Numerical Research on The Nozzle Damping Effect by A Wave Attenuation Method

Wan xing Su, Ning fei Wang, Jun wei Li*, Yan dong Zhao, Mi Yan

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

13 Citations (Scopus)

Abstract

Nozzle damping is one of the most important factors in the suppression of combustion instability in solid rocket motors. For an engineering solid rocket motor that experiences combustion instability at the end of burning, a wave attenuation method is proposed to assess the nozzle damping characteristics numerically. In this method, a periodic pressure oscillation signal which frequency equals to the first acoustic mode is superimposed on a steady flow at the head end of the chamber. When the pressure oscillation is turned off, the decay rate of the pressure can be used to determine the nozzle attenuation constant. The damping characteristics of three other nozzle geometries are numerically studied with this method under the same operating condition. The results show that the convex nozzle provides more damping than the conical nozzle which in turn provides more damping than the concave nozzle. All the three nozzles have better damping effect than that of basic nozzle geometry. At last, the phase difference in the chamber is analyzed, and the numerical pressure distribution satisfies well with theoretical distribution.

Original languageEnglish
Pages (from-to)162-166
Number of pages5
JournalDefence Technology
Volume9
Issue number3
DOIs
Publication statusPublished - 1 Sept 2013

Keywords

  • Combustion instability
  • Nozzle damping
  • Solid rocket motor
  • Wave attenuation method

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