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The total energy associated with a wavelength is the sum of the potential energy and the kinetic energy. The average rate of energy transfer associated with a wave is called its power, which is total energy divided by the time it takes to transfer the energy. For a sinusoidal wave, energy and power are proportional to the square of both the amplitude and the angular frequency.

Waves can also be concentrated or spread out, as characterized by the intensity of the wave. Intensity is directly proportional to the power of the wave and inversely proportional to the area covered by the wave. The more area a wave covers, the lower the intensity. For example, in an earthquake, waves spread out over a large area. As they move away from the source, the severity of damage reduces. The SI unit of intensity is watts per square meter.

In the case of spherical waves, like the kind produced by a sound speaker, intensity also decreases the farther we are from the source. When a spherical wave moves out from a source, the surface area of the wave increases as the radius increases. The intensity for a spherical wave, therefore, decreaseswhile the energy remains constant.

This text is adapted from Openstax, University Physics Volume 1, Section 16.4: Energy and Power of a Wave.

Tags
EnergyPowerWavePotential EnergyKinetic EnergyAmplitudeAngular FrequencyIntensityAreaEarthquakeSI UnitSpherical WavesSound Speaker

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16.9 : Energy and Power of a Wave

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16.1 : Wanderende Wellen

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16.2 : Wellen-Parameter

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16.3 : Gleichungen der Wellenbewegung

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16.4 : Grafische Darstellung der Wellenfunktion

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16.8 : Kinetische und potentielle Energie einer Welle

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16.10 : Interferenz und Überlagerung von Wellen

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16.11 : Reflexion von Wellen

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16.12 : Ausbreitung von Wellen

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16.13 : Stehende Wellen

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16.14 : Modi der stehenden Wellen - I

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16.15 : Modi der stehenden Wellen: II

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