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Nonlinear simulations of combustion instabilities with a quasi-1D Navier–Stokes code

Abstract

As lean premixed combustion systems are more susceptible to combustion instabilities than non-premixed systems, there is an increasing demand for improved numerical design tools that can predict the occurrence of combustion instabilities with high accuracy. The inherent nonlinearities in combustion instabilities can be of crucial importance, and we here propose an approach in which the one-dimensional (1D) Navier–Stokes and scalar transport equations are solved for geometries of variable cross-section. The focus is on attached flames, and for this purpose a new phenomenological model for the unsteady heat release from a flame front is introduced. In the attached flame method (AFM) the heat release occurs over the full length of the flame. The nonlinear code with the use of the AFM approach is validated against analytical results and against an experimental study of thermoacoustic instabilities in oxy-fuel flames by Ditaranto and Hals [Combustion and Flame 146 (2006) 493–512]. The numerical simulations are in accordance with the experimental measurements and the analytical results and both the frequencies and the amplitudes of the resonant acoustic pressure modes are reproduced with good accuracy.
Copyright © 2011 Elsevier Ltd All rights reserved.

Category

Academic article

Language

English

Affiliation

  • SINTEF Energy Research / Termisk energi

Year

2011

Published in

Journal of Sound and Vibration

ISSN

0022-460X

Publisher

Elsevier

Volume

330

Issue

23

Page(s)

5644 - 5659

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