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Effects of inlet and secondary flow conditions on the flow field of rotating detonation engines with film cooling.

Authors :
Yu, Jingtian
Yao, Songbai
Li, Jingzhe
Huang, Yihui
Guo, Chunhai
Zhang, Wenwu
Source :
International Journal of Hydrogen Energy. Mar2023, Vol. 48 Issue 24, p9082-9094. 13p.
Publication Year :
2023

Abstract

A three-dimensional simulation of the rotating detonation engine (RDE) with film cooling is conducted. The aim of this study is to analyze the fluid dynamics and heat transfer of the detonation flow field under the influence of cooling flow from the film holes. Results suggest that when the rotating detonation wave sweeps the film holes, the shape of the wave structure will deform, and the detonation products will invade and block the outflow from the film holes; however, this only occurs temporarily. The structure of the detonation wave will quickly restore to its stable form and, meanwhile, the cooling flow also recovers rapidly and provides adequate protected area on the wall surface and effective thermal protection time in a full propagation cycle of the detonation wave. A parametric analysis indicates that the effective outflow time improves with the increase of the mass flow rate of the cooling flow; on the other hand, the cooling efficiency is more significant downstream from the inlet of the combustor to the outlet. In addition, the thrust and specific impulse of the RDE are also examined under the influence of film cooling. • Film cooling is implemented in rotating detonation engines for thermal protection. • The self-sustained rotating detonation wave (RDW) can be achieved with film cooling at various working conditions. • The film cooling effectiveness and interactions between the RDW and cooling flows are analyzed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03603199
Volume :
48
Issue :
24
Database :
Academic Search Index
Journal :
International Journal of Hydrogen Energy
Publication Type :
Academic Journal
Accession number :
162026843
Full Text :
https://doi.org/10.1016/j.ijhydene.2022.11.354