- Phase velocity
The phase velocity (or phase speed) of a
periodic gravity waves on the surface of deep water. The red dot moves with the phase velocity, and is located at a fixed wave phase: the crest for the case shown.wave is the rate at which the phase of the wave propagates in space. This is thespeed at which the phase of any onefrequency component of the wave travels. For such a component, any given phase of the wave (for example, the crest) will appear to travel at the phase velocity. The phase speed is given in terms of thewavelength "λ" (lambda) andperiod "T" as:
Or, equivalently, in terms of the wave's
angular frequency "ω" andwavenumber "k" by:
In a dispersive medium, the phase velocity varies with frequency and is not necessarily the same as the
group velocity of the wave, which is the rate that changes in amplitude (known as the "envelope" of the wave) will propagate.The phase velocity of
electromagnetic radiation may under certain circumstances (e.g. in the case ofanomalous dispersion ) exceed thespeed of light in a vacuum, but this does not indicate anysuperluminal information or energy transfer. It was theoretically described by physicists such asArnold Sommerfeld andLeon Brillouin . "See dispersion for a full discussion of wave velocities."Matter wave phase
In
quantum mechanics , particles also behave as waves with complex phases. By thede Broglie hypothesis , we see that:.
Using relativistic relations for energy and momentum, we have
:
where "E" is the
total energy of the particle (i.e.rest energy pluskinetic energy inkinematic sense), "p" themomentum , theLorentz factor , "c" thespeed of light , and β the velocity as a fraction of c. The variable "v" can either be taken to be the velocity of the particle or the group velocity of the corresponding matter wave. See the article on "group velocity " for more detail. Since the particle velocity for a massive particle according tospecial relativity , phase velocity of matter waves always exceed "c", i.e.:,
and as we can see, it approaches "c" when the particle velocity is in the relativistic range. The
superluminal phase velocity does not violate special relativity, for it doesn't carry any information. See the article on "signal velocity " for detail.ee also
*
Group velocity
*Wave propagation References
* Tipler, Paul A. and Ralph A. Llewellyn (2003). "Modern Physics". 4th ed. New York; W. H. Freeman and Company. ISBN 0-7167-4345-0. 222-3 pp.
*Leon Brillouin "Wave Propagation And Group Velocity" Academic Press Inc., New York and London (1960) ISBN 0-1213-4968-3.
* Main, Iain G. (1988)."Vibrations and Waves in Physics". 2nd ed. New York; Cambridge University Press. ISBN 0-5212-7846-5. 214-6 pp.External links
* [http://gregegan.customer.netspace.net.au/APPLETS/20/20.html Subluminal] , a Java applet
* [http://publicliterature.org/tools/group_and_phase_velocity/ Group and Phase Velocity] - Java applet showing the difference between group and phase velocity.
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