Books on the topic 'Kinematic waves'

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1

P, Singh V. Kinematic wave modeling in water resources: Environmental hydrology. New York: Wiley, 1997.

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2

P, Singh V. Kinematic wave modeling in water resources: Surface-water hydrology. New York: Wiley, 1996.

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3

Abreu, Manuel P. Kinematics under wind waves. Monterey, Calif: Naval Postgraduate School, 1989.

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4

Barker, Christopher H. Directional irregular wave kinematics. Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1998.

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5

1933-, Tørum A., Gudmestad O. T. 1947-, and NATO Advanced Research Workshop on Water Wave Kinematics (1989 : Molde, Norway), eds. Water wave kinematics. Dordrecht [Holland]: Kluwer Academic Publishers, 1990.

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6

Tørum, A., and O. T. Gudmestad, eds. Water Wave Kinematics. Dordrecht: Springer Netherlands, 1990. http://dx.doi.org/10.1007/978-94-009-0531-3.

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7

Tørum, A. Water Wave Kinematics. Dordrecht: Springer Netherlands, 1990.

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8

Wong, Tommy S. W. Kinematic-wave rainfall-runoff formulas. Hauppauge, NY: Nova Science Publishers, 2009.

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9

Arattano, M. Kinematic wave theory for debris flow. Denver, Co: U.S. Geological Survey, 1992.

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10

Z, Savage William, and Geological Survey (U.S.), eds. Kinematic wave theory for debris flow. Denver, Co: U.S. Geological Survey, 1992.

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11

Arattano, M. Kinematic wave theory for debris flow. Denver, Co: U.S. Geological Survey, 1992.

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12

Brun, Raymond. Shock Waves @ Marseille IV: Shock Structure and Kinematics, Blast Waves and Detonations. Berlin, Heidelberg: Springer Berlin Heidelberg, 1995.

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13

Jun, Zhang, Offshore Technology Research Center, American Society of Civil Engineers., and International OTRC Symposium on Ocean Wave Kinematics, Dynamics Loads on Structures (1998 : Houston, Tex.), eds. Ocean wave kinematics, dynamics, and loads on structures: Proceedings of the 1998 International OTRC Symposium, April 30-May 1, 1998, Houston, Texas. Reston, Va: American Society of Civil Engineers, 1998.

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14

Technology, Society for Underwater, ed. Wave kinematics and environmental forces: Papers presented at a conference organized by the Society for Underwater Technology and held in London, U.K., March 24-25, 1993. Dordrecht: Kluwer Academic Publishers, 1993.

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15

Kharaz, I. I. Metodicheskie rekomendat͡s︡ii po primenenii͡u︡ kinematicheskogo analiza seĭsmicheskogo volnovogo poli͡a︡. Saratov: Ministerstvo geologii SSSR. Nizhne-Volzhskiĭ nauchno-issledovatelʹskiĭ institut geologii i geofiziki, 1990.

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16

Prasad, Phoolan. Propagation of Multidimensional Nonlinear Waves and Kinematical Conservation Laws. Singapore: Springer Singapore, 2017. http://dx.doi.org/10.1007/978-981-10-7581-0.

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17

Society for Underwater Technology. Wave Kinematics and Environmental Forces: Papers presented at a conference organized by the Society for Underwater Technology and held in London, U.K., March 24-25, 1993. Dordrecht: Springer Netherlands, 1993.

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18

Dobroli͡ubov, A. I. Volnovye dvizhenii͡a deformiruemykh tel i zhidkosteĭ: Kinematika i massoperenos. Minsk: "Nauka i tekhnika", 1989.

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19

National Institute of Hydrology (India), ed. Soil erosion and sediment yield modelling using kinematic wave in GIS environment. Roorkee: National Institute of Hydrology, 1998.

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20

International Symposium on Shock Waves (19th 1993 Marseille, France). Shock structure and kinematics, blast waves, and detonations: Proceedings of the 19th International Symposium on Shock Waves, held at Marseille, France, 26-30 July 1993. Berlin: Springer-Verlag, 1995.

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21

S, Powers Philip, and Geological Survey (U.S.), eds. KWM: A BASIC program and user's guide for a kinematic wave model for debris flow. [Denver, Colo.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1992.

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22

S, Powers Philip, and Geological Survey (U.S.), eds. KWM: A BASIC program and user's guide for a kinematic wave model for debris flow. [Denver, Colo.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1992.

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23

H, Cannon Susan, Powers Philip S, and Geological Survey (U.S.), eds. HYDRO, a BASIC program and user's guide to model a recorded hydrograph of a debris flow using two different solutions for kinematic wave theory. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1994.

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24

H, Cannon Susan, Powers Philip S, and Geological Survey (U.S.), eds. HYDRO, a BASIC program and user's guide to model a recorded hydrograph of a debris flow using two different solutions for kinematic wave theory. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1994.

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25

H, Cannon Susan, Powers Philip S, and Geological Survey (U.S.), eds. HYDRO, a BASIC program and user's guide to model a recorded hydrograph of a debris flow using two different solutions for kinematic wave theory. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1994.

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26

Deruelle, Nathalie, and Jean-Philippe Uzan. Electromagnetic waves. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0033.

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Abstract:
This chapter examines solutions to the Maxwell equations in a vacuum: monochromatic plane waves and their polarizations, plane waves, and the motion of a charge in the field of a wave (which is the principle upon which particle detection is based). A plane wave is a solution of the vacuum Maxwell equations which depends on only one of the Cartesian spatial coordinates. The monochromatic plane waves form a basis (in the sense of distributions, because they are not square-integrable) in which any solution of the vacuum Maxwell equations can be expanded. The chapter concludes by giving the conditions for the geometrical optics limit. It also establishes the connection between electromagnetic waves and the kinematic description of light discussed in Book 1.
27

Son, Bongsoo. A study of G.F. Newell's "simplified theory of kinematic waves in highway traffic". 1996.

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28

Ramsden, Jerald Day. Kinematics and return flow in a closed wave flume. 1987.

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29

Tørum, A., and O. T. Gudmestad. Water Wave Kinematics. Springer Netherlands, 2011.

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30

Singh, Vijay P. Kinematic Wave Modeling in Water Resources. Wiley, 1998.

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31

Wave Kinematics and Environmental Forces. Dordrecht: Springer Netherlands, 1993. http://dx.doi.org/10.1007/978-94-017-3663-3.

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32

Dynamics Loads International Otrc Symposium on Ocean Wave Kinematics (Corporate Author), Offshore Technology Research Center (Corporate Author), American Society of Civil Engineers (Corporate Author), and Jun, Ph.D. Zhang (Editor), eds. Ocean Wave Kinematics, Dynamics and Loads on Structures: Proceedings of the 1998 International Otrc Symposium : April 30-May 1, 1998 Houston, Texas. American Society of Civil Engineers, 1998.

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33

Deruelle, Nathalie, and Jean-Philippe Uzan. The kinematics of light. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0021.

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Abstract:
This chapter embarks on the study of light in the vacuum in special relativity. Here, the chapter represents light by world lines of zero length, that is, by particles that propagate at speed c. Such a description does not include the electromagnetic or quantum wave nature of light, but it does allow the interpretation of experiments which measure light travel times (such as the Sagnac experiment) or aberration effects due to motion of the receiver. The chapter first defines the light lines, or the light-like lines, which are lines of zero length, and one of these lines can represent the world line of a signal or photon. It then turns to a discussion of the Sagnac effect, before finally considering the aberration formulas.
34

Prasad, Phoolan. Propagation of Multidimensional Nonlinear Waves and Kinematical Conservation Laws. Springer, 2018.

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35

Prasad, Phoolan. Propagation of Multidimensional Nonlinear Waves and Kinematical Conservation Laws. Springer, 2018.

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36

Prasad, Phoolan. Propagation of Multidimensional Nonlinear Waves and Kinematical Conservation Laws. Springer, 2018.

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37

Society for Underwater Technology. Wave Kinematics and Environmental Forces: Papers presented at a conference organized by the Society for Underwater Technology and held in London, U.K., March 24-25, 1993. Springer, 2014.

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38

Skyner, D. J., C. A. Greated, and W. J. Easson. The Internal Kinematics of Steep Waves on Sheared Current: An Experimental Study (Offshore Technology Report). Health and Safety Executive (HSE), 1993.

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39

KWM: A BASIC program and user's guide for a kinematic wave model for debris flow. [Denver, Colo.]: U.S. Dept. of the Interior, U.S. Geological Survey, 1992.

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40

Brun, R. Shock Waves and Marseille IV: Shock Structure and Kinematics, Blast Waves and Detonations : Proceedings of the 19th International Symposium on Shock (Springer Series in Wood Science). Springer, 1995.

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41

Deruelle, Nathalie, and Jean-Philippe Uzan. Light in Newtonian theory. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0017.

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Abstract:
This chapter discusses light in Newtonian theory. Astronomy (and physics in general) is certainly not a complete science without a theory of light. However, the nature of light and its kinematical properties were not completely understood until the advent of Maxwell’s theory, special and general relativity, and quantum field theory. The answers to these questions provided by Newtonian theory were only partial and sometimes even contradictory. Thus this chapter seeks to present a few aspects of this topic, such as the influences of gravity on light, stellar aberrations, and wave propagation. It also studies the Fizeau and Michelson–Morley experiments.

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