John G. Webster (Editor) 's 41.Oceanic Engineering PDF

John G. Webster (Editor) 's 41.Oceanic Engineering PDF

By John G. Webster (Editor)

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The former uses drifting objects such as buoys or dyes. Although seemingly primitive, modern drifting buoys may use the global positioning system (GPS) for position updates and may employ satellite communication for data transfer providing exceptional data. Subsurface buoys may be tracked acoustically and fluorescent dye plumes may be detected at low concentration at great distance. Euler methods consist of dynamic and static sensors; for example, rotating vane devices such as the propeller and Savonius rotor, or static devices like the pressure plate, arrested rotor, and pitot tube.

25. 26. 27. 28. 29. 30. 31. L. E. Kinsler et al. , New York: Wiley, 1982. M. Junger D. , Cambridge, MA: MIT Press, 1986. J. F. Nye Physical Properties of Crystals, Oxford, UK: Clarendon Press, 1985, chap. 7. J. W. Young Optimization of acoustic receiver noise performance, J. Acous. Soc. , 61: 1471–1476, 1977. R. J. , New York: McGraw-Hill, 1975. F. Jona G. Shirane Ferroelectric Crystals, London: Oxford Press, 1962. K. H. Hellwege A. M. ) Landolt-Bornstein: Numerical Data and Functional Relationships in Science and Technology, Berlin: Springer-Verlag, 1981, vol.

Soc. , 45: 671–685, 1989. R. A. Nelson, Jr. L. H. Royster Development of a mathematical model of class V flextensional transducers, J. Acous. Soc. , 49: 1609–1620, 1970. K. Onitsuka et al. Metal-ceramic composite transducer, the ‘Moonie’, J. Intell. Mater. Syst. Structures, 6: 447–455, 1995. W. B. Carlson et al. Flexi-distortional piezoelectric composites, Ferroelectrics, 188: 11–20, 1996. Y. Yamashita et al. (Pb,Ca)((Co1/2 W1/2 ), Ti)O3 piezoelectric ceramics and their applications, Jpn. J. Appl.

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41.Oceanic Engineering by John G. Webster (Editor)


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