The two are unrelated. In an electromagnetic wave, the photon's energy is directly proportional to the frequency, and thus inversely proportional to the wavelength, but that doesn't say anything about the total energy in the wave (which may consist of billions of photons).
In the wave equation, the energy of a wave is directly proportional to its frequency. This means that as the frequency of a wave increases, so does its energy.
The energy of an electromagnetic wave is directly proportional to its frequency. This means that as the frequency of the wave increases, so does its energy.
wave speed= frequency/wavelenth
The energy of a sound wave is directly proportional to its amplitude. This means that as the amplitude of a sound wave increases, so does its energy.
The energy of a wave is directly proportional to its amplitude. This means that as the amplitude of a wave increases, so does its energy. Conversely, if the amplitude decreases, the energy of the wave will also decrease.
amplitude is equal to one half of the wave height the greater the energy of the wave the greater its amplitude
The energy of a wave is directly proportional to the square of its amplitude. This means that as the amplitude of a wave increases, its energy also increases exponentially. Conversely, decreasing the amplitude of a wave will result in a decrease in its energy.
The relationship between frequency and energy in electromagnetic waves is that higher frequency waves have higher energy. This means that as the frequency of an electromagnetic wave increases, so does its energy.
Two consecutive points in phase are one wavelength apart.
wavelenth
Energy is directly proportional to the square of the wave amplitude. This means that as the wave amplitude increases, the energy of the wave also increases. Conversely, if the wave amplitude decreases, the energy of the wave decreases.
The energy of a wave can be calculated using the formula E = hf, where E is the energy of the wave, h is Planck's constant (6.626 x 10^-34 J·s), and f is the frequency of the wave. This formula is derived from the relationship between the energy of a photon and its frequency in quantum mechanics.