References
Adachi, S. and Sato, M. (1995). Time-domain simulation of sound production in the brass
instrument. J. Acoust. Soc. Am. 97, 3850–3861, https://doi.org/10.1121/1.412398.
Adachi, S. and Sato, M. (1996). Trumpet sound simulation using a two-dimensional lip vibration
model. J. Acoust. Soc. Am. 99, 1200–1209, https://doi.org/10.1121/1.414601.
Aliverti, A. (1996). Metodi et tecniche innovative per lo studio della meccanica respiratoria.
Doctoral dissertation, Politecnico di Milano, Milan, Italy.
Amir, N., Rosenhouse, G. and Shimony, U. (1995). A discrete model for tubular acoustic systems
with varying cross-section – the direct and inverse problem. Parts I and II: theory and
experiments. Acustica 81, 450–474.
Amir, N., Pagneux, V. and Kergomard, J. (1997). A study of wave propagation in varying crosssection waveguides by modal decomposition. Part II. Results. J. Acoust. Soc. Am. 101, 2504–
2517, https://doi.org/10.1121/1.419306.
Artim GmbH (2020). A-2230 Gänserndorf, Ziehrergasse 4, Austria. http://artim.at. Accessed April
2020.
Auregan, Y. and Depollier, C. (1995). Snoring: linear stability analysis and in-vitro experiments. J.
Sound Vib. 188, 39–54.
Ayers, R. D. (1998). New perspectives on brass instruments. Proc. International Symposium on
Musical Acoustics, Leavenworth, USA, 129–134.
Ayers, R. D. (2001). Basic tests for models of the lip reed. Proc. International Symposium on
Musical Acoustics, Perugia, Italy, 83–86.
Backus, J. (1974). Input impedance curves for the reed woodwind instruments. J. Acoust. Soc. Am.
56, 1266–1279, https://doi.org/10.1121/1.1903418.
Backus, J. (1976). Input impedance curves for the brass instruments. J. Acoust. Soc. Am. 60, 470–
480, https://doi.org/10.1121/1.381104.
Backus, J. and Hundley, T. C. (1966). Wall vibration in flue organ pipes and their effect on tone. J.
Acoust. Soc. Am. 39, 936–945, https://doi.org/0.1121/1.1909975.
Bahnert, H., Herzberg, T. and Schramm, H. (1986). Metallblasinstrumente, 2nd. Edn. Wilhelmshaven, Heinrichshofen.
Baines, A. (1976). Brass Instruments: their History and Development. London, Faber.
Balasubramanian, S., Chatziioannou, V. and Kausel, W. (2019). Analysis of axisymmetric structural vibrations in brass instruments. Acta Acust. united Ac. 105, 506–515, https://doi.org/10.
3813/AAA.919332.
Barbieri, P. (2013). Physics of Wind Instruments and Organ Pipes 1100-2010, Chap. C. Latina, Il
Levante Libreria.
Barclay, R. (1992). The art of the trumpet maker. Oxford University Press.
© Springer Nature Switzerland AG 2021
M. Campbell et al., The Science of Brass Instruments, Modern Acoustics and Signal
Processing, https://doi.org/10.1007/978-3-030-55686-0
419
Adachi, S. and Sato, M. (1995). Time-domain simulation of sound production in the brass
instrument. J. Acoust. Soc. Am. 97, 3850–3861, https://doi.org/10.1121/1.412398.
Adachi, S. and Sato, M. (1996). Trumpet sound simulation using a two-dimensional lip vibration
model. J. Acoust. Soc. Am. 99, 1200–1209, https://doi.org/10.1121/1.414601.
Aliverti, A. (1996). Metodi et tecniche innovative per lo studio della meccanica respiratoria.
Doctoral dissertation, Politecnico di Milano, Milan, Italy.
Amir, N., Rosenhouse, G. and Shimony, U. (1995). A discrete model for tubular acoustic systems
with varying cross-section – the direct and inverse problem. Parts I and II: theory and
experiments. Acustica 81, 450–474.
Amir, N., Pagneux, V. and Kergomard, J. (1997). A study of wave propagation in varying crosssection waveguides by modal decomposition. Part II. Results. J. Acoust. Soc. Am. 101, 2504–
2517, https://doi.org/10.1121/1.419306.
Artim GmbH (2020). A-2230 Gänserndorf, Ziehrergasse 4, Austria. http://artim.at. Accessed April
2020.
Auregan, Y. and Depollier, C. (1995). Snoring: linear stability analysis and in-vitro experiments. J.
Sound Vib. 188, 39–54.
Ayers, R. D. (1998). New perspectives on brass instruments. Proc. International Symposium on
Musical Acoustics, Leavenworth, USA, 129–134.
Ayers, R. D. (2001). Basic tests for models of the lip reed. Proc. International Symposium on
Musical Acoustics, Perugia, Italy, 83–86.
Backus, J. (1974). Input impedance curves for the reed woodwind instruments. J. Acoust. Soc. Am.
56, 1266–1279, https://doi.org/10.1121/1.1903418.
Backus, J. (1976). Input impedance curves for the brass instruments. J. Acoust. Soc. Am. 60, 470–
480, https://doi.org/10.1121/1.381104.
Backus, J. and Hundley, T. C. (1966). Wall vibration in flue organ pipes and their effect on tone. J.
Acoust. Soc. Am. 39, 936–945, https://doi.org/0.1121/1.1909975.
Bahnert, H., Herzberg, T. and Schramm, H. (1986). Metallblasinstrumente, 2nd. Edn. Wilhelmshaven, Heinrichshofen.
Baines, A. (1976). Brass Instruments: their History and Development. London, Faber.
Balasubramanian, S., Chatziioannou, V. and Kausel, W. (2019). Analysis of axisymmetric structural vibrations in brass instruments. Acta Acust. united Ac. 105, 506–515, https://doi.org/10.
3813/AAA.919332.
Barbieri, P. (2013). Physics of Wind Instruments and Organ Pipes 1100-2010, Chap. C. Latina, Il
Levante Libreria.
Barclay, R. (1992). The art of the trumpet maker. Oxford University Press.
© Springer Nature Switzerland AG 2021
M. Campbell et al., The Science of Brass Instruments, Modern Acoustics and Signal
Processing, https://doi.org/10.1007/978-3-030-55686-0
419
