8,240 Hz Wavelength

How Long Is a 8240 Hz Wavelength?

A 8240 Hz sound wave has a wavelength of 0.04 meters, 4.17 cm, 0.14 feet (0 feet and 1.64 inches) or 1.64 inches when traveling in air at 20°C (68°F).

The formula for the wavelenght is λ = c/f where:

  • c is the celerity (speed) of sound = 343.21 m/s or 1126.03 ft/s in air at 20°C (68°F).
  • f is the frequency = 8240 Hz
which gives a wavelength λ of 0.04 meters, or 0.14 feet.

8240 Hz Wavelength Depending on Temperature

The speed of sound in air depends on temperature. Here is how the wavelenght of a 8240 Hz sound wave will vary according to temperature:

Temp (°C) Temp (°F) 8240 Hz wavelength (cm)8240 Hz wavelength (in)
-40-403.71461.4624
-35-313.75421.4780
-30-223.79341.4935
-25-133.83221.5087
-20-43.87061.5239
-1553.90871.5388
-10143.94631.5537
-5233.98371.5684
0324.02061.5829
5414.05731.5973
10504.09361.6116
15594.12961.6258
20684.16521.6399
25774.20061.6538
30864.23571.6676
35954.27051.6813
401044.30501.6949

8240 Hz Half Wavelength and Standing Waves

The half wavelength of a 8240 Hz sound wave is 0.02 meters, 2.08 cm, 0.07 feet (0 feet and 0.82 inches) or 0.82 inches when travelling in air at 20°C (68°F).

Modes (or standing waves) will occur at 8240 Hz in rooms where two opposing walls (axial mode), edges (tangential mode) or corners (oblique mode) are spaced by a distance d = nλ/2 where:

  • n is a natural (positive integer greater than or equal to 1)
  • λ is the 8240 Hz wavelength = 0.04 meters, or 0.14 feet in air at 20°C (68°F).

8240 Hz Standing Waves Distances

n Distance (m) Distance (ft)
10.020.07
20.040.14
30.060.20
40.080.27
50.100.34

We typically don't treat rooms for standing waves above 300 Hz.

Given the relatively small 8240 Hz half wavelength, you can treat your room by using thick acoustic foam. This will absorb frequencies as low as 250 Hz, and all the way up to 20,000 Hz.

How To Convert 8240 Hz To ms

A Hz (Hertz) is a cycle (or period) per second.

Because a 8240 Hz wave will ocillate 8240 times per second, we can find the time of a single cycle (or period) with the formula p = 1/f where:

  • f is the frequency of the wave = 8240 Hz

The result will be expressed in seconds, so let's multiply by 1000 to get miliseconds:

1 / 8240 Hz * 1000 = 0.12 ms.