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References

Published online by Cambridge University Press:  05 January 2015

Michael Howe
Affiliation:
Boston University
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Publisher: Cambridge University Press
Print publication year: 2014

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References

Abramowitz, M. and Stegun, I. A. 1970. Handbook of Mathematical Functions. Ninth corrected printing, U.S. Department of Commerce, National Bureau of Standard Applied Mathematics Series No. 55.Google Scholar
Baker, B. B. and Copson, E. T. 1969. The Mathematical Theory of Huygens' Principle. Second edition. Oxford: Oxford University Press.
Batchelor, G. K. 1967. An Introduction to Fluid Dynamics. Cambridge: Cambridge University Press.Google Scholar
Birkhoff, G. 1955. Hydrodynamics – A Study in Logic, Fact and Similitude. New York: Dover Publications (republication of edition published by Princeton University Press, 1950).Google Scholar
Birkhoff, G. and Zarantonello, E. H. 1957. Jets, Wakes and Cavities. New York: Academic Press.Google Scholar
Crighton, D. G. 1972. Radiation from vortex filament motion near a half plane. Journal of Fluid Mechanics 51: 357–62.CrossRefGoogle Scholar
Crighton, D. G. 1975. Basic principles of aerodynamic noise generation. Progress in Aerospace Sciences 16: 31–96.CrossRefGoogle Scholar
Crighton, D. G. 1985. The Kutta condition in unsteady flow. Annual Reviews of Fluid Mechanics 17: 411–45.CrossRefGoogle Scholar
Crighton, D. G., Dowling, A. P., Ffowcs Williams, J. E., Heckl, M. and Leppington, F. G. 1992. Modern Methods in Analytical Acoustics (Lecture Notes). London: Springer-Verlag.CrossRefGoogle Scholar
Cummings, A. 1984. Acoustic nonlinearities and power losses at orifices. American Institute of Aeronautics and Astronautics Journal 22: 786–92.CrossRefGoogle Scholar
Curle, N. 1955. The influence of solid boundaries upon aerodynamic sound. Proceedings of the Royal Society of LondonA231:505–14.Google Scholar
Dowling, A. P. and Ffowcs Williams, J. E. 1983. Sound and Sources of Sound. Chichester, UK: Ellis Horwood.Google Scholar
Fant, G. 1960. Acoustic Theory of Speech Production. The Hague: Mouton.Google Scholar
Ffowcs Williams, J. E. and Hawkings, D. L. 1969. Sound generation by turbulence and surfaces in arbitrary motion. Philosophical Transactions of the Royal Society of LondonA264:321–42.Google Scholar
Ffowcs Williams, J. E. and Hall, L. H. 1970. Aerodynamic sound generation by turbulent flow in the vicinity of a scattering half-plane. Journal of Fluid Mechanics 40: 657–70.Google Scholar
Ffowcs Williams, J. E. 1974. Sound production at the edge of a steady flow. Journal of Fluid Mechanics 66: 791–816.Google Scholar
Fock, V. A. 1941. A theoretical investigation of the acoustical conductivity of a circular aperture in a wall put across a tube. Comptes Rendus (Doklady) de I'Academie des Sciences de l'URSS 31: 875–8.Google Scholar
Goldstein, M. E. 1976. Aeroacoustics. New York: McGraw-Hill.Google Scholar
Goldstein, S. 1960. Lectures on Fluid Mechanics. New York: Interscience.Google Scholar
Gurevich, M. I. 1965. Theory of Jets in Ideal Fluids. New York: Academic Press.Google Scholar
Hadamard, J. 1952. Lectures on Cauchy's Problem in linear partial differential equations. New York: Dover Publications.Google Scholar
Howe, M. S. 1975. The generation of sound by aerodynamic sources in an inhomogeneous steady flow. Journal of Fluid Mechanics 67: 579–610.CrossRefGoogle Scholar
Howe, M. S. 1975. Contributions to the theory of aerodynamic sound, with application to excess jet noise and the theory of the flute. Journal of Fluid Mechanics 71: 625–73.CrossRefGoogle Scholar
Howe, M. S. 1989. On unsteady surface forces, and sound produced by the normal chopping of a rectilinear vortex. Journal of Fluid Mechanics 206: 131–53.CrossRefGoogle Scholar
Howe, M. S. 1995. On the force and moment exerted on a body in an incompressible fluid, with application to rigid bodies and bubbles at high and low Reynolds numbers. Quarterly Journal of Mechanics and Applied Mathematics 48: 401–26.CrossRefGoogle Scholar
Howe, M. S. 1998. Acoustics of Fluid-Structure Interactions. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Howe, M. S. 2003. Theory of Vortex Sound. Cambridge: Cambridge University Press.Google Scholar
Huang, Z. 2014. On the Sound Produced by a Synthetic Jet Device. Master of Science thesis, Boston University, Department of Mechanical Engineering.Google Scholar
Kelvin, Lord. 1867. On vortex motion. Transactions of the Royal Society of Edinburgh 25: 217–60.Google Scholar
Kelvin, Lord. 1867. On vortex atoms. Philosophical Magazine 34: 15–24.Google Scholar
Kelvin, W. T. and Tate, P. G. 1879. Treatise on Natural Philosophy. Cambridge: Cambridge University Press.Google Scholar
Lamb, Horace. 1932. Hydrodynamics. Sixth edition. Cambridge: Cambridge University Press.Google Scholar
Landau, L. D. and Lifshitz, E. M. 1987. Fluid Mechanics. Second edition. Oxford: Pergamon.Google Scholar
Lebedeva, I. V. and Grushin, A. E. 2003. Amplitude and frequency characteristics of acoustic jets. Acoustical Physics 49: 300–4.CrossRefGoogle Scholar
Levine, H. and Schwinger, J. 1948. On the radiation of sound from an unflanged circular pipe. Physical Review 73: 383–406.CrossRefGoogle Scholar
Lighthill, M. J. 1952. On sound generated aerodynamically. Part I: General theory. Proceedings of the Royal Society of London A211: 564–87.Google Scholar
Lighthill, M. J. 1958. An Introduction to Fourier Analysis and Generalised Functions. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Lighthill, James. 1978. Waves in Fluids. Cambridge: Cambridge University Press.Google Scholar
Milne-Thomson, L. M. 1968. Theoretical Hydrodynamics. Fifth edition. London: Macmillan.CrossRefGoogle Scholar
Möhring, W. 1978. On vortex sound at low Mach number. Journal of Fluid Mechanics 85: 685–91.CrossRefGoogle Scholar
Möhring, W. 1980. Modelling low Mach number noise. In Mechanics of Sound Generation in Flows, ed. E.-A., Müller, pp. 85–96. Berlin: Springer-Verlag.Google Scholar
Noble, B. 1958. Methods Based on the Wiener-Hopf Technique. London: Pergamon Press.Google Scholar
Pierce, A. D. 1989. Acoustics: An Introduction to Its Principles and Applications. Woodbury, New York: American Institute of Physics.Google Scholar
Powell, A. 1963. Mechanisms of Aerodynamic Sound Production. AGARD Report No. 466.
Powell, A. 1964. Theory of vortex sound. Journal of the Acoustical Society of America 36: 177–95.CrossRefGoogle Scholar
Rayleigh, Lord. 1870. On the theory of resonance. Philosophical Transactions of the Royal Society of London 161: 77–118.Google Scholar
Rayleigh, Lord. 1873. Harmonic echoes. Nature VIII, 319–20.Google Scholar
Rayleigh, Lord. 1945. Theory of Sound, Volumes 1 and 2. New York: Dover.Google Scholar
Saffman, P. G. 1993. Vortex Dynamics. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Sears, W. R. 1941. Some aspects of non-stationary airfoil theory and its practical applications. Journal of the Aeronautical Sciences 8: 104–8.CrossRefGoogle Scholar
Smith, B. L. and Glezer, A. 1998. The formation and evolution of synthetic jets. Physics of Fluids 10: 2281–97.CrossRefGoogle Scholar

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  • References
  • Michael Howe, Boston University
  • Book: Acoustics and Aerodynamic Sound
  • Online publication: 05 January 2015
  • Chapter DOI: https://doi.org/10.1017/CBO9781107360273.008
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  • References
  • Michael Howe, Boston University
  • Book: Acoustics and Aerodynamic Sound
  • Online publication: 05 January 2015
  • Chapter DOI: https://doi.org/10.1017/CBO9781107360273.008
Available formats
×

Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • References
  • Michael Howe, Boston University
  • Book: Acoustics and Aerodynamic Sound
  • Online publication: 05 January 2015
  • Chapter DOI: https://doi.org/10.1017/CBO9781107360273.008
Available formats
×