Investigation of Spray Characteristics for Detonability: A Study on Liquid Fuel Injector and Nozzle Design
Abstract
:1. Introduction
1.1. Detonation Engine
1.2. Liquid Fuel/Oxidizer for Detonation
2. Experimental Setup
3. Results
3.1. Comparison of Venturi Nozzle Characteristics
3.1.1. Venturi Nozzle with
3.1.2. Venturi Nozzle with
3.2. Droplet Size Distribution
4. Discussion and Conclusions
- The injector used in this study exhibits different spray characteristics based on the diameter ratio of the Venturi nozzle, denoted as . For , the characteristics of an air-assist injector were observed, while for , the characteristics of an air-blast injector were evident.
- Four different fuel injection types were experimented with, varying the injection position, the number of injection holes, and the injection angle. In case of , there was almost no significant difference in fuel spray characteristics based on the fuel injection type. However, in the case of , different characteristics were observed based on the type of fuel injection hole. Key observations included the formation of liquid films near the Venturi nozzle, and the length of these films varied with the type of fuel injection. The presence or absence of such films could influence the occurrence of detonation. Additionally, factors affecting film length, considering the geometric parameters of the fuel injection hole, were identified, and predicted by empirical correlation.
- By using SMD measurements, it was confirmed that the fuel spray mechanism varies with , and a tendency was observed where smaller values resulted in relatively smaller SMD. To predict SMD, geometric shape factors for predicting film length were introduced, along with length ratio, Reynolds number, and Weber number.
- Except for type D, the SMD distribution was almost similar among different fuel injection configurations. The Venturi nozzle diameter ratio had a more significant impact on the overall SMD distribution. This emphasizes that the Venturi nozzle diameter ratio is an important variable that should be carefully considered in designing valveless liquid detonation systems.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameter | Oxidizer | Fuel |
---|---|---|
Simulant | Nitrogen | Water |
) | 1.15~14.8 | 1006 |
1.78 × 10−5 | 8.9 × 10−4 | |
- | 7.28 × 10−2 | |
Supply pressure (MPa) | 0.8–2.0 | 2.0 |
Spray pressure condition | Ambient pressure | |
T (K) | 298 |
Fuel Injection Type | ||
---|---|---|
Type A | 6 mm | 3 mm |
Type B | 6 mm | 2 mm |
Type C | 14 mm | 2 mm |
Type D | 6 mm | 2 mm |
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Choi, M.H.; Oh, Y.; Park, S. Investigation of Spray Characteristics for Detonability: A Study on Liquid Fuel Injector and Nozzle Design. Aerospace 2024, 11, 421. https://doi.org/10.3390/aerospace11060421
Choi MH, Oh Y, Park S. Investigation of Spray Characteristics for Detonability: A Study on Liquid Fuel Injector and Nozzle Design. Aerospace. 2024; 11(6):421. https://doi.org/10.3390/aerospace11060421
Chicago/Turabian StyleChoi, Myeung Hwan, Yoojin Oh, and Sungwoo Park. 2024. "Investigation of Spray Characteristics for Detonability: A Study on Liquid Fuel Injector and Nozzle Design" Aerospace 11, no. 6: 421. https://doi.org/10.3390/aerospace11060421
APA StyleChoi, M. H., Oh, Y., & Park, S. (2024). Investigation of Spray Characteristics for Detonability: A Study on Liquid Fuel Injector and Nozzle Design. Aerospace, 11(6), 421. https://doi.org/10.3390/aerospace11060421