Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions
Multi-element injectors have been used in liquid rocket engines to obtain high thrust, and the gas-centered swirl coaxial injector is a representative injection system because it provides high mixing performance. Investigations of the spray characteristics of injection systems have focused on the ch...
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Online Access: | http://dx.doi.org/10.1063/5.0058107 |
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doaj-71357d9c2c794f66bec349a1a223b4082021-08-04T13:18:51ZengAIP Publishing LLCAIP Advances2158-32262021-07-01117075030075030-1110.1063/5.0058107Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditionsWooseok Song0Jaye Koo1Steelmaking Process Research Team, Hyundai Steel Company, Dangjin 31719, Republic of KoreaSchool of Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang 10540, Republic of KoreaMulti-element injectors have been used in liquid rocket engines to obtain high thrust, and the gas-centered swirl coaxial injector is a representative injection system because it provides high mixing performance. Investigations of the spray characteristics of injection systems have focused on the characteristics of single-element injectors, including the spray angle, breakup, and atomization mechanism of the liquid sheet formation. However, the spray characteristics of multi-element injectors need to be studied because of their usage in real rocket engine systems. In this paper, spray patterns and interacting spray under different injection conditions are analyzed using the backlight imaging technique, and the dominant flow fields are observed using the dynamic mode decomposition method. The spray angle in the case of the gaseous nitrogen with a high Reynolds number is calculated to be lower than the case with a low Reynolds number. From the averaged images, it is found that there are two dominant flow fields: one is located in the vicinity of the injector head and the other is in the interacting spray zone, which is related to a secondary breakup via an adjacent injector. As a result of the dynamic mode decomposition analysis, however, the spray zone near the injector is confirmed to be a more dominant flow field than the interacting spray zone.http://dx.doi.org/10.1063/5.0058107 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Wooseok Song Jaye Koo |
spellingShingle |
Wooseok Song Jaye Koo Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions AIP Advances |
author_facet |
Wooseok Song Jaye Koo |
author_sort |
Wooseok Song |
title |
Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
title_short |
Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
title_full |
Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
title_fullStr |
Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
title_full_unstemmed |
Spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
title_sort |
spray patterns of multi-element swirl coaxial injector of interacting spray under different injection conditions |
publisher |
AIP Publishing LLC |
series |
AIP Advances |
issn |
2158-3226 |
publishDate |
2021-07-01 |
description |
Multi-element injectors have been used in liquid rocket engines to obtain high thrust, and the gas-centered swirl coaxial injector is a representative injection system because it provides high mixing performance. Investigations of the spray characteristics of injection systems have focused on the characteristics of single-element injectors, including the spray angle, breakup, and atomization mechanism of the liquid sheet formation. However, the spray characteristics of multi-element injectors need to be studied because of their usage in real rocket engine systems. In this paper, spray patterns and interacting spray under different injection conditions are analyzed using the backlight imaging technique, and the dominant flow fields are observed using the dynamic mode decomposition method. The spray angle in the case of the gaseous nitrogen with a high Reynolds number is calculated to be lower than the case with a low Reynolds number. From the averaged images, it is found that there are two dominant flow fields: one is located in the vicinity of the injector head and the other is in the interacting spray zone, which is related to a secondary breakup via an adjacent injector. As a result of the dynamic mode decomposition analysis, however, the spray zone near the injector is confirmed to be a more dominant flow field than the interacting spray zone. |
url |
http://dx.doi.org/10.1063/5.0058107 |
work_keys_str_mv |
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