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Local model of plane acoustic waves propagation in multilayered infinite sandwich structures

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A local model for computing the coincidence frequencies and the transmission loss of multilayered infinite sandwich plates composed of isotropic layers is presented in the paper. The model is derived within the local theory of linear elastodynamics under assumption that only one component of the vector potential is equivalent to zero and after application of the Pythagorean theorem. Any simplifications concerning the structure have not been introduced. A passage from the acoustic model to some plate benchmark models is shown. Numerical results predicted by the model for homogeneous, three-layer sandwich and five-layer sandwich infinite-infinite plates are obtained and compared with the results predicted by other models existing in the literature. Both flexural and breathing waves are numerically analysed. Some conclusions of practical importance have also been formulated.
Rocznik
Strony
573--573
Opis fizyczny
–-598, Bibliogr. 28 poz.
Twórcy
Bibliografia
  • 1. M.D. Rao, Recent applications of viscoelastic damping for noise control in automobiles and commercial airplanes, Journal of Sound and Vibration, 262, 457–474, 2003.
  • 2. C. Grimwood, Complaints about poor sound insulation between dwellings in England and Wales, Applied Acoustics, 52, 211–223, 1997.
  • 3. X. Wang, A. Starlinger, R.J. Dean, J. Wieschermannk, The application of Sandwich components in the design of the new transrapid maglev TR08 vehicles, Proceedings of the 5th International Conference on Sandwich Construction, Vol. 2, 539–549, ETH Zurich, Switzerland, September 2000.
  • 4. S.W. Boyd, J.I. Blake, R.A. Shenoi, J. Mawella, Optimisation of steel-composite connections for structural marine applications, Composites: Part B, 39, 891–906, 2008.
  • 5. A.S. Herrmann, P.C. Zahlen I. Zuardy, Sandwich structures technology in commercial aviation, Proceedings of the 7th International Conference on Sandwich Construction, 13–26, Aalborg University, Denmark, August 2005.
  • 6. T. Matsumoto, M. Uchida, H. Sugaya, H. Tachibana, Development of multiple drywall with high sound insulation performance, Applied Acoustics, 67, 595–608, 2006.
  • 7. K. Renji, Sound transmission loss of unbounded panels in bending vibration considering transverse shear deformation, Journal of Sound and Vibration, 283, 478–486, 2005.
  • 8. E. Nilsson, A.C. Nilsson, Prediction and measurement of some dynamic properties of sandwich structures with honeycomb and foam cores, Journal of Sound and Vibration, 251, 409–430, 2002.
  • 9. S.V. Sorokin, Analysis of wave propagation in sandwich plates with and without heavy fluid loading, Journal of Sound and Vibration, 271, 1039–1062, 2004.
  • 10. S.V. Sorokin, N. Peake, On symmetry-breaking effects in propagation of waves in Sandwich plates with and without heavy fluid loading, Journal of Sound and Vibration, 295, 114–128, 2006.
  • 11. P. Thamburaj, J.Q. Sun, Effect of material and geometry on the sound and vibration transmission across a sandwich beam, ASME Journal of Vibration and Acoustics, 123, 205–212, 2001.
  • 12. P. Thamburaj, J.Q. Sun, Effect of material anisotropy on the sound and vibration transmission loss of sandwich aircraft structures, Journal of Sandwich Structures and Materials, 1, 76–92, 1999.
  • 13. T. Wang, V.S. Sokolinsky, S. Rajaram, S.R. Nutt, Assessment of sandwich models for the prediction of sound transmission loss in unidirectional sandwich panels, Applied Acoustics, 66, 245–262, 2005.
  • 14. J.A. Moore, Sound transmission loss characteristics of three-layer composite wall constructions. Ph.D. thesis, MIT, 1975.
  • 15. A.E. Jensen, A.F. Ingens, Thickness vibrations of sandwich plates and beams and delamination detection, Journal of Intelligent Material Systems and Structures, 10, 1999.
  • 16. R. Zhou, M.J. Crocker, Sound transmission loss of foam-filled honeycomb Sandwich panels using statistical energy analysis and theoretical and measured dynamic properties, Journal of Sound and Vibration, 329, 673–686, 2010.
  • 17. M.C. Bhattacharya, R.W. Guy, M.J. Crocker, Coincidence effect with sound waves in a finite plate, Journal of Sound and Vibration, 18, 157–169, 1971.
  • 18. K. Renji, P.S. Nair, S. Narayanan, Critical and coincidence frequencies of flat panels, Journal of Sound and Vibration, 205, 19–32, 1997.
  • 19. R.M. Jones, Mechanics of Composite Materials, McGraw-Hill, New York 1975.
  • 20. A.V. Metrikine, On casuality of the gradient elasticity models, Journal of Sound and Vibration, 297, 727–742, 2006.
  • 21. A. Paolozzi, I. Peroni, Response of aerospace sandwich panels to launch acoustic environment, Journal of Sound and Vibration, 196, 1–18, 1996.
  • 22. J. Szymczyk, Cz. Woźniak, Continuum modeling of laminates with slowly graded microstructure, Archives of Mechanics, 58, 445–448, 2006.
  • 23. J.D. Achenbach, Wave Propagation in Elastic Solids, North-Holland Publishing Company, Amsterdam, New York, Oxford 1973.
  • 24. J. Miklovitz, The Theory of Elastic Waves and Waveguides, North-Holland Publishing Company, Amsterdam, New York, Oxford 1978.
  • 25. M. Levinson, Free vibrations of a simply supported rectangular plate: an exact threedimensional linear elasticity solution, Journal of Sound and Vibration, 15, 283–291, 1985.
  • 26. S. Ivansson, I. Karasalo, Computation of wavenumbers using an adaptive windingnumber integral method with error control, Journal of Sound and Vibration, 161, 173–180, 1993.
  • 27. A.C. Nilsson, Wave propagation in and sound transmission through sandwich plates, Journal of Sound and Vibration, 138, 73–94, 1990.
  • 28. C.W. Bert, D.J. Wilkins Jr., W.C. Crisman, Damping in sandwich beams with shear flexible cores, ASME Journal of Engineering for Industry, 89, 662–670, 1967.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT4-0009-0058
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