When.com Web Search

Search results

  1. Results From The WOW.Com Content Network
  2. Wavenumber - Wikipedia

    en.wikipedia.org/wiki/Wavenumber

    It equals the spatial frequency. For example, a wavenumber in inverse centimeters can be converted to a frequency expressed in the unit gigahertz by multiplying by 29.979 2458 cm/ns (the speed of light, in centimeters per nanosecond); [5] conversely, an electromagnetic wave at 29.9792458 GHz has a wavelength of 1 cm in free space.

  3. Doppler effect - Wikipedia

    en.wikipedia.org/wiki/Doppler_effect

    Stationary sound source produces sound waves at a constant frequency f, and the wave-fronts propagate symmetrically away from the source at a constant speed c. The distance between wave-fronts is the wavelength. All observers will hear the same frequency, which will be equal to the actual frequency of the source where f = f 0.

  4. Wavelength - Wikipedia

    en.wikipedia.org/wiki/Wavelength

    Conversion: Wavelength to Frequency and vice versa – Sound waves and radio waves; Teaching resource for 14–16 years on sound including wavelength Archived 2012-03-13 at the Wayback Machine; The visible electromagnetic spectrum displayed in web colors with according wavelengths

  5. Speed of sound - Wikipedia

    en.wikipedia.org/wiki/Speed_of_sound

    In a dispersive medium, the speed of sound is a function of sound frequency, through the dispersion relation. Each frequency component propagates at its own speed, called the phase velocity, while the energy of the disturbance propagates at the group velocity. The same phenomenon occurs with light waves; see optical dispersion for a description.

  6. Dispersion relation - Wikipedia

    en.wikipedia.org/wiki/Dispersion_relation

    A dispersion relation relates the wavelength or wavenumber of a wave to its frequency. Given the dispersion relation, one can calculate the frequency-dependent phase velocity and group velocity of each sinusoidal component of a wave in the medium, as a function of frequency.

  7. Phase (waves) - Wikipedia

    en.wikipedia.org/wiki/Phase_(waves)

    Phase comparison is a comparison of the phase of two waveforms, usually of the same nominal frequency. In time and frequency, the purpose of a phase comparison is generally to determine the frequency offset (difference between signal cycles) with respect to a reference. [3]

  8. Interaural time difference - Wikipedia

    en.wikipedia.org/wiki/Interaural_time_difference

    The results concluded that when a sound played had a frequency less than 1500 Hz, the wavelength is greater than this maximum time delay between the ears. Therefore, there is a phase difference between the sound waves entering the ears providing acoustic localisation cues. With a sound input with a frequency closer to 1500 Hz the wavelength of ...

  9. Sound - Wikipedia

    en.wikipedia.org/wiki/Sound

    Sound waves are often simplified to a description in terms of sinusoidal plane waves, which are characterized by these generic properties: Frequency, or its inverse, wavelength; Amplitude, sound pressure or Intensity; Speed of sound; Direction; Sound that is perceptible by humans has frequencies from about 20 Hz to 20,000 Hz.