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Features of Nonlinear Sound Propagation in Vibrationally Excited Gases

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Weakly nonlinear sound propagation in a gas where molecular vibrational relaxation takes place is studied. New equations which govern the sound in media where the irreversible relaxation may take place are derived and discussed. Their form depends on the regime of excitation of oscillatory degrees of freedom, equilibrium (reversible) or non-equilibrium (irreversible), and on the comparative frequency of the sound in relation to the inverse time of relaxation. Additional nonlinear terms increase standard nonlinearity of the high-frequency sound in the equilibrium regime of vibrational excitation and decrease otherwise. As for the nonlinearity of the low-frequency sound, the conclusions are opposite. Appearance of a non-oscillating additional part which is a linear function of the distance from the transducer is an unusual property of nonlinear distortions of harmonic at the transducer high-frequency sound.
Twórcy
  • Gdansk University of Technology Faculty of Applied Physics and Mathematics Narutowicza 11/12, 80-233 Gdańsk, Poland
autor
  • Ship Design and Research Center Wały Piastowskie 1, 80-958 Gdańsk, Poland
Bibliografia
  • 1. Gordiets A.I., Osipov A.I., Stupochenko E.V., Shelepin L.A. (1973), Vibrational relaxation in gases and molecular lasers, Soviet Physics Uspekhi, 15, 6, 759-785.
  • 2. Kogan Ye.A., Molevich N.E. (1986), Acoustical wave in non equilibrium molecular gas, Russian Physics Journ, 29, 7, 53-58.
  • 3. Makaryan V.G., Molevich N.E. (2007), Stationary shock waves in nonequilibrium media, Plasma Sources Sci. Technol., 16, 124-131.
  • 4. Molevich N.E. (2003), Sound velocity dispersion and second viscosity in media with nonequilibrium chemical reactions, Acoustical Physics, 49, 2, 229-232.
  • 5. Molevich N.E. (2004), Acoustical properties of nonequilibrium media 42 AIAA Aerospace Sciences Meeting and Exhibit (Reno, NV), Paper AIAA-2004-1020.
  • 6. Molevich N.E., Klimov A.I., Makaryan V.G. (2005), Influence of thermodynamic nonequilibrium on acoustical properties of gas, Intern. Journ. Aeroacous- tics, 4, 3-4, 345-355.
  • 7. Osipov A.I., Uvarov A.V. (1992), Kinetic and gas dynamic processes in nonequilibrium molecular physics, Sov. Phys. Usp., 35, 11, 903-923.
  • 8. Perelomova A. (2003), Acoustic radiation force and streaming caused by non-periodic acoustic source, Acta Acustica united with Acustica, 89, 754-763.
  • 9. Perelomova A. (2006), Development of linear projecting in studies of non-linear flow. Acoustic heating induced by non-periodic sound, Physics Letters A, 357, 42-47.
  • 10. Perelomova A. (2008), Acoustic heating in a weakly dispersive fluid flow, Acta Acustica, 94, 3, 382-387.
  • 11. Perelomova A. (2010a), Nonlinear generation of non-acoustic modes by low-frequency sound in a vibrationally relaxing gas, Canadian Journal of Physics, 88, 4, 293-300.
  • 12. Perelomova A. (2010b), Interaction of acoustic and thermal modes in the gas with nonequilibrium chemical reactions. Possibilities of acoustic cooling, Acta Acustica united with Acustica, 96, 43-48.
  • 13. Perelomova A. (2012), Nonlinear influence of sound on vibrational energy of molecules in relaxing gas, Archives of Acoustics, 37, 1, 89-96.
  • 14. Perelomova A., Wojda P. (2011), Generation of the vorticity motion by sound in a chemically reacting gas. Inversion of acoustic streaming in the non-equilibrium regime, Central European Journal of Physics, 9, 3, 740-750
  • 15. Rudenko O.V., Soluyan S.I. (1977), Theoretical foundations of nonlinear acoustics, Plenum, New York.
  • 16. Zeldovich Ya.B., Raizer Yu.P. (1966), Physics of shock waves and high temperature hydrodynamic phenomena, Academic Press, New York.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d956d9d5-4be8-4d1d-8c97-f4bcd0d92ab9
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