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Tytuł artykułu

Acoustic energy distribution in space around the pipe outlet

Autorzy
Identyfikatory
Warianty tytułu
Konferencja
XIV International Conference Noise Control'07 (3-6.06.2007, Elbląg, Poland)
Języki publikacji
EN
Abstrakty
EN
Visualization system, by serving a dual role as a provider of exploration and exposition capabilities, have became indispensable to the analysis of computational fluid dynamics (CFD) results. In the acoustical practice, up until the last two decades, the study of vectors acoustic fields and noise flow visualisation are rather seldom. But direct measurement of the flow intensity sound as the energetic fields and graphically description of the results, can explain a diffraction and scattering phenomena occur on the real noise sources and solved in practical way a lot of engineering problems. Based on the research with intensity technique and using selected visualizations methods, in the publication are demonstrate in graphical form the sound intensity effects in the space around outlet region of cylindrical pipe. The duct model have a partly square and barrel shaped cross-section. The outlet research space was scanning with intensity probe measured the x, y and z components of sound intensity vector. Direct measurement of the acoustic power flow around outlet can explain all diffraction and scattering phenomena occur in this region and the noise generated by inside flow and around outlet of duct is an environmental concern in engineering practice.
Słowa kluczowe
Rocznik
Strony
387--397
Opis fizyczny
Bibliogr. 13. poz., rys.
Twórcy
autor
  • Szczecin University of Technology, Faculty of Maritime Technology, Applied Vibroacoustics Department, Al. Piastów 41, 71-065 Szczecin, Poland, weyna@ps.pl
Bibliografia
  • [1] CRIGHTON D. G. et al., Modern Methods in Analytical Acoustics, Springer-Verlag, London 1966. [2] DICKINSON R. R., A unifield approach to the design of visualization software for the analysis of field problems, Proc. Three-dimensional Visualization and Display Technologies, pp. 173.180, Spie 1989.
  • [3] FILIPPI P. [Ed.], Theoretical Acoustics and Numerical Techniques, Springer-Verlag, Wien 1983.
  • [4] GERALD-YAMASAKI M., Visualization of Computational Fluid Dynamics, Comp. Fluid Dyn. - Rev., 1995.
  • [5] HAFEZ M., et al., Computational Fluid Dynamics Review, John Wiley & Sons, Chichester 1995.
  • [6] MA K. L., SMITH P. J., Cloud Tracing in Convencion Diffusion Systems, Proc. of Visualization'93, pp. 253.260, San Jose 1993.
  • [7] MORSE P.M., INGARD K. U., Theoretical Acoustics, McGraw-Hill, New York 1968.
  • [8] MUNSON B. R., et al., Fundamentals of Fluid Mechanics, Wiley and Sons, New York 1994.
  • [9] SCHROEDER W., et al., The Stream Polygon: a Technique for 3D Vector Field Visualization, Proc. of Visualization'91, pp. 26.32, San Diego 1991.
  • [10] WILLIAMS E. G., Fourier Acoustics . Sound radiation and near field holography, Academic Press, San Diego, London, New York 1999.
  • [11] DE BREE H-E., et al., Three-dimensional sound intensity measurement using microflown particle velocity sensors, MEMS'99, Orlando 1999.
  • [12] WEYNA S., An image of the energetic acoustic field in a parallelepipeded room models, Acta Acustica, 82, 72.81 (1996).
  • [13] WEYNA S., Identifocation of reflection and scattering effects in real acoustic flow field, Archives of Acoustics, 28, 3, 191.203 (2003).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT8-0009-0047
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