Sound generation by turbulent two-phase flow

Abstract : Sound generation by turbulent two-phase flow is considered by the methods of Lighthill's theory of aerodynamic noise. An inhomogeneous wave equation is derived, in which the effects of one phase on the other are represented by monopole, dipole and quadrupole distributions. The resulting power outputs are obtained for the case of a distribution of small air bubbles in water. The monopole radiation resulting from volumetric response of the bubbles to the turbulent pressure field overwhelms that from the quadrupoles equivalent to the turbulent flow, the increase in acoustic power output being about 70 dB for a volume concentration of 10%. The monopole radiation occurs through the forced response of the bubbles at the turbulence frequency; resonant response is shown to be impossible when the excitation is due to turbulence alone. Surface radiation arises from the edge of a cloud of bubbles. This radiation is important when the region containing bubbles is in the form of a sheet with thickness smaller than the length scale of the turbulent motion. Dipole radiation is also considered, and found to be negligible whenever monopole sources are present. In the case of a dusty gas, only dipole and quadrupole sources are present, and here it is shown that the dipole radiation will dominate that from the turbulence quadrupoles when the Mach number of the flow is less than the mass concentration of dust. (Author)

[1]  M. J. Lighthill,et al.  On the energy scattered from the interaction of turbulence with sound or shock waves , 1953, Mathematical Proceedings of the Cambridge Philosophical Society.

[2]  N. Curle The influence of solid boundaries upon aerodynamic sound , 1955, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.

[3]  P. Saffman,et al.  On the stability of laminar flow of a dusty gas , 1962, Journal of Fluid Mechanics.

[4]  M. Lighthill On sound generated aerodynamically II. Turbulence as a source of sound , 1954, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.

[5]  G. Batchelor,et al.  The theory of homogeneous turbulence , 1954 .

[6]  M. Strasberg,et al.  Gas Bubbles as Sources of Sound in Liquids , 1956 .

[7]  M. Lighthill On sound generated aerodynamically I. General theory , 1952, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.