat Load Reduction
4.3.1. Heating Range
4.3.2. Surface Temperature
4.3.3. Convective Heat Transfer Coefficient
5. Conclusions
- (1)
- The reduction in the anti-icing heat load is the decrease in the convective heat load. As the thermal anti-icing system operating in the evaporative mode, the evaporative heat load keeps nearly constant. The convective heat load can be varied with the surface temperature distribution which is influenced by the heating power distribution. Thus, there must be an optimal heating power distribution that can reduce the convective heat load as well as the anti-icing heat load.
- (2)
- The optimal heating power density obtained by the numerical optimization and the experiment has such characteristics that are low at the leading edge, high at the water droplet impinging limit and zero at the end of the protected area. These characteristics are mainly influenced by the heating range, the surface temperature and the convective heat transfer coefficient. In the evaporative mode, decreasing the heating range outside the protected area can reduce the anti-icing heat load effectively. As the heating range is decreased to the impinging limit, the anti-icing heat load has the minimum value. Due to the different impacts of the surface temperature on the evaporative and convective heat fluxes, it is better to evaporate the runback water in the high-temperature region, which can lead to a lesser additional convective heat load. The surface temperature distribution is affected by the convective heat transfer coefficient distribution of which the trend is high at the leading edge and decreases chordwise around the airfoil surface. As a consequence, the optimal heating power distribution has the opposite trend with the convective heat transfer coefficient distribution.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Heating Zones | Start (mm) | End (mm) | Heating Area (mm2) |
---|---|---|---|
1 | 0 | 2.5 | 50 |
2 | 2.5 | 7.5 | 100 |
3 | 7.5 | 12.5 | 100 |
4 | 12.5 | 17.5 | 100 |
5 | 17.5 | 22.5 | 100 |
6 | 22.5 | 27.5 | 100 |
7 | 27.5 | 32.5 | 100 |
8 | 32.5 | 37.5 | 100 |
Material | Density, kg/m3 | Specific Heat, kJ/(kg·K) | Conductivity, W/(m·K) | Thickness, mm |
---|---|---|---|---|
Stainless Steel | 7930 | 0.5 | 16.3 | 0.10 |
Polyimide | 1400 | 1.1 | 0.2 | 0.06 |
Nickel-Chromium Alloys | 8400 | 0.46 | 12.2 | 0.03 |
PMMA(Poly Methyl Methacrylatemethacrylic Acid) | 1190 | 1.47 | 0.19 | 4.00 |
Polyurethane Foam | 3500 | 2.48 | 0.024 | - |
Case | u∞, m/s | T∞, K | LWC, g/m3 | MVD, μm |
---|---|---|---|---|
1 | 30 | 263.15 | 0.27 | 20 |
2 | 40 | 263.15 | 0.27 | 20 |
3 | 50 | 263.15 | 0.27 | 20 |
Case | Heating Film Power Density (kW/m2) | |||||||
---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | |
1 | 19.9 | 17.2 | 15.4 | 14.9 | 13.1 | 7.2 | 7.3 | 7.2 |
2 | 24.8 | 21.0 | 18.4 | 15.1 | 9.0 | 8.8 | 9.0 | 8.9 |
3 | 30.3 | 27.1 | 19.6 | 18.6 | 17.9 | 10.7 | 10.9 | 10.8 |
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Li, R.; Zhu, G.; Zhang, D. Investigation on the Mechanism of Heat Load Reduction for the Thermal Anti-Icing System. Energies 2020, 13, 5911. https://doi.org/10.3390/en13225911
Li R, Zhu G, Zhang D. Investigation on the Mechanism of Heat Load Reduction for the Thermal Anti-Icing System. Energies. 2020; 13(22):5911. https://doi.org/10.3390/en13225911
Chicago/Turabian StyleLi, Rongjia, Guangya Zhu, and Dalin Zhang. 2020. "Investigation on the Mechanism of Heat Load Reduction for the Thermal Anti-Icing System" Energies 13, no. 22: 5911. https://doi.org/10.3390/en13225911
APA StyleLi, R., Zhu, G., & Zhang, D. (2020). Investigation on the Mechanism of Heat Load Reduction for the Thermal Anti-Icing System. Energies, 13(22), 5911. https://doi.org/10.3390/en13225911