Coupled Lagrangian impingement spray model for doublet impinging injectors under liquid rocket engine operating conditions
Связанная лагранжева модель струйного распыления при соударении для двухструйных соударяющихся форсунок в условиях работы жидкостного ракетного двигателя
2017-06-21
SCID: 54.1/ngsbyct2
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coupled Lagrangian spray modeldoublet impinging injectorsdroplet collisionjet-jet impingementliquid rocket engine conditions
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Abstract (AI)
To predict the effect of the liquid rocket engine combustion chamber conditions on the impingement spray, the conventional uncoupled spray model for impinging injectors is extended by considering the coupling of the jet impingement process and the ambient gas field. The new coupled model consists of the plain-orifice sub-model, the jet-jet impingement sub-model and the droplet collision sub-model. The parameters of the child droplet are determined with the jet-jet impingement sub-model using correlations about the liquid jet parameters and the chamber conditions. The overall model is benchmarked under various impingement angles, jet momentum and off-center ratios. Agreement with the published experimental data validates the ability of the model to predict the key spray characteristics, such as the mass flux and mixture ratio distributions in quiescent air. Besides, impinging sprays under changing ambient pressure and non-uniform gas flow are investigated to explore the effect of liquid rocket engine chamber conditions. First, a transient impingement spray during engine start-up phase is simulated with prescribed pressure profile. The minimum average droplet diameter is achieved when the orifices work in cavitation state, and is about 30% smaller than the steady single phase state. Second, the effect of non-uniform gas flow produces off-center impingement and the rotated spray fan by 38°. The proposed model suggests more reasonable impingement spray characteristics than the uncoupled one and can be used as the first step in the complex simulation of coupling impingement spray and combustion in liquid rocket engines.
Key Findings
1
A coupled Lagrangian impingement spray model integrates plain-orifice, jet-jet impingement, and droplet collision sub-models with ambient gas-field effects.
2
Compared with the uncoupled model, the coupled approach provides more reasonable spray characteristics and supports future coupled spray-combustion simulations in liquid rocket engines.
3
During simulated engine start-up, the minimum average droplet diameter occurs under cavitating orifice conditions and is approximately 30% smaller than in the steady single-phase state.
4
Non-uniform gas flow induces off-center impingement and rotates the spray fan by 38°.
5
The model agrees with published experiments across varying impingement angles, jet momentum, and off-center ratios, reproducing mass-flux and mixture-ratio distributions in quiescent air.
Research Object
Doublet impinging injector sprays under liquid rocket engine combustion-chamber conditions
Research Subject
Effects of ambient pressure, transient chamber conditions, and non-uniform gas flow on impingement-spray characteristics, including droplet size, mass-flux and mixture-ratio distributions, off-center impingement, and spray-fan rotation
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2017-06-21
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