Experimental Optimization of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole
Abstract
:1. Introduction
2. Measurement Theory and Test Apparatus
2.1. PSP (Pressure Sensitive Paint) Technique
2.2. Geometry of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole
2.3. Test Facility
3. Shape Optimization
3.1. Design of Experiment
3.2. Kriging Model
4. Results and Discussion
4.1. Distributions of Film Cooling Effectivenes
4.2. Effects of Asymmetric Lateral Expansion Angle
4.3. Effects of the Windward Lateral Expansion Angle
4.4. Effects of the Leeward Lateral Expansion Angle
4.5. Effects of the Compound Angle
4.6. Main Effects Analysis
4.7. Overall Averaged FCE
4.8. Result of Optimization
5. Conclusions
- (1)
- The overall FCE of mirror-image shape holes with the same compound angle showed different trends depending on hole shape.
- (2)
- The main effects indicated that the FCE increased as the windward and leeward lateral expansion angles increased, but the effects of the compound angles were not consistent.
- (3)
- The overall FCE was higher at the higher density ratio (DR = 2.0) and the larger AR improved film cooling performance.
- (4)
- The optimal hole shape at each blowing ratio indicated that the compound angle decreased, and the hole exit area widened as the blowing ratio increased.
- (5)
- Under the conditions of density ratio of 2.0 and blowing ratio of 2.0, the overall FCE of the optimized compound angled asymmetric fan shaped hole outperformed both the experimentally optimized laidback fan shaped hole and the CFD optimized laidback fan shaped hole in previous studies by 1.3% and 8%, respectively.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
English symbols | |
AR | area ratio of outlet to inlet [Aoutlet/Ainlet] |
D | hole diameter [mm] |
DR | density ratio |
I | emission intensity |
L | hole length [mm] |
M | blowing ratio |
P | pressure |
Greek symbols | |
α | injection angle [°] |
β | forward expansion angle [°] |
γ | lateral expansion angle [°] |
θ | compound angle [°] |
η | film cooling effectiveness |
ω | molecular weight |
Subscripts | |
air | air injection condition |
blk | black condition |
fg | foreign gas injection condition |
fwd | forward expansion angle |
lw | leeward |
O2 | oxygen |
ref | reference condition |
ww | windward |
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Shape Variable | Lower Limit | Upper Limit |
---|---|---|
Windward lateral expansion angle | 0° | 15° |
Leeward lateral expansion angle | 0° | 15° |
Compound angle | 0° | 30° |
Case No. | Windward Lateral Expansion Angle | Leeward Lateral Expansion Angle | Compound Angle |
---|---|---|---|
Case 1 | 11.96° | 11.96° | 6.08° |
Case 2 | 3.04° | 3.04° | 6.08° |
Case 3 | 3.04° | 11.96° | 6.08° |
Case 4 | 11.96° | 3.04° | 6.08° |
Case 5 | 11.96° | 3.04° | 23.92° |
Case 6 | 11.96° | 11.96° | 23.92° |
Case 7 | 3.04° | 3.04° | 23.92° |
Case 8 | 3.04° | 11.96° | 23.92° |
Case 9 | 0° | 7.5° | 15° |
Case 10 | 15° | 7.5° | 15° |
Case 11 | 7.5° | 7.5° | 0° |
Case 12 | 7.5° | 7.5° | 30° |
Case 13 | 7.5° | 15° | 15° |
Case 14 | 7.5° | 0° | 15° |
Case 15 | 7.5° | 7.5° | 15° |
Windward Lateral Expansion Angle | Leeward Lateral Expansion Angle | Compound Angle | Area Ratio | ||
---|---|---|---|---|---|
M = 1.0 | 5.46 | 8.33 | 24.56 | 8.55 | 0.129 |
M = 1.5 | 3.49 | 14.7 | 20.91 | 10.28 | 0.159 |
M = 2.0 | 3.94 | 15 | 11.82 | 10.57 | 0.177 |
M = 2.5 | 13.49 | 13.03 | 5.15 | 13.44 | 0.202 |
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Jo, Y.R.; Jeong, J.Y.; Kwak, J.S. Experimental Optimization of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole. Energies 2022, 15, 7985. https://doi.org/10.3390/en15217985
Jo YR, Jeong JY, Kwak JS. Experimental Optimization of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole. Energies. 2022; 15(21):7985. https://doi.org/10.3390/en15217985
Chicago/Turabian StyleJo, Ye Rim, Jin Young Jeong, and Jae Su Kwak. 2022. "Experimental Optimization of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole" Energies 15, no. 21: 7985. https://doi.org/10.3390/en15217985
APA StyleJo, Y. R., Jeong, J. Y., & Kwak, J. S. (2022). Experimental Optimization of the Compound Angled Asymmetric Laidback Fan Shaped Film Cooling Hole. Energies, 15(21), 7985. https://doi.org/10.3390/en15217985