Skip to main content
Log in

Modeling the effect of body oscillations at the high enthalpy flow around a spherically blunted cone on conjugated heat and mass transfer

  • Published:
Thermophysics and Aeromechanics Aims and scope

Abstract

Mathematical modeling is offered for describing the effect of variable incidence between the body axis and the high enthalpy air flow on conjugated heat and mass transfer in a heat shield material at the thermochemical decomposition of the shield. Results of numerical simulation were obtained for spatial supersonic flow near a body with pitch variations. The effect of body oscillation with the rates 0–100 deg/s on heat and mass characteristics was studied.

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.

Similar content being viewed by others

References

  1. G.H. Hoffman and M.F. Platzer, On supersonic flow past oscillating bodies of revolution, AIAA J., 1966, Vol. 4, No. 2, P. 370–371.

    Article  Google Scholar 

  2. D. Telionis and T. Gupta, Compressible oscillating boundary layers, AIAA J., 1977, Vol. 15, No. 7, P. 974–983.

    Article  ADS  Google Scholar 

  3. V.I. Zinchenko, K.N. Efimov, and A.S. Yakimov, An investigation of the characteristics of conjugate heat and mass transfer under conditions of injection of gas and thermochemical destruction of a body subjected to flow, High Temperature, 2007, Vol. 45, No. 5, P. 749–755.

    Article  Google Scholar 

  4. K.N. Efimov, V.A. Ovchinnikov, A.S. Yakimov and S.A. Gaar, Numerical analysis of heat transfer characteristics during radiative-convective heating of a spherically blunted cone, High Temperature, 2019, Vol. 57, No. 1, P. 83–93.

    Article  Google Scholar 

  5. A.M. Grishin and V.M. Fomin, Conjugated and Unsteady Problems of Reactive Medium Mechanics, Nauka, Novosibirsk, 1984.

    Google Scholar 

  6. K.N. Efimov, V.A. Ovchinnikov, A.S. Yakimov, Mathematical modeling of rotation effects on conjugate heat and mass transfer at a high-enthalpy flow around a spherically blunted cone at incidence, Thermophysics and Aeromechanics, 2017, Vol. 24, No. 5, P. 677–689.

    Article  ADS  Google Scholar 

  7. K.N. Efimov, V.A. Ovchinnikov, and A.S. Yakimov, Rotation influence on heat transfer at supersonic flow around a blunted body, AIAA J., 2018, Vol. 56, No. 2, P. 743–751.

    Article  ADS  Google Scholar 

  8. A.S. Yakimov, Thermal Protection Modeling of Hypersonic Flying Apparatus, Springer, Switzerland, 2018.

    Book  Google Scholar 

  9. A.M. Grishin, A.N. Golovanov, V.I. Zinchenko, K.N. Efimov, and A.S. Yakimov, Mathematical and Physical Modeling of Thermal Protection, TSU Publ, Tomsk, 2011.

    Google Scholar 

  10. Yu.V. Polezhaev and F.P. Yurevich, Thermal Protection, Energia, Moscow, 1976.

    Google Scholar 

  11. V.V. Lunev, K.M. Magomedov and V.G. Pavlov, Hypersonic Flow Past Blunted Cones with Account for Equilibrium Physical and Chemical Conversions, CC AS USSR, Moscow, 1968.

    Google Scholar 

  12. V.V. Gorskii and A.V. Zaprivoda. Application of the complete thermochemical model of carbon destruction to the problem of destruction of carbon-fiber reinforced plastic material under transient heating, High Temperature, 2014, Vol. 52, No. 2, P. 230–234.

    Article  Google Scholar 

  13. S.V. Patankar and D.B. Spalding, Heat and Mass Transfer in Boundary Layers. Morgan-Grampian, London, 1967.

    Google Scholar 

  14. T. Cebeci, Behavior of turbulent flow near a porous wall with pressure gradient, AIAA J., 1970, Vol. 8, No. 12, P. 48–52.

    Article  Google Scholar 

  15. D. Dhawan and R. Narasimha, Some properties of boundary layer flow during the transition from laminar to turbulent motion, J. Fluid Mech., 1958, Vol. 4, No. 3, P. 418–423.

    Article  Google Scholar 

  16. A.M. Grishin, V.I. Zinchenko, K.N. Efimov, A.N. Subbotin, and A.S. Yakimov, Iteration Interpolation Method and Applications, TSU Publ., Tomsk, 2004.

    Google Scholar 

  17. J.L. Papp and S.M. Dash, A rapid engineering approach to modeling hypersonic laminar to turbulent transitional flows for 2d and 3d geometries, AIAA Paper, 2008, No. 2008–2600.

  18. A.D. Dilley and Ch.R. McClinton, Evaluation of CFD turbulent heating prediction techniques and comparison with hypersonic experimental data, NASA Langley Technical Report. NASA/CR-2001-210837, 2001.

  19. R.H. Brian, A.B. Scott, and J.H. Thomas, X-33 turbulent aeroheating measurements and predictions, AIAA Paper, 2002, No. 2002–4700.

  20. S.G. Mallinson, R. Hillier, M. Zanchetta, S. Soltani, and D. Kirk, An experimental and numerical study of hypersonic turbulent boundary layer flows, AIAA Paper, No. 97–2290.

  21. R.N. Feldhuhn, Heat transfer from a turbulent boundary layer on a porous hemisphere, AIAA Paper, No. 76–119.

  22. G.F. Windhopf and R. Hall, Transitional and turbulent heat-transfer measurements on a yawed blunt conical nosetip, AIAA J., 1972, Vol. 10, No. 10, P. 1318–1325.

    Article  ADS  Google Scholar 

  23. A.A. Samarskii, Introduction to the Theory of Difference Schemes, Nauka, Moscow, 1971.

    Google Scholar 

  24. A.G. Gofman and A.M. Grishin, Theoretical investigation of the thermochemical degradation of graphite in a high-enthalpy air flow, J. Appl. Mech. Tech. Phys., 1984, No. 4, P. 107–114.

    Google Scholar 

  25. R.L. Baker, Graphite Sublimation Chemistry Nonequilibrium Effects, AIAA J., Vol. 15, No. 10, P. 1391–1397.

  26. R.A. Andrievskiy, Porous Metal-ceramic Materials, Metallurgia, Moscow, 1964.

    Google Scholar 

  27. L.M. Buchnev, A.I. Smyslov, I.A. Dmitriev, A.F. Kuteinikov, and V.I. Kostikov, Experimental study of enthalpy of graphite quasi-monocrystal and carbon within the temperature range of 300–3800 K, High Temperature, 1987, Vol. 25, No. 6, P. 1120–1125.

    Google Scholar 

  28. O.M. Alifanov, A.P. Tryanin and A.L. Lozhkin. Experimental investigation of the method of determining the internal heat-transfer coefficient in a porous body from the solution of the inverse problem, J. Engng Phys., 1987, Vol. 52, No. 6, P. 340–346.

    Article  Google Scholar 

  29. V.P. Sosedov, Properties of Construction Materials Based on Carbon, Handbook, Metallurgia, Moscow, 1975.

    Google Scholar 

  30. D.A. Bountin, Yu.V. Gromyko, S.V. Kirilovskiy, A.A. Maslov and T.V. Poplavskaya. Influence of blunt-cone tip temperature on the laminar-turbulent transition in hypersonic boundary layers, Thermophysics and Aeromechanics, 2018, Vol.25, No. 4, P. 483–495.

    Article  ADS  Google Scholar 

  31. D.V. Khotyanovsky and A.N. Kudryavtsev, Numerical simulation of the evolution of unstable disturbances of various modes and initial stages of the laminar-turbulent transition in the boundary layer at the freestream Mach number M = 6, Thermophysics and Aeromechanics, 2016, Vol. 23, No. 6, P. 809–818.

    Article  ADS  Google Scholar 

  32. A.N. Kudryavtsev and D.V. Khotyanovsky, Direct numerical simulation of transition to turbulence in a supersonic boundary layer, Thermophysics and Aeromechanics, 2015, Vol. 22, No. 5, P. 559–568.

    Article  ADS  Google Scholar 

  33. N.M. Terekhova, Some peculiarities of the disturbances development at a variation of mean parameters, Thermophysics and Aeromechanics, 2014, Vol. 21, No. 5, P. 567–578.

    Article  ADS  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to A. S. Yakimov.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Efimov, K.N., Ovchinnikov, V.A. & Yakimov, A.S. Modeling the effect of body oscillations at the high enthalpy flow around a spherically blunted cone on conjugated heat and mass transfer. Thermophys. Aeromech. 27, 691–704 (2020). https://doi.org/10.1134/S0869864320050054

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1134/S0869864320050054

Keywords

Navigation