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Modelling of Green function in a rectangular room based upon the geometrical-filtration model

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EN
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EN
Significant problem in room acoustic is evaluating an acoustic quality of projected and modernized rooms. Estimation of room impulse response giving posibility to evaluate the subjective and objective room acoustic properties and hence to run the room simulation tests (the sound sources configuration, the room planning) in order to reach optimal solutions, which meet the given criterion. To this end it is necessary to work out an impulse response calculating algorithm for a digital room model. The Green's function is the solution of wave equation then give consideration to source and receiver positions. For inhomogenous wave equation with function $delta(x-y)?(t-T) as excitation, Green's function corresponds to the impulse response of linear system described by this equation. This paper presents a Green function (impulse response) approximation method based on combined room acoustics model. Sound propagation paths are calculated using geometrical acoustics model (image sources method) while events like reflection from bounding walls, air absorption and delay between events are modeled as digital filters. Results of room impulse response approximation model are compared with analytical solution for rectangular room.
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  • AGH University of Science and Technology, Department of Mechanics and Vibroacoustics, Al. Mickiewicza 30, 30-059 Kraków, Poland, marczuk@agh.edu.pl
Bibliografia
  • [1] BISTAFA S. R., MORRISSEY J.W., Numerical solution of the acoustics eigenvalue equation in the rectangular room with arbitrary (uniform) wall impedances, Journal of Sound and Vibration, 263 (2003).
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  • [4] HUOPANIEMI J., SAVIOJA L., KARJALAINEN M., Modeling of reflections and air absorption in acoustical spaces – a digital filter design approach, IEEE Workshop on Application of Signal Processing to Audio and Acoustics, New Paltzo, New York 1997.
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  • [6] MARCZUK R., Discrete and continuous models of acoustic systems impulse response [in Polish], PhD. thesis, Akademia Górniczo-Hutnicza, Kraków 2001.
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  • [9] ŁOPACZ H., Design of room impulse response models [in Polish], IX – Structural Acoustics & Mechanics for Enviromental Protection, Kraków – Zakopane 2000.
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bwmeta1.element.baztech-article-BAT3-0037-0035
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