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Boundary conditions for a forced transpiration cooling system

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Abstract

A study is made of the boundary conditions, and results are presented on the effects from the convective heat-transfer rate at the inner surface of a permeable wall on the temperature state in it.

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Literature cited

  1. E. Eckert and N. Livingood, “A performance comparison for convective, porous, and cell methods of cooling when air is used as the cooling medium,” Vopr. Raket. Tekhol., No. 3, 42–49 (1956).

    Google Scholar 

  2. P. Grootenhuis, “The mechanism and application of effusion cooling,” J. R. Aeron. Soc.,63, No. 578, 73–89 (1959).

    Google Scholar 

  3. S. Hyman, C. Kuo, S. Israel, B. Minushkin, and M. Cooper, Transpiration and Film Cooling for Solid Propellant Rocket Nozzles, United Nuclear Corporation Report NDA 2150-1 (1961).

  4. R. P. Bernicker, “An investigation of porous wall cooling,” ASME paper, No. 60-WA-233 (1962).

  5. D. Nealy and P. McFadden, “A note on research on porous-wall cooling,” Teploperedacha, Ser. C,91, No. 2, 89–90 (1969).

    Google Scholar 

  6. L. Green, “Heat transfer in a power-producing porous solid,” in: Proceedings of the Third US National Congress of Applied Mechanics (1958), pp. 747–751.

  7. V. I. Lokai and S. G. Dezider'ev, “Calculating the temperatures of turbine blades with infusion cooling,” in: Papers from Kazan Aviation Institute [in Russian], Issue 101, (1968), pp. 15–20.

    Google Scholar 

  8. W. U. Choudhury and M. M. El-Wakil, “Heat transfer and flow characteristics in conductive porous media with energy generation,” Heat Transfer,7, CT. 3.2, 1–12 (1970).

    Google Scholar 

  9. P. Greotenhuis and N. P. W. Moore, “Some observation on the mechanism of sweat cooling,” in: Proceedings of the Seventh International Congress for Applied Mechanics, Vol. 3 (1948), pp. 106–119.

    Google Scholar 

  10. D. M. Curry and J. E. Cox, “The effect of the porous material characteristics on the internal heat and mass transfer,” ASME paper, No. 73-HT-49 (1973).

  11. V. M. Polyaev and A. V. Sukhov, “A study in heat transfer in the flow of a gas through a porous wall with an internal source of heat,” Izv. Vyssh. Uchebn. Zaved., Mashinostr., No. 8, 77–82 (1969).

    Google Scholar 

  12. H. Kubota, “Thermal characterization of an evaporative cooling system under conditions of joint radiative and convective heating,” Teploperedacha, Ser. C,99, No. 4, 132–138 (1977).

    Google Scholar 

  13. E. Mayer and J. G. Bartas, “Transpiration cooling in porous metal walls,” Jet Propulsion,24, No. 4, 366–368 (1954).

    Google Scholar 

  14. S. Weinbaum and H. L. Wheeler, “Heat transfer in sweat-cooled porous metals,” J. Appl. Phys.,20, No. 1, 113–122 (1949).

    Google Scholar 

  15. J. C. Y. Coh and E. P. del Casal, “Heat and mass flow through porous matrices for transpiration cooling,” in: Proceedings of the 1965 Heat Transfer and Fluid Mechanics Institute (1965), pp. 263–281.

  16. I. E. Smith and M. J. Watts, “Radiation heat transfer to a porous surface cooled by a transpiring flow,” in: Combustion and Heat transfer in Gas Turbine Systems (1971), pp. 207–226.

  17. V. K. Shchukin, “The thermal state of a porous wall with effusion cooling,” Teploenergetika, No. 1, 80–82 (1962).

    Google Scholar 

  18. V. K. Shchukin and A. F. Koval'nogov, “The thermal state of a porous plate having bulk heat production and effusion cooling,” Izv. Vyssh. Uchebn. Zaved., Aviats. Tekh., No. 1, 87–94 (1965).

    Google Scholar 

  19. V. L. Dorot and M. Kh. Strelets, “Porous cooling in a supersonic turbulent boundary layer,” Teplofiz. Vys. Temp.,11, No. 3, 551–560 (1973).

    Google Scholar 

  20. V. D. Daragan, A. Yu. Kotov, G. N. Mel'nikov, and A. V. Pustogarov, “The study of the performance from porous cooling,” Inzh.-Fiz. Zh.,39, No. 3, 468–474 (1980).

    Google Scholar 

  21. D. Burch, R. Allen, and B. Pivey, “The temperature distribution in a porous layer under nonstationary conditions after sudden heating and coolant flushing,” Teploperedacha, Ser. C,98, No. 2, 78–83 (1976).

    Google Scholar 

  22. L. A. Yaskin, “Coolant heat transfer with a permeable wall and the performance from internal cooling under conditions of radiative heating,” Doctoral Dissertation, Moscow (1974).

  23. B. M. Galitseiskii and A. N. Ushakov, “Heat transfer in porous materials,” Inzh.-Fiz. Zh.,41, No. 3, 428–435 (1981).

    Google Scholar 

  24. F. Bailey and A. Turner, “Porous cooling of gas-turbine components,” Proc. Am. Soc. Mech. Eng., Ser. A,92, No. 4, 1–9 (1970).

    Google Scholar 

  25. M. F. Zhukov, A. S. An'shakov, I. M. Zasypkin, et al., Electric-Arc Generators with Inserts between Electrodes [in Russian], Nauka, Novosibirsk (1981).

    Google Scholar 

  26. V. A. Maiorov, “Flow and heat transfer in a single-phase coolant in a porous cermet material,” Teploenergetika, No. 1, 64–70 (1978).

    Google Scholar 

  27. V. A. Maiorov, “Thermal conductivities of porous metals,” in: Heat and Mass Transfer in Systems Containing Porous Components [in Russian], ITMO Akad. Nauk BSSR, Minsk (1981), pp. 121–130.

    Google Scholar 

  28. J. K. Aggarwal and M. A. Holligsworth, “Heat transfer for turbulent flow with suction in a porous tube,” Int. J. Heat Mass Transfer,16, No. 3, 591–609 (1973).

    Google Scholar 

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Translated from Inzhenerno-Fizicheskii Zhurnal, Vol. 47, No. 4, pp. 587–594, October, 1984.

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Maiorov, V.A. Boundary conditions for a forced transpiration cooling system. Journal of Engineering Physics 47, 1170–1176 (1984). https://doi.org/10.1007/BF00869912

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