Calculating Frequency of Sound Wave in Water

In summary, the formula for calculating the frequency of a sound wave in water is f = c/λ, where f is the frequency in Hertz (Hz), c is the speed of sound in water (approximately 1480 m/s), and λ is the wavelength of the sound wave in water (in meters). The frequency of a sound wave in water is typically lower than the frequency in air due to the higher density of water. It can change if the speed of sound or the wavelength changes, and can also be affected by external factors such as temperature, pressure, and salinity of the water. The frequency of a sound wave in water can be measured using a hydrophone, and has numerous real-world applications including underwater communication, son
  • #1
jazzchan
27
0
Dear all,

if a sound wave of 1.0 kHz in air strikes the surface of a lake and penetrates into water. How can find the frequency of the wave in water ?? and assume the speed of sound in water is 1500 m/s for all frequencies !

the frequency in air is equal to the frequency in water ??

thanks

jazz
 
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  • #2
The wavelength, however, will change. Frequency, in cycles per second, times wavelength, in meters per cycle is always equal to the wave speed, in meters per second. Since sound travels faster in water, the waves "stretch out".
 
  • #3


Dear jazz,

To calculate the frequency of a sound wave in water, we can use the formula: frequency = speed of sound in water / wavelength of sound in water.

Since the speed of sound in water is given as 1500 m/s for all frequencies, we can use this value in our calculation. However, the wavelength of the sound wave will change when it enters water due to the change in medium.

To find the wavelength of the sound wave in water, we can use the formula: wavelength in water = wavelength in air / refractive index of water. The refractive index of water is approximately 1.33.

Using this information, we can calculate the frequency of the sound wave in water by dividing the speed of sound in water (1500 m/s) by the wavelength in water. This will give us the frequency of the sound wave in water, which will be different from the frequency in air due to the change in medium.

So, to answer your question, the frequency of the sound wave in water will not be equal to the frequency in air. It will be lower due to the change in wavelength.

I hope this helps. Let me know if you have any further questions.


 

Related to Calculating Frequency of Sound Wave in Water

1. What is the formula for calculating frequency of sound wave in water?

The formula for calculating the frequency of a sound wave in water is f = c/λ, where f is the frequency in Hertz (Hz), c is the speed of sound in water (approximately 1480 m/s), and λ is the wavelength of the sound wave in water (in meters).

2. How does the frequency of a sound wave in water compare to the frequency in air?

The frequency of a sound wave in water is typically lower than the frequency in air due to the higher density of water. This means that sound travels slower in water, resulting in a longer wavelength and lower frequency.

3. Can the frequency of a sound wave in water change?

Yes, the frequency of a sound wave in water can change if the speed of sound or the wavelength changes. It can also be affected by external factors such as temperature, pressure, and salinity of the water.

4. How can the frequency of a sound wave in water be measured?

The frequency of a sound wave in water can be measured using a hydrophone, which is a specialized microphone designed to detect underwater sound waves. The hydrophone converts the sound waves into electrical signals that can be measured and analyzed.

5. What are some real-world applications of calculating the frequency of sound waves in water?

Calculating the frequency of sound waves in water has numerous real-world applications, including underwater communication, sonar technology for locating objects, and studying marine life and the ocean environment. It is also important in industries such as oil and gas, where acoustic technology is used to detect and monitor underwater pipelines and structures.

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