Skip to main content
Log in

Effect of temperature of supersonic heterogeneous flow on the erosion-spraying transition

  • Published:
Thermophysics and Aeromechanics Aims and scope

Abstract

This publication is a continuation of works devoted to problems that arise in heterogeneous technologies. The matter of parameters that define the transition from surface erosion to particle spraying onto the surface is addressed. In particular, we experimentally examine the influence of temperature of the supersonic heterogeneous flow (carrier-gas temperature and particle temperature) interacting with the streamlined obstacle on the occurrence probability of either surface damage or particle spraying.

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. R. Boothroyd, Flowing Gas-Solids Suspensions, Chapman and Hall, London, 1971.

    Google Scholar 

  2. Two-Phase Mono-and Poly-Dispersed Gas Flows with Particles, L.E. Sternin (Ed.), Mashinostroenie, Moscow, 1980.

    Google Scholar 

  3. A.S. Sukomel, F.F. Tsvetkov, and R.V. Kerimov, Heat Transfer and Hydraulic Resistance in Pipe Gas Suspension Flows, Energiya, Moscow, 1977.

    Google Scholar 

  4. R.B. Rozenbaum and O.M. Todes, Motion of Bodies in Fluidized Bed, Leningrad State Univ., Leningrad, 1980.

    Google Scholar 

  5. Yu.V. Polezhaev and D.S. Mikhatulin, Heat Transfer in Heterogeneous Flows, in: Engineering, Encyclopedia, 40 volumes, Vols. I-2. Theoretical Mechanics, Thermodynamics, Heat Transfer, Sec. 5, Mashinostroenie, Moscow, 1999.

    Google Scholar 

  6. L.E. Dunbar, J.F. Courtney, and L.D. McMillen, Heating augmentation in erosion hypersonic environments, AIAA J., 1975, Vol. 13, No. 7, P. 908–912.

    Article  Google Scholar 

  7. A.P. Alkhimov, V.F. Kosarev, A.N. Papyrin et al., High-Energy Processing of Materials, Ser. Low-Temperature Plasma, Vol. 18, M.F. Zhukov and V.M. Fomin (Eds.), Nauka, Novosibirsk, 2000.

    Google Scholar 

  8. R. Eichelberger and G. Cainiker, High-Speed Impact, in: K. Vollarth and G. Thomen (Eds.), High-Speed Physics, Springer-Verlag, Wien: New York, 1971, P. 204–246.

    Google Scholar 

  9. Yu.V. Polezhaev, Relaxation process of erosion damage of an obstacle material at multiple collisions with particles, J. Engng. Phys., 1979, Vol. 37, No. 3, P. 389–394.

    Google Scholar 

  10. V.I. Panchenko and Yu.V. Polezhaev, Main regularities in the kinetics of erosion damage of materials, J. Engng. Phys., 1987, Vol. 52, No. 5, P. 709–716.

    Google Scholar 

  11. F.C. Harris, A study of parameters influencing the erosion of reentry material, AIAA Paper, 1975, P. 75–217.

  12. A.W. Ralf and S.M. Widerhorn, Erosion by solid particles impact. in: K. Pris (Ed.), Erosion (Treatises on Materials Sci. and Thechnol., 16), Acad. Press, New York, 1979, P. 1–65.

    Google Scholar 

  13. A.P. Alkhimov, S.V. Klinkov, V.F. Kosarev, and A.N. Papyrin, Gasdynamic spraying: Study of planar supersonic two-phase jet, J. Appl. Mech. Tech. Phys., 1977, Vol. 38, No. 2, P. 177–183.

    Google Scholar 

  14. A.P. Alkhimov, S.V. Klinkov, and V.F. Kosarev, The study of a two-phase flow interaction with a heated surface, Thermophysics and Aeromechanics, 1998, Vol. 5, No. 1, P. 59–64.

    Google Scholar 

  15. A.P. Alkhimov, V.F. Kosarev, and A.N. Papyrin, Gasdynamic spraying: An experimental study of the spraying process, J. Appl. Mech. Tech. Phys., 1998, Vol. 39, No. 2, P. 182–188.

    Article  MATH  Google Scholar 

  16. A.P. Alkhimov, S.V. Klinkov, and V.F. Kosarev, Flow in a supersonic nozzle with a large aspect ratio, Thermophysics and Aeromechanics, 1999, Vol. 6, No. 1, P. 49–56.

    Google Scholar 

  17. A.P. Alkhimov, S.V. Klinkov, V.F. Kosarev, D.S. Mikhatulin, and Yu.V. Polezhaev, Heterogeneous technologies: gasdynamic problems, Thermophysics and Aeromechanics, 2004, Vol. 11, No. 3, P. 437–449.

    Google Scholar 

  18. A.P. Alkhimov, S.V. Klinkov, V.F. Kosarev, D.S. Mikhatulin, and Yu.V. Polezhaev, Heterogeneous technologies: Particle-obstacle interaction problems, Thermophysics and Aeromechanics, 2005, Vol. 12, No. 3, P. 387–402.

    Google Scholar 

  19. A.N. Vasin and Yu.V. Polezhaev, Mass loss at combined erosive and thermal action of a two-phase flow, Fluid Dynamics, 1984, No. 1, P. 120–126.

  20. Materials and Coatings under Extremal Conditions. Prospection (3 volumes), Vol. 3. Experimental studies, Yu.V. Polezhaev and S.V. Reznik (Eds.), Baumann MSTS, Moscow, 2002.

    Google Scholar 

  21. V.K. Grigorovich, Mechanical Properties of Substances at High Temperatures, Physical Encyclopedia, Sovetskaya Entsiklopediya, Moscow, 1983.

    Google Scholar 

  22. S.F. Ignatov, Melting and solidification of particles in a high-temperature two-phase flow. in: Abstr. Intersect. Conf. “Action of two-phase media on structurals and materials”, GONTI-1, 1980, P. 88–89.

  23. A.F. Tsimbalyuk, Solidification and melting of oxide particles in the nozzle flow and in the supersonic polydisperse jet flow, High Temp., 1996, Vol. 34, No. 2, P. 330.

    Google Scholar 

  24. L.V. Leont’ev, A.V. Tarasov, and I.A. Tereshkin, Some peculiarities displayed by the shape of craters formed by high-velocity particles impinging onto a semi-infinite target, Kosmicheskie Issledovaniya, 1971, Vol. 9, Iss. 5, P. 796–798.

    ADS  Google Scholar 

  25. L.V. Leont’ev, On the shape of craters resulting from high-speed impacts, Kosmicheskie Issledovaniya, 1976, Vol. 14, Iss. 2, P. 278–286.

    ADS  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Additional information

This work was supported by the Russian Foundation for Basic Research (Grant No. 05-02-16603).

Rights and permissions

Reprints and permissions

About this article

Cite this article

Ershova, T.V., Kosarev, V.F. & Mikhatulin, D.S. Effect of temperature of supersonic heterogeneous flow on the erosion-spraying transition. Thermophys. Aeromech. 13, 537–547 (2006). https://doi.org/10.1134/S086986430604007X

Download citation

  • Received:

  • Issue Date:

  • DOI: https://doi.org/10.1134/S086986430604007X

Keywords

Navigation