What Is The Wavelength Of A Sound Wave That Has A Speed Of 340 M/s And A Frequency Of 880 Hz?

by | Last updated on January 24, 2024

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What is the wavelength of a sound wave that has a speed of 340 m/s and a frequency of 880 Hz? Therefore the sound wave has a wavelength of

0.773m

.

What is the wavelength of a sound wave moving at 340?

As the speed of sound in air = 340 m/s, therefore, wavelength = speed/frequency = 340/600 =

0.57 m

.

What is the wavelength of a sound wave that has a speed of 340 m/s and a frequency of 880hz?

What is the wavelength of a sound wave that has a speed of 340 m/s and a frequency of 880 Hz? Therefore the sound wave has a wavelength of

0.773m

.

What is the wavelength of a 340 Hz sound wave when the speed of sound in the air is 340 m s?

a. one-ninth b. one-third c. the same as d. three times larger than

What is the wavelength of a 340 Hz tone in room temperature air what is the wavelength of a 34000 Hz ultrasonic wave in the same air?

Similarly for a 34,000 hertz wave; wavelength = 340 m/s 34 000 Hz = 0.01 m =

1 cm

. 34. v = fλ, so λ = v/f = (1530 m/s)/7 Hz = 219 m.

What is the wavelength of a sound wave that has a speed of 340 m/s and a frequency of 400 Hz?

Therefore the sound wave has a wavelength of

0.773m

.

What frequency sound has a 0.10 m wavelength when the speed of sound is 340 m s?

Well the wave equation says that the speed of a wave is the product of frequency and wavelength. So we can divide both sides by λ to solve for f after we switch the sides around. So frequency is speed divided by the wavelength; 340 meters per second divided by 0.10 meters is

3.4 kilohertz

.

How can wavelength be calculated?

Wavelength is an important parameter of waves and is the distance between two like points on the wave. The wavelength is calculated from

the wave speed and frequency by λ = wave speed/frequency, or λ = v / f

. A peak is the highest point of a wave, while the valley is the lowest point of a wave.

What is the wavelength of a 256 hertz sound wave?

A sound wave moving through water has a frequency of 256 Hz (hertz or wave cycles per second) and a wavelength of

5.77 meters

.

Why can you not hear sound in space?

No, you cannot hear any sounds in near-empty regions of space. Sound travels through the vibration of atoms and molecules in a medium (such as air or water). In space, where there is no air,

sound has no way to travel

.

Where sound waves Cannot travel?

Sound can not travel in

a vacuum

. A vacuum is an environment where liquids, gases, or solids of some sort are absent. If there are no objects then the sound waves do not have particles to vibrate, which means the sound waves can not travel.

What is the speed of a 40 Hz wave with a wavelength of 2.5 m?

The frequency of a wave is 40 Hz and its speed is 100 meters per second. What is the wavelength of this wave? Solution:

100 m/s 100 m/s

= 2.5 meters per cycle 40 Hz 40 cycles/s .

What is the wavelength of a sound wave with a frequency of 500 Hz?

The sound wave has a wavelength of

0.34 m

in air.

What is the relationship between frequency and pitch?

The sensation of a frequency is commonly referred to as the pitch of a sound. A high pitch sound corresponds to a

high frequency sound wave

and a low pitch sound corresponds to a low frequency sound wave.

What change occurs in its wavelength?

What change happens to its wavelength? The speed doesn’t change. Wavelength is

speed/frequency

, so if the frequency doubles and the speed stays the same, the wavelength is cut in half.

What beat frequencies are possible with tuning forks?

When you strike the 256-Hz tuning fork and then one of the 266-Hz forks, this generates beats at

10 Hz

. Though Resnick and Halliday state that one can detect beats by ear up to a frequency of about seven Hz (Resnick, Robert and Halliday, David.

Charlene Dyck
Author
Charlene Dyck
Charlene is a software developer and technology expert with a degree in computer science. She has worked for major tech companies and has a keen understanding of how computers and electronics work. Sarah is also an advocate for digital privacy and security.