Study on the Particle Deposition Characteristics of Transpiration Cooling Structures with Sintered Wire Mesh
Abstract
:1. Introduction
2. Experimental Setup
2.1. Experimental System and Test Sections
2.2. Experimental Procedure
3. Numerical Setup
- (1)
- Based on the geometric model, the flow and heat transfer model was solved to expand the flow field calculation.
- (2)
- After the convergence of the flow field calculation, the particle trajectory was calculated. When the particle moved to the wall surface, it was considered to be captured by the wall surface, and the particle mass was accumulated. If the particle did not reach the wall surface, the particle trajectory was calculated.
4. Results and Discussion
4.1. Time Evolution of Particle Deposition Characteristics
4.2. Variation of Particle Deposition Quality and Thickness with Time
4.3. Numerical Simulation of Sintered Metal Mesh Particle Deposition Characteristics Analysis
5. Conclusions
- (1)
- With the increase in spray time, the deposition mass and the maximum deposition thickness of the divergent cooling surface increased gradually.
- (2)
- The distribution characteristics of the deposition thickness on the surface of the metal wire mesh were examined. Along the main-stream direction, when spray time was short, the deposition thickness was higher in the narrow range upstream of the experimental specimen. As spray time increased, deposition thickness gradually decreased along the main-stream direction of the divergent cooling system. In the spanwise direction, when spray time was very short, the deposition thickness in the spanwise direction was more consistent, and when spray time increased further, the deposition thickness distribution began to tend to a ∩-type distribution.
- (3)
- For the metal wire mesh divergent cooling structure, particle deposition could easily occur on the windward side of the metal wire. When the blowing ratio was large, the deposition in the upstream area of the metal wire mesh was mainly due to the mixing of the main stream and the cold air jet, while the deposition of particles in the downstream area was still mainly affected by the cold air jet due to the thick cold air layer.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Test Times | Spray Time (min) | Particle Mass Flow (g/min) | Deposition Quality (g) |
---|---|---|---|
Experiment 1 | 4 | 10 | 2.85 |
Experiment 2 | 8 | 5 | 1.89 |
Test Times | (K) | (K) | (K) | (K) | (m/s) | (min) | |
---|---|---|---|---|---|---|---|
Experiment A | 317 | 315 | 2 | 293 | 0.04 | 15 | 2 |
Experiment B | 317 | 315 | 2 | 293 | 0.04 | 15 | 3 |
Experiment C | 317 | 315 | 2 | 293 | 0.04 | 15 | 5 |
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Zhang, Z.; Luo, X.; Peng, Y. Study on the Particle Deposition Characteristics of Transpiration Cooling Structures with Sintered Wire Mesh. Micromachines 2024, 15, 452. https://doi.org/10.3390/mi15040452
Zhang Z, Luo X, Peng Y. Study on the Particle Deposition Characteristics of Transpiration Cooling Structures with Sintered Wire Mesh. Micromachines. 2024; 15(4):452. https://doi.org/10.3390/mi15040452
Chicago/Turabian StyleZhang, Zhe, Xiang Luo, and Yubo Peng. 2024. "Study on the Particle Deposition Characteristics of Transpiration Cooling Structures with Sintered Wire Mesh" Micromachines 15, no. 4: 452. https://doi.org/10.3390/mi15040452
APA StyleZhang, Z., Luo, X., & Peng, Y. (2024). Study on the Particle Deposition Characteristics of Transpiration Cooling Structures with Sintered Wire Mesh. Micromachines, 15(4), 452. https://doi.org/10.3390/mi15040452