Flamelet Analysis for Transient Response to Pressure Oscillations

압력섭동에 따른 비정상 화염편 응답특성 해석

  • Received : 2010.12.06
  • Accepted : 2011.02.07
  • Published : 2011.03.31

Abstract

This study has been mainly motivated to numerically investigate the transient flame response to pressure oscillations in the gaseous hydrogen - liquid oxygen flames at supercritical pressures. The present analysis is based on the real-fluid transient flamlet model and the flame field is acoustically perturbed only by the sinewave oscillations in the frequency range from 1,000 Hz to 5,000 Hz. Based on numerical results, the detailed discussions are made for the flame response characteristics and the transient flamelet response associated with the high-frequency combustion instability in the liquid propellant rocket engines.

Keywords

References

  1. CPIA Publication 247, "Guidelines for Combustion Stability Specifications and Verification procedures for Liquid-Propellant Rocket Engines."
  2. Harrje, David T., Reardon, Frederick H., "Liquid Propellant Rocket Combustion Instability", NASA SP-194, 1972
  3. F. Nicoud, L.Benoit, C. Sensiau, T. Poinsot, "Acoustic Modes in Combustors with Complex Impedances and Multidimensional Active Flames", AIAA Journal, Vol. 45, No. 2, 2007, pp. 426-441 https://doi.org/10.2514/1.24933
  4. J. Telaar, G. Schneider, J. Hussong and W. Mayer, "Cryogenic jet injection: Description of test case RCM 1", Proceedings 2nd International Workshop on Rocket Combustion Modeling, Lampoldshausen, Germany, 2001, pp. 25-27
  5. M. Oschwald and M. M. Micci, "Spreading angle and centerline variation of density of supercritical nitrogen jets", Atomization and Sprays, Vol. 12, No. 1-3, 2002, pp. 91-106 https://doi.org/10.1615/AtomizSpr.v12.i123.50
  6. W. Mayer, J. Tellar, R. Branam, G. Schneider and J. Hussong, "Raman measurement of cryogenic injection at supercritical pressure", Heat and Mass Transfer, Vol. 39, 2003, pp. 709-719 https://doi.org/10.1007/s00231-002-0315-x
  7. R. Branam and W. Mayer, "Characterisation of Cryogenic Injection at Supercritical pressure", Journal of Propulsion and Power, Vol. 19, No. 3, 2003, pp. 342-355 https://doi.org/10.2514/2.6138
  8. M. Oschwald, J. J. Smith, R. Branam, J. Hussong, A. Shick, B. Chehroudi and D. Talley, "Injection of Fluids into Supercritical Environments", Combustion Science and Technology, Vol. 178, 2006, pp. 49-100 https://doi.org/10.1080/00102200500292464
  9. S. Candel, M. Juniper, G. Singla, P. Scouflaire and C. Rolon, "Structure and dynamics of cryogenic flames at supercritical pressure", Combustion Science and Technology, Vol. 178, 2006, pp. 161-192 https://doi.org/10.1080/00102200500292530
  10. M. Juniper, "Structure et stabilisation des flammes cryotechniques", Ph.D. thesis, Ecole Centrale de Paris, 2001
  11. S.K. Kim, "Studies on Detailed Structure and NOx Formation of Turbulent Nonpremixed Flames Using Flamelet Models", PhD dissertation, Hanyang Univ., 2001
  12. S.K. Kim, Y.M. Kim, "Assessment of the Eulerian Particle Flamelet Model for Nonpremixed turbulent Jet Flames", Combustion and Flame Vol. 154, 2008, pp. 232-247 https://doi.org/10.1016/j.combustflame.2008.04.009
  13. G. Soave, Chemical Engineering Science 37, 1972, pp. 1197-1203
  14. M.S. Graboski and T.E. Daubert, Ind. Engineering Chemical Process 17, 1978, pp. 443-450 https://doi.org/10.1021/i260068a009
  15. A. Congiunti, C. Bruno and E. Giacomazzi, "Supercritical combustion properties", American Institute of Aeronautics and Astronautics AIAA-0478, 2003
  16. L. Pons, N. Darabiha, S. Candel, G. Ribert and V. Yang, "Mass transfer and combustion in transcritical non-premixe d counterflows", Combustion Theory and Modeling, Vol. 13, 2009, pp. 57-81 https://doi.org/10.1080/13647830802368821
  17. T. Chung, M. Ajlan, L. Lee and K. Starling, "Generalized multi parameter correlation for nonpolar and polar fluid transport properties", Ind. Engineering Chemistry Res., Vol. 27, 1988, pp. 671-679 https://doi.org/10.1021/ie00076a024
  18. J. Ely and H. Hanley, "Prediction of transport properties 1, Viscosity of fluids and mixtures", Ind. Engineering Chemistry, Vol. 20, 1981, pp. 323-332
  19. J. Ely and H. Hanley, "Prediction of transport properties 2, Thermal conductivity of pure fluids and mixtures", Ind. Engineering Chemistry, Vol. 22, 1983, pp. 90-97
  20. E. N. Fuller, P. D. Schettler and J. C. Giddings, J. Physical Chemistry Vol. 58, No. 5, 1966, pp. 18
  21. S. Takahashi, "Preparation of a generalized chart for the diffusion coefficient of gases at high pressure", J. Chemical Engineering (Japan), Vol. 7, 1974, pp. 417-420
  22. Li, J., Zhao, Z., Kazakov, A., and Dryer, F.L. "An Updated Comprehensive Kinetic Model for H2 Combustion", Fall Technical Meeting of the Eastern States Section of the Combustion Institute, Penn State University, University Park, PA, October 26-29, 2003
  23. J. W. S. Rayleigh, "The Theory of Sound", Vol. 2, Dover, New York, 1945, p. 226
  24. H.G. Im, C.K. Law J.S. Kim, and F.A. Williams, "Response of counterflow diffusion flames to oscillating strain rates", Combustion and Flame, Vol. 100, 1995, pp. 21-30 https://doi.org/10.1016/0010-2180(94)00059-2
  25. J.S. Kim, and F.A. Williams, "Contribution of strained diffusion flames to acoustic pressure response", Combustion and Flame, Vol. 98, 1994, pp. 279-299 https://doi.org/10.1016/0010-2180(94)90242-9