It has recently been proposed that the effects of structural vibrations on the radiated sound of brass wind instruments may be attributable to axial modes of vibration with mode shapes that contain no radial nodes [Kausel, Chatziioannou, Moore, Gorman, and Rokni, J. Acoust. Soc. Am. 137, 3149–3162 (2015)]. Results of experiments are reported that support this theory. Mechanical measurements of a trumpet bell demonstrate that these axial modes do exist in brass wind instruments. The quality factor of the mechanical resonances can be on the order of 10 or less, making them broad enough to encompass the frequency range of previously reported effects attributed to bell vibrations. Measurements of the input impedance show that damping bell vibrations can result in impedance changes of up to 5%, in agreement with theory. Measurements of the acoustic transfer function demonstrate that the axial vibrations couple to the internal sound field as proposed, resulting in changes in the transfer function of approximately 1 dB. In agreement with theory, a change in the sign of the effect is observed at the frequency of the structural resonance.
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August 2015
August 31 2015
Axial vibrations of brass wind instrument bells and their acoustical influence: Experiments Available to Purchase
Thomas R. Moore;
Thomas R. Moore
a)
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
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Britta R. Gorman;
Britta R. Gorman
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
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Michelle Rokni;
Michelle Rokni
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
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Wilfried Kausel;
Wilfried Kausel
Institute of Music Acoustics (Wiener Klangstil), University of Music and Performing Arts
, Vienna, Austria
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Vasileios Chatziioannou
Vasileios Chatziioannou
Institute of Music Acoustics (Wiener Klangstil), University of Music and Performing Arts
, Vienna, Austria
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Thomas R. Moore
a)
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
Britta R. Gorman
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
Michelle Rokni
Department of Physics,
Rollins College
, Winter Park, Florida 32789, USA
Wilfried Kausel
Institute of Music Acoustics (Wiener Klangstil), University of Music and Performing Arts
, Vienna, Austria
Vasileios Chatziioannou
Institute of Music Acoustics (Wiener Klangstil), University of Music and Performing Arts
, Vienna, Austria
a)
Electronic mail: [email protected]
J. Acoust. Soc. Am. 138, 1233–1240 (2015)
Article history
Received:
May 01 2015
Accepted:
July 23 2015
Citation
Thomas R. Moore, Britta R. Gorman, Michelle Rokni, Wilfried Kausel, Vasileios Chatziioannou; Axial vibrations of brass wind instrument bells and their acoustical influence: Experiments. J. Acoust. Soc. Am. 1 August 2015; 138 (2): 1233–1240. https://doi.org/10.1121/1.4928138
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