Skip to main content
Log in

Phase-resolved characterization of vortex–flame interaction in a turbulent swirl flame

  • Research Article
  • Published:
Experiments in Fluids Aims and scope Submit manuscript

Abstract

The relation between flow field and flame structure of a turbulent swirl flame is investigated using simultaneous particle image velocimetry (PIV) and planar laser-induced fluorescence of OH (OH-PLIF). The measurements are performed in one axial and three transverse sections through the combustion chamber of a gas turbine model combustor, which is operated with methane and air under atmospheric pressure. Analysis of the velocity fields using proper orthogonal decomposition (POD) shows that the dominant unsteady flow structure is a so-called precessing vortex core (PVC). In each of the four sections, the PVC is represented by a characteristic pair of POD eigenmodes, and the phase angle of the precession can be determined for each instantaneous velocity field from its projection on this pair. Phase-conditioned averages of velocity field and OH distribution are thereby obtained and reveal a pronounced effect of the PVC in the form of convection-enhanced mixing. The increased mixing causes a rapid ignition of the fresh gas, and the swirling motion of the PVC leads to an enlarged flame surface due to flame roll-up. A three-dimensional representation shows that the PVC is accompanied by a co-precessing vortex in the outer shear layer, which, however, has no direct impact on the flame. As an alternative to phase averaging, a low-order representation of the phase-resolved dynamics is calculated based on the first pair of POD modes. It is found that small-scale structures are represented more accurately in the phase averages, whereas the low-order model has a considerable smoothing effect and therefore provides less detailed information. The findings demonstrate that the combined application of POD, PIV, and PLIF can provide detailed insights into flow–flame interaction in turbulent flames.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6
Fig. 7
Fig. 8
Fig. 9
Fig. 10
Fig. 11
Fig. 12
Fig. 13
Fig. 14
Fig. 15

Similar content being viewed by others

References

  • Adrian RJ, Christensen KT, Liu ZC (2000) Analysis and interpretation of instantaneous turbulent velocity fields. Exp Fluids 29:275–290

    Article  Google Scholar 

  • Berkooz G, Holmes P, Lumley JL (1993) The proper orthogonal decomposition in the analysis of turbulent flows. Annu Rev Fluid Mech 25:539–575

    Article  MathSciNet  Google Scholar 

  • Böhm B, Heeger C, Boxx I, Meier W, Dreizler A (2009) Time-resolved conditional flow field statistics in extinguishing turbulent opposed jet flames using simultaneous high-speed PIV/OH PLIF. Proc Combust Inst 32:1647–1654

    Article  Google Scholar 

  • Boxx I, Stöhr M, Carter C, Meier W (2010) Temporally resolved planar measurements of transient phenomena in a partially pre-mixed swirl flame in a gas turbine model combustor. Combust Flame 157:1510–1525

    Article  Google Scholar 

  • Borée J (2003) Extended proper orthogonal decomposition: a tool to analyse correlated events in turbulent flows. Exp Fluids 35:188–192

    Article  Google Scholar 

  • Chaudhuri S, Kostka S, Renfro MW, Cetegen BM (2010) Blowoff dynamics of bluff body stabilized turbulent premixed flames. Combust Flame 157:790–802

    Article  Google Scholar 

  • Chaudhuri S, Kostka S, Tuttle SG, Renfro MW, Cetegen BM (2011) Blowoff mechanism of two dimensional bluff-body stabilized turbulent premixed flames in a prototypical combustor. Combust Flame (in press)

  • Duwig C, Iudiciani P (2010) Extended proper orthogonal decomposition for analysis of unsteady flames. Flow Turbulence Combust 84:25–47

    Article  MATH  Google Scholar 

  • Hardalupas Y, Orain M (2004) Local measurements of the time-dependent heat release rate and equivalence ratio using chemiluminescent emission from a flame. Combust Flame 139:188–207

    Article  Google Scholar 

  • Hult J, Meier U, Meier W, Harvey A, Kaminski CF (2005) Experimental analysis of local flame extinction in a turbulent jet diffusion flame by high repetition 2D laser techniques and multi-scalar measurements. Proc Combust Inst 30:701–709

    Article  Google Scholar 

  • Konle M, Sattelmayer T (2009) Interaction of heat release and vortex breakdown during flame flashback driven by combustion induced vortex breakdown. Exp Fluids 47:627–635

    Article  Google Scholar 

  • Konle M, Kiesewetter F, Sattelmayer T (2008) Simultaneous high repetition rate PIV–LIF-measurements of CIVB driven flashback. Exp Fluids 44:529–538

    Article  Google Scholar 

  • Kothnur PS, Tsurikov MS, Clemens NT, Donbar JM, Carter CD (2002) Planar imaging of CH, OH, and velocity in turbulent non-premixed jet flames. Proc Combust Inst 29:1921–1927

    Article  Google Scholar 

  • Lemaire A, Meyer TR, Zähringer K, Gord JR, Rolon JC (2004) PIV/PLIF investigation of two-phase vortex–flame interactions: effects of vortex size and strength. Exp Fluids 36:36–42

    Article  Google Scholar 

  • Lumley JL (1967) The structure of inhomogeneous turbulence. In: Yaglom AM, Tatarski VI (eds) Atmospheric turbulence and wave propagation. Nauka, Moscow, pp 166–178

    Google Scholar 

  • Meier W, Boxx I, Stöhr M, Carter CD (2010) Laser-based investigations in gas turbine model combustors. Exp Fluids 49:865–882

    Article  Google Scholar 

  • Meyer TR, Fiechtner GJ, Gogineni SP, Rolon JC, Carter CD, Gord JR (2004) Simultaneous PLIF/PIV investigation of vortex-induced annular extinction in H2-air counterflow diffusion flames. Exp Fluids 36:259–267

    Article  Google Scholar 

  • Mueller CJ, Driscoll JF, Sutkus DJ, Roberts WL, Drake MC, Smooke MD (1995) Effect of unsteady stretch rate on OH chemistry during a flame-vortex interaction to assess flamelet models. Combust Flame 100:323–331

    Article  Google Scholar 

  • Mueller CJ, Driscoll JF, Reuss DL, Drake MC, Rosalik ME (1998) Vorticity generation and attenuation as vortices convect through a premixed flame. Combust Flame 112:342–346

    Article  Google Scholar 

  • Perrin R, Braza M, Cid E, Cazin S, Barthet A, Sevrain A, Mockett C, Thiele F (2007) Obtaining phase averaged turbulence properties in the near wake of a circular cylinder at high Reynolds number using POD. Exp Fluids 43:341–355

    Article  Google Scholar 

  • Petersson P, Olofsson J, Brackman C, Seyfried H, Zetterberg J, Richter M, Aldén M, Linne MA, Cheng RK, Nauert A, Geyer D, Dreizler A (2007) Simultaneous PIV/OH-PLIF, Rayleigh thermometry/OH-PLIF and stereo PIV measurements in a low-swirl flame. Appl Opt 46:3928–3936

    Article  Google Scholar 

  • Rehm JE, Clemens NT (1998) The relationship between vorticity/strain and reaction zone structure in turbulent nonpremixed jet flames. Proc Comb Inst 27:1113–1120

    Google Scholar 

  • Renard PH, Rolon JC, Thévenin D, Candel S (1999) Investigations of heat release, extinction, and time evolution of the flame surface, for a nonpremixed flame interacting with a vortex. Combust Flame 117:189–205

    Article  Google Scholar 

  • Renard PH, Thévenin D, Rolon JC, Candel S (2000) Dynamics of flame/vortex interactions. Prog Energy Combust Sci 26:225–282

    Article  Google Scholar 

  • Sadanandan R, Stöhr M, Meier W (2008) Simultaneous OH-PLIF and PIV measurements in a gas turbine model combustor. Appl Phys B 90:609–618

    Article  Google Scholar 

  • Sirovich L (1987) Turbulence and the dynamics of coherent structures. Quart Appl Math 45:561–590

    MathSciNet  MATH  Google Scholar 

  • Steinberg AM, Boxx I, Stöhr M, Carter CD, Meier W (2010) Flow–flame interactions causing acoustically coupled heat release fluctuations in a thermo-acoustically unstable gas turbine model combustor. Combust Flame 157:2250–2266

    Article  Google Scholar 

  • Stöhr M, Sadanandan R, Meier W (2009) Experimental study of unsteady flame structures of an oscillating swirl flame in a gas turbine model combustor. Proc Combust Inst 32:2925–2932

    Article  Google Scholar 

  • Stöhr M, Boxx I, Carter C, Meier W (2011) Dynamics of lean blowout of a swirl-stabilized flame in a gas turbine model combustor. Proc Combust Inst 33:2953–2960

    Article  Google Scholar 

  • Syred N (2006) A review of oscillation mechanisms and the role of the precessing vortex core (PVC) in swirl combustion systems. Prog Energy Combust Sci 32:93–161

    Article  Google Scholar 

  • Tanahashi M, Muratami S, Choi G-M, Fukuchi Y, Miyauchi T (2005) Simultaneous CH-OH PLIF and stereoscopic PIV measurements of turbulent premixed flames. Proc Combust Inst 30:1665–1672

    Article  Google Scholar 

  • van Oudheusden BW, Scarano F, van Hinsberg NP, Watt DW (2005) Phase-resolved characterization of vortex shedding in the near wake of a square-section cylinder at incidence. Exp Fluids 39:86–98

    Article  Google Scholar 

  • Watson KA, Lyons KM, Carter CD, Donbar JM (2002) Simultaneous two-shot CH planar laser-induced fluorescence and particle image velocimetry measurements in lifted CH4/air diffusion flames. Proc Combust Inst 29:1905–1912

    Article  Google Scholar 

  • Weigand P, Meier W, Duan XR, Stricker W, Aigner M (2006) Investigations of swirl flames in a gas turbine model combustor I. Flow field, structures, temperature, and species distributions. Combust Flame 144:205–224

    Article  Google Scholar 

  • Wicksall DM, Agrawal AK, Schefer RW, Keller JO (2005) The interaction of flame and flow field in a lean premixed swirl-stabilized combustor operated on H2/CH4/air. Proc Combust Inst 30:2875–2883

    Article  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to M. Stöhr.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Stöhr, M., Sadanandan, R. & Meier, W. Phase-resolved characterization of vortex–flame interaction in a turbulent swirl flame. Exp Fluids 51, 1153–1167 (2011). https://doi.org/10.1007/s00348-011-1134-y

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00348-011-1134-y

Keywords

Navigation