Numerical simulation of pulse detonation engine (PDE) with fluidic nozzle

Hua Qiu, Tingting Gong, Cha Xiong, Longxi Zheng

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

In order to increase the nozzle's propulsion performance of PDE, numerical studies of fluidic nozzles have been carried out to study the flow field and the propulsion performance of fluidic nozzles in steady flow and during the cyclic operation. Simulation results and their analysis show preliminarily that: (1) in steady flow, with the use of secondary injection, when the core flow's pressure increases, the augmented ratio of the nozzle's propulsion performance will decrease; (2) when the detonation chamber's pressure is very high, the instantaneous flow rate of the secondary flow will dynamically reduce or stop injecting; (3) when the detonation chamber's pressure is low, the secondary flow will dynamically restore. The augmented ratio of average thrust and that of specific average thrust with single injector are respectively 2.63%, 0.36%, and 5.96%, 0.75% with dual injector.

Original languageEnglish
Pages (from-to)271-277
Number of pages7
JournalXibei Gongye Daxue Xuebao/Journal of Northwestern Polytechnical University
Volume33
Issue number2
StatePublished - 1 Apr 2015

Keywords

  • Computer simulation
  • Finite volume method
  • Flow fields, flow rate
  • Fluidic devices
  • Fluidic nozzle
  • Mach number
  • Mesh generation
  • Multi-cycle detonation
  • Navier Stokes equations
  • Nozzles, pressure
  • NPR
  • Pulse detonation engines
  • Secondary flow
  • Shock waves
  • Specific average thrust
  • Steady flow
  • Temperature
  • Turbulence models
  • Two dimensional

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