Numerical investigation of cowl lip adjustments for a rocket-based combined-cycle inlet in takeoff regime

Lei Shi, Xiaowei Liu, Guoqiang He, Fei Qin, Xianggeng Wei, Bing Yang, Lele Wu

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Numerical integration simulations were performed on a ready-made central strut-based rocket-based combined-cycle (RBCC) engine operating in the ejector mode during the takeoff regime. The effective principles of various cowl lip positions and shapes on the inlet operation and the overall performance of the entire engine were investigated in detail. Under the static condition, reverse cowl lip rotation in a certain range was found to contribute comprehensive improvement to the RBCC inlet and the entire engine. However, the reverse rotation of the cowl lip contributed very little enhancement of the RBCC inlet under the low subsonic flight regime and induced extremely negative impacts in the high subsonic flight regime, especially in terms of a significant increase in the drag of the inlet. Changes to the cowl lip shape provided little improvement to the overall performance of the RBCC engine, merely shifting the location of the leeward area inside the RBCC inlet, as well as the flow separation and eddy, but not relieving or eliminating those phenomena. The results of this study indicate that proper cowl lip rotation offers an efficient variable geometry scheme for a RBCC inlet in the takeoff regime.

Original languageEnglish
Pages (from-to)293-307
Number of pages15
JournalInternational Journal of Turbo and Jet Engines
Volume33
Issue number3
DOIs
StatePublished - 1 Sep 2016

Keywords

  • cowl lip
  • position
  • rocket-based combined-cycle inlet
  • shape
  • takeoff regime

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