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Local admittance model for acoustic scattering from a cylindrical shell with many internal oscillators
1.J. A. Bucaro, D. M. Photiadis, and B. H. Houston, “Acoustic scattering from a submerged shell with many internal oscillators,” Proceedings of the ASME, Noise Control and Acoustics Division, NCA 22, 87–92 (1996).
2.D. M. Photiadis, J. A. Bucaro, and B. H. Houston, “The effect of internal oscillators on the acoustic response of a submerged shell,” J. Acoust. Soc. Am. 101, 895–899 (1997).
3.M. L. Rumerman, “Contribution of membrane wave reradiation to scattering from finite cylindrical steel shells in water,” J. Acoust. Soc. Am. 93, 55–65 (1993).
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5.P. M. Morse and K. U. Ingard, Theoretical Acoustics (Princeton U. P., Princeton, NJ, 1986), p. 321.
6.See, for example, E. Merzbacher, Quantum Mechanic (Wiley, New York, 1961), pp. 226–228.
7.P. M. Morse and K. U. Ingard, Ref. 5, pp. 259–263.
8.M. J. Skolnik, Introduction to Radar Systems (McGraw-Hill, New York, 1962), p. 43.
9.R. C. Houts, Signal Analysis in Linear Systems (Holt, Rinehart and Winston, Philadelphia, 1991), p. 66.
10.Y. W. Lee, Statistical Theory of Communication (Wiley, New York, 1960), p. 208.
11.See, for example, E. Yamashita, Analysis Methods for Electromagnetic Wave Problems (Artech, Boston, 1990), pp. 308–310.
12.See, for example, L. Cremer and M. Heckl, Structure-Borne Sound (Springer-Verlag, New York, 1985), p. 289.
13.C. B. Burroughs, “Acoustic radiation from fluid-loaded infinite circular cylinders with doubly periodic ring support,” J. Acoust. Soc. Am. 75, 715–722 (1984).
14.E. H. Kennard, “The new approach to shell theory: Circular cylinders,” J. Appl. Mech. 20, 33–40 (1983).
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