Frequency = (speed) / (wavelength)
Wavelength = 700 nm
For speed of light, use 3 x 108 meters/sec
Frequency = (3 x 108) / (0.7 10-6) = 4.286 x 1014 Hz = 4.286 x 105 GHz
The frequency of light emitted by a laser pointer with a wavelength of 670 nm can be calculated using the formula: frequency = speed of light / wavelength. Plugging in the values, we get frequency = 3x10^8 m/s / (670x10^-9 m) = 4.48x10^14 Hz.
The wavelength is 671 nm.
Depends on what the speed of the wave is. The wavelength is equal to the speed of the wave divided by its frequency. For light in a vaccum, for instance, the speed is c, or about 3.00 x 10e8 meters/second. If the frequency was in Hertz (cycles/second), then the wavelength would be 448,000 meters. So, this probably is a light frequency. If it were the sound at sea level, the speed is 340 meters/second, so the resulting wavelength would be 0.507 meters. The sound would be nearly an "E".
The frequency of a light wave can be calculated using the equation f = c/λ, where f is the frequency, c is the speed of light (3.00 x 10^8 m/s), and λ is the wavelength. Plugging in the values, the frequency of a 670 nm light wave is approximately 4.48 x 10^14 Hz.
The frequency of the radiation can be calculated using the formula: frequency (Hz) = speed of light (m/s) / wavelength (m). Given that the speed of light is approximately 3.00 x 10^8 m/s, converting the wavelength from nanometers to meters (670nm = 670 x 10^-9 m) and plugging the values into the formula, the frequency would be approximately 4.48 x 10^14 Hz.
The frequency of light emitted by a laser pointer with a wavelength of 670 nm can be calculated using the formula: frequency = speed of light / wavelength. Plugging in the values, we get frequency = 3x10^8 m/s / (670x10^-9 m) = 4.48x10^14 Hz.
Use wavelength = frequency/300 000 with wavelength in metres and transpose.
The wavelength is 671 nm.
Depends on what the speed of the wave is. The wavelength is equal to the speed of the wave divided by its frequency. For light in a vaccum, for instance, the speed is c, or about 3.00 x 10e8 meters/second. If the frequency was in Hertz (cycles/second), then the wavelength would be 448,000 meters. So, this probably is a light frequency. If it were the sound at sea level, the speed is 340 meters/second, so the resulting wavelength would be 0.507 meters. The sound would be nearly an "E".
The frequency of a light wave can be calculated using the equation f = c/λ, where f is the frequency, c is the speed of light (3.00 x 10^8 m/s), and λ is the wavelength. Plugging in the values, the frequency of a 670 nm light wave is approximately 4.48 x 10^14 Hz.
The frequency of the radiation can be calculated using the formula: frequency (Hz) = speed of light (m/s) / wavelength (m). Given that the speed of light is approximately 3.00 x 10^8 m/s, converting the wavelength from nanometers to meters (670nm = 670 x 10^-9 m) and plugging the values into the formula, the frequency would be approximately 4.48 x 10^14 Hz.
9005 or 9006
7.5x10^14 Hertz (cylces per second). Generally, wavelength = (speed of light)/(frequency). Speed of light can be rounded to 3x10^8. If you know one, you can get the other.
80% of 670 = 80% * 670 = 0.8 * 670 = 536
23% of 670 = 23% * 670 = 0.23 * 670 = 154.1
670 meters equals 670 meters.
670.