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Thermodynamic crisis of boiling

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Abstract

The procedure of calculation of the dynamics of rapid near-wall vaporization near a metallic heater is considered. A physical model of explosive boiling-up on bubbles of fluctuation origin is used. The model is limited to regimes when the motion of bubbles can be ignored and convective flows do not have enough time to develop. It is assumed that the dry spot under a bubble thermally insulates the heater wall. The heat removal is provided by the vicinity of the wetting line (WL). An analytical calculation has become possible on the basis of the well-known exact solution to the problem of the temperature field near the wetting line. Generalization of this solution has led to two new problems. These are the problem of allowance for the difference of the dynamic wetting angle from the right angle and that of allowance for thermocapillary flows. A numerical comparison of the results of calculation of the dry area with the use of different methods of allowing for the “tightness” effect in the dynamics of bubble generation and growth has been made. The evolution of bubbles from their generation to growth limited by the heat supply has been investigated. It has been found that the transition stage in the development of bubbles from Rayleigh to thermal ones is of considerable importance in the processes of explosive boiling-up. The dynamics of change in the dry area and wetting line length prior to the stage of bubble merging into a vapor film has been calculated. A condition of passage of the heat flux through a maximum is found. The applicability of the idea of thermodynamic crisis to calculations of miniature devices is justified. The problem of constructing a model to calculate the interphase surface shape near the wetting line under a developed thermocapillary flow and considerable reactive forces of the vapor flow is formulated. The model is in good agreement with the results of experiments on pulsed superheating of liquids at a rate higher than 1 K/μs.

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References

  1. Kutateladze, S.S., Hydromechanic Model of Heat Transfer Crisis in a Boiling Liquid at Free Convection, Zh. Tekh. Fiz., 1950, vol. 20, no. 11, pp. 1389–1392.

    Google Scholar 

  2. Skripov, V.P., Krizis kipeniya kak termodinamicheskii krizis (Boiling Crisis as a Thermodynamic Crisis), Sverdlovsk: Fizika, 1962.

    Google Scholar 

  3. Skripov, V.P., Metastabilnaya zhidkost’ (Metastable Liquid), Moscow: Nauka, 1972.

    Google Scholar 

  4. Pavlov, P.A., Dinamika vskipaniya sil’no peregretykh zhidkostei (Boiling Dynamics of Strongly Superheated Liquids), Sverdlovsk: UNTs AN SSSR, 1988.

    Google Scholar 

  5. Skripov, V.P., Sinitsyn, E.N., Pavlov, P.A. et al. Thermophysical Properties of Liquids in the Metastable (Superheated) State, New York: Gordon and Breach, 1988.

    Google Scholar 

  6. Mitrofanov, S.M. and Pavlov, P.A., Geometrical Characteristics of Nonstationary Crisis of Boiling, Teplofizika Vys. Temp., 2006, vol. 44, no. 5, pp. 726–733.

    Google Scholar 

  7. Pavlov, P.A. and Skripov, V.P., Vaporization at Pulsed Heating of the Liquid, Inzh.-Fiz. Zh., 1967, vol. 12, no. 4, pp. 503–507.

    Google Scholar 

  8. Polyanin, A.D. and Manzhirov, A.V., Spravochnik po integralnym uravneniyam (Reference Book on Integral Equations), Moscow: Fizmatgiz, 2003.

    Google Scholar 

  9. Kolmogorov, A.N., On the Statistic Theory of Metal Crystallization, Izv. Akad. Nauk SSSR, Ser. Matem., 1937, vol. 3, pp. 355–359.

    Google Scholar 

  10. Pavlov, P.A., Heat Transfer under the Conditions of Near-wall Explosive Boiling-up, J. Eng. Thermophys., 2003, vol. 12, no. 1, pp. 25–38.

    Google Scholar 

  11. Night, Ch.J., Theoretical Modeling of Fast Surface Evaporation with Counter Pressure, Rocket Engineering and Cosmonautics, 1979, vol. 17, pp. 81–86.

    Google Scholar 

  12. Carslaw, H.S. and Jaeger, J.C., Conduction of Heat in Solids, 2nd ed., Oxford: Clarendon Press, 1959.

    Google Scholar 

  13. Levich, V.G., Fiziko-khimicheskaya gidrodinamika (Physicochemical Hydrodynamics), Moscow: Gos. Izd. Fiz.-mat. Lit., 1959.

    Google Scholar 

  14. Polyanin, A.D., Spravochnik po lineinym uravneniyam matematicheskoi fiziki (Reference Book on Linear Equations of Mathematical Physics), Moscow: Fizmatlit, 2001.

    Google Scholar 

  15. Vinogradov, V.E. and Pavlov, P.A., Boiling-up of n-pentane in Rarefaction Wave, Teplofizika Vys. Temp., 1996, vol. 34, no. 1, pp. 35–39.

    Google Scholar 

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Correspondence to P. A. Pavlov.

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Pavlov, P.A. Thermodynamic crisis of boiling. J. Engin. Thermophys. 16, 145–154 (2007). https://doi.org/10.1134/S181023280703006X

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