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Experimental Study of a Free Two-Phase Flow Generated by Spraying of Water in Air Using a Mechanical Injector

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Abstract

The basis of the method for calculating the processes of heat and/or mass transfer in a two-phase gas-droplet system consists of equations describing the hydrodynamics of such a system, taking into account the interfacial interaction. Knowledge and understanding of the mechanism of interaction of phases in a two-phase flow, which is created by spraying a liquid in a gas, is definitely not sufficient (as will be shown below). This is one of the main reasons for the abovementioned problem (see Chap. 1).

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References

  1. Rusanov, A. A., et al. (1969). Ochistka dymovykh gazov v promyshlennoy energetike (Cleaning of flue gases in industrial power engineering). Moscow: Energia.

    Google Scholar 

  2. Shifrin, K. S., & Golikov, V. I. (1961). Determination of the droplet spectrum by the method of small angles. In Investigation of clouds, precipitation and thunderstorm electricity. Proceedings of the sixth interdepartmental conf. (Izd. AN SSSR, Moscow), pp. 266–277.

    Google Scholar 

  3. Shifrin, K. S., & Kolmakov, I. B. (1967). Calculation of the particle size spectrum from the current and the integrand values of the indicatrix in the region of small angles. Izvestiya AN SSSR. Fizika Atmosfery i Okeana (Physics of the Atmosphere and the Ocean), 3(12), 1271–1279.

    Google Scholar 

  4. Bayvel, L. P., & Lagunov, A. S. (1977). Measurement and control of the dispersion of particles by the light scattering method. Moscow: Energia.

    Google Scholar 

  5. Dieck, R. H., & Roberts, R. L. (1970). The determination of the sauter mean droplet diameter in fuel nozzle sprays. Applied Optics, 9, 2007–2014.

    Article  Google Scholar 

  6. Zimin, E. P., & Krugersky, A. M. (1977). Integral characteristics of light scattering by polydisperse particles. Optika i Spektroskopiya (Optics and Spectroscopy), 43(6), 1144–1149.

    Google Scholar 

  7. Zakharchenko, V. М. (1975). Measurement of the flow velocity by a laser one-beam time-of-flight method. Uchenyye zapiski TsAGI (Scientific Notes of CAHI), 6(2), 147–157.

    Google Scholar 

  8. Zhigulev, S. V. (1982). On one version of the laser single-beam time-of-flight method for measuring the flow velocity. Uchenyye zapiski TsAGI (Scientific Notes of CAHI), 13(5), 142–147.

    Google Scholar 

  9. Simakov, N. N. (2004). Crisis of Hydrodynamic Drag of Drops in the Two-Phase Turbulent Flow of a Spray Produced by a Mechanical Nozzle at Transition Reynolds Numbers. Zhurnal Tekhnicheskoj Fiziki, 74(2), 46. [Tech. Phys. 49, 188 (2004)].

    Google Scholar 

  10. Simakov, N. N., & Simakov, A. N. J. (2005). Anomaly of gas drag force on liquid droplets in a turbulent two-phase flow produced by a mechanical jet sprayer at intermediate Reynolds numbers. Applied Physics, 97, 114901.

    Google Scholar 

  11. Kremlevsky, P. P. (1980). Measurement of flow and quantity of liquid, gas and steam. Moscow: Izd-vo Standartov.

    Google Scholar 

  12. Povkh, I. L. (1969). Technical hydromechanics. Leningrad: Mashinostroyeniye.

    Google Scholar 

  13. Katalov, V. I., et al. (1975). Experimental determination of the velocity of a continuous phase in a dispersed flow of a free spray flow of a mechanical injector. In Massoobmennye i teploobmennyye protsessy khim. tekhnol. (Mass exchange and heat exchange processes of chemical technology) (YaPI, Yaroslavl), pp. 13–16.

    Google Scholar 

  14. Leidenforst, W., & Ku, J. (1960). New high-sensitivity micromanometer. Transl. from English, Instruments for scientific research, No. 10, pp. 76–78.

    Google Scholar 

  15. Gelperin, N. I., et al. (1974). Spraying liquid with mechanical injectors. Teor Osnovy Khim Tekhnol (Theory Fundamentals of Chemical Engineering), 8(3), 463–467.

    Google Scholar 

  16. Aniskin, S. V. (1978). Similarity of the density of irrigation fluid sprayed by a mechanical injector SGP. In Protection of the environment from pollution by industrial emissions in pulp and paper industry (LTA, LTITSBP, Leningrad), No. 6, pp. 165–168.

    Google Scholar 

  17. Mikhailov, E. A., et al. (1981). Development of a methodology for calculating the geometric dimensions of nozzles with a given character of the distribution of specific fluid flows (Ruk. dep. ONITEKHIM, 20.04.1981, Yaroslavl), p. 6.

    Google Scholar 

  18. Mikhailov, E. A. (1982). Dissertation, Moscow Institute of Fine Chemical Technologies named after M.V. Lomonosov.

    Google Scholar 

  19. Pazhi, D. G., & Galustov, V. S. (1984). Fundamentals of spraying technology. Moscow: Khimiya.

    Google Scholar 

  20. Zimin, E. P., et al. (1973). Optical measurements of the parameters of the dispersed condensed phase of two-phase flows. Teplofizika Vysokikh Temperatur (Thermal Physics of High Temperatures), 11(15), 1037–1043.

    MathSciNet  Google Scholar 

  21. Zimin, E. P., et al. (1975). Determination of the volume concentration of a dispersed phase from the measurement of the scattering of light at two angles. Optika i Spektroskopiya (Optics and Spectroscopy), 39(1), 155–161.

    Google Scholar 

  22. Pazhi, D. G., & Galustov, V. S. (1979). Sprayers of liquid. Moscow: Khimiya.

    Google Scholar 

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Simakov, N.N. (2020). Experimental Study of a Free Two-Phase Flow Generated by Spraying of Water in Air Using a Mechanical Injector. In: Liquid Spray from Nozzles. Innovation and Discovery in Russian Science and Engineering. Springer, Cham. https://doi.org/10.1007/978-3-030-12446-5_2

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  • DOI: https://doi.org/10.1007/978-3-030-12446-5_2

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-030-12445-8

  • Online ISBN: 978-3-030-12446-5

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