Books on the topic 'Plane Wake'

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1

Papageorgiou, Demetrious T. Linear instability of supersonic plane wakes. Hampton, Va: ICASE, 1989.

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2

Burmaster, Charles Lyman. Reciprocity calibration in a plane wave resonator. Monterey, Calif: Naval Postgraduate School, 1985.

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3

IEEE Antennas and Propagation Society., ed. The plane wave spectrum representation of electromagnetic fields. New York: Institute of Electrical and Electronics Engineers, 1996.

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4

Who will feed China?: Wake-up call for a small planet. London: Earthscan, 1995.

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5

Brown, Lester Russell. Who will feed China?: Wake-up call for a small planet. New York, N.Y: W.W. Norton, 1995.

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6

Who will feed China?: Wake-up call for a small planet. New York: W.W. Norton & Co., 1995.

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7

Moments out of place: Contemplations in haiku and tanka. Bloomington, IN, USA: AuthorHouse, 2015.

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8

The third wave of asbestos disease: Asbestos in place. Washington, D.C: Workplace Health Fund, 1990.

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9

Walenta, Z. A. Mach reflection of a moving, plane shock wave under rarefied flow conditions. Warsaw, Poland: Dept. of Fluid Mechanics, Institute of Fundamental Technological Research, Polish Academy of Sciences, 1986.

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10

Harvey, J. K. Dispersion in the wakes of aircraft: An investigation of the effects of a ground plane on trailing vortices. London: Imperial College of Science and Technology, 1986.

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11

1948-, Stoffa Paul L., ed. Tau-p, a plane wave approach to the analysis of seismic data. Dordrecht [Netherlands]: Kluwer Academic Publishers, 1989.

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12

Kisiel, Thomas K. Study of plane wave impingement on a thin plate capable of deformation. Monterey, Calif: Naval Postgraduate School, 1991.

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13

Stoffa, Paul L., ed. Tau-p: a plane wave approach to the analysis of seismic data. Dordrecht: Springer Netherlands, 1989. http://dx.doi.org/10.1007/978-94-009-0881-9.

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14

Kibblewhite, Alick C. Wave interactions as a seismo-acoustic source. Berlin: Springer Verlag, 1996.

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15

Mappin, George. EPNS: Electroplated nickel silver, old Sheffield plate and close plate makers' marks ; from 1784. London: Foulsham, 1999.

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16

Zhongguo zi sha hua pen. Beijing: Zhongguo lin ye chu ban she, 2011.

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17

Barger, Raymond L. A method for designing blended wing-body configurations for low wave drag. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1992.

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18

Boam, Fiona. A women's place in advertising: The affects of second wave feminism. London: LCP, 2002.

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19

Claudio, Montenegro, Pritchett Lant, and World Bank, eds. The place premium: Wage differences for identical workers across the US border. [Washington, D.C: World Bank, 2008.

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20

The fourth wave: Taking your place in the new era of missions. Seattle, Wash: YWAM Pub., 2011.

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21

Chioukh, N. Wave effects on rigid and elastically-mounted horizontal circular cylinderd placed above a plane bed. Manchester: UMIST, 1995.

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22

Sullivan, Jerry L. Analysis of acoustic plane-wave variability in the region of the Mid-Atlantic Bight shelf break. Monterey, Calif: Naval Postgraduate School, 1997.

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23

Raman, Ganesh. Saturation and the limit of jet mixing enhancement by single frequency plane wave excitation: Experiment and technology. [Washington, DC]: National Aeronautics and Space Administration, 1988.

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24

M, Rogers Michael, and Ames Research Center, eds. Direct simulation of a self-similar plane wake. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1994.

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25

National Aeronautics and Space Administration (NASA) Staff. Direct Simulation of a Self-Similar Plane Wake. Independently Published, 2018.

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26

Brian, Cantwell, Mansour N, Joint Institute for Aeronautics and Acoustics., and Ames Research Center, eds. Direct numerical simulation of a temporally evolving incompressible plane wake: Effect of initial conditions on evolution and topology. Stanford, CA: Joint Institute for Aeronautics and Acoustics, 1997.

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27

Center, Langley Research, ed. Linear instability of supersonic plane wakes. [Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1990.

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28

National Aeronautics and Space Administration (NASA) Staff. Linear Instability of Supersonic Plane Wakes. Independently Published, 2018.

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29

D, Mehta R., and Ames Research Center, eds. Three-dimensional structure of straight and curved plane wakes. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1993.

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30

Three-dimensional structure of straight and curved plane wakes. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1993.

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31

D, Mehta R., and Ames Research Center, eds. Three-dimensional structure of straight and curved plane wakes. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1993.

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32

Hansen, Thorkild B., and Arthur D. Yaghjian. Plane-Wave Theory of Time-Domain Fields. IEEE, 1999. http://dx.doi.org/10.1109/9780470545522.

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33

Zeitlin, Vladimir. Wave Turbulence. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198804338.003.0013.

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Main notions and ideas of wave (weak) turbulence theory are explained with the help of Hamiltonian approach to wave dynamics, and are applied to waves in RSW model. Derivation of kinetic equations under random-phase approximation is explained. Short inertia–gravity waves on the f plane, short equatorial inertia–gravity waves, and Rossby waves on the beta plane are then considered along these lines. In all of these cases, approximate solutions of kinetic equation, annihilating the collision integral, can be obtained by scaling arguments, giving power-law energy spectra. The predictions of turbulence of inertia–gravity waves on the f plane are compared with numerical simulations initialised by ensembles of random waves. Energy spectra much steeper than theoretical are observed. Finite-size effects, which prevent energy transfer from large to short scales, provide a plausible explanation. Long waves thus evolve towards breaking and shock formation, yet the number of shocks is insufficient to produce shock turbulence.
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34

Kuznetsova, Nina F. Corpuscular-Wave Nature and Wave Properties of Plant Cells. Nova Science Pub Inc, 2013.

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35

Adelman, David. School - No Place For Children: A Wake-Up Call. Createspace Independent Publishing Platform, 2018.

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36

Pairor, Puangratana. In-plane tunneling spectroscopy of d-Wave superconductors. 2001.

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37

H, Gerhold Carl, and Langley Research Center, eds. Active control of fan-generated plane wave noise. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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38

Active control of fan-generated plane wave noise. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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39

H, Gerhold Carl, and Langley Research Center, eds. Active control of fan-generated plane wave noise. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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40

Clemmow, P. C. The Plane Wave Spectrum Representation of Electromagnetic Fields. IEEE, 1996. http://dx.doi.org/10.1109/9780470546598.

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41

H, Gerhold Carl, and Langley Research Center, eds. Active control of fan-generated plane wave noise. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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42

Persson, Lena. Plane Wave Electromagnetic Measurements for Imaging Fracture Zone. Uppsala Universitet, 2001.

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43

National Aeronautics and Space Administration (NASA) Staff. Active Control of Fan-Generated Plane Wave Noise. Independently Published, 2018.

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44

Cassinger, Cecilia, Andrea Lucarelli, and Szilvia Gyimóthy. The Nordic Wave in Place Branding. Edward Elgar Publishing, 2019. http://dx.doi.org/10.4337/9781788974325.

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45

D, Wilson Jeffrey, and United States. National Aeronautics and Space Administration., eds. Ring-plane traveling-wave tube slow-wave circuit design simulations at V-Band frequencies. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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46

Ring-plane traveling-wave tube slow-wave circuit design simulations at V-Band frequencies. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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47

D, Wilson Jeffrey, and United States. National Aeronautics and Space Administration., eds. Ring-plane traveling-wave tube slow-wave circuit design simulations at V-Band frequencies. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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48

D, Wilson Jeffrey, and United States. National Aeronautics and Space Administration., eds. Ring-plane traveling-wave tube slow-wave circuit design simulations at V-Band frequencies. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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49

Rowe, Violet A. Place House, Ware, and the Bluecoat Children. Rockingham Press, 2015.

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50

Baulieu, Laurent, John Iliopoulos, and Roland Sénéor. Relativistic Wave Equations. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198788393.003.0006.

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Relativistically covariant wave equations for scalar, spinor, and vector fields. Plane wave solutions and Green’s functions. The Klein–Gordon equation. The Dirac equation and the Clifford algebra of γ‎ matrices. Symmetries and conserved currents. Hamiltonian and Lagrangian formulations. Wave equations for spin-1 fields.
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