The kilohertz is a unit of frequency equal to 1000 hertz. Its symbol is kHz. It covers the upper part of human hearing and the lowest part of the radio spectrum, which makes it the meeting point of two very different technologies.
Audio lives here. The upper limit of human hearing is about 20 kilohertz in a young person, and the frequencies that carry speech intelligibility cluster between 1 and 4 kilohertz. Digital audio is sampled at 44.1 kilohertz for compact discs and 48 kilohertz for video work, rates chosen because the sampling theorem requires more than twice the highest frequency to be reproduced, with a margin for filtering.
Radio broadcasting began in this range. Long wave runs from 148 to 283 kilohertz and medium wave, the AM band, from 526 to 1606 kilohertz. These low frequencies propagate along the ground and reflect off the ionosphere at night, giving them ranges of hundreds or thousands of kilometres from a single transmitter, which is why they carried the first national broadcasting services and still serve maritime and aviation navigation beacons.
Submarine communication uses even lower frequencies because seawater absorbs radio energy, and only signals in the range of a few kilohertz and below penetrate more than a few metres. Naval very low frequency transmitters occupy enormous antenna arrays for this reason, and their data rates are correspondingly tiny.
Ultrasound for medical imaging sits far above the audible range, in megahertz, but industrial ultrasonic cleaning and animal deterrents work between 20 and 80 kilohertz, just above what people can hear. Bats echolocate in the same territory, from roughly 20 to well over 100 kilohertz.
Older computers had clock speeds in kilohertz. The processor in the original Apple II ran at just over one megahertz, but the earliest microprocessors and many microcontrollers still operate at a few hundred kilohertz where low power matters more than speed.
Digital audio put a specific number from this range into everyday use. The compact disc samples at 44.1 kilohertz, chosen because the sampling theorem requires more than twice the highest frequency to be reproduced, and twice 20 kilohertz leaves a margin for the filter that removes everything above it. Professional recording commonly uses 48 kilohertz to match video, and 96 or 192 for mastering. Telephony sits far lower, sampling at 8 kilohertz and so cutting off above about 3.4, which is why a voice on an ordinary phone line loses the sibilance that makes the letters s and f easy to tell apart.
One kilohertz equals 1000 hertz, 0.001 megahertz, or one millionth of a gigahertz.
| Unit | Symbol | 1 Kilohertz equals | 1 of these equals | Converter |
|---|---|---|---|---|
| Nanohertz | nHz | 1000000000000 nHz | 1 × 10-12 kHz | Kilohertz to Nanohertz |
| Microhertz | µHz | 1000000000 µHz | 0.000000001 kHz | Kilohertz to Microhertz |
| Millihertz | mHz | 1000000 mHz | 0.000001 kHz | Kilohertz to Millihertz |
| Hertz | Hz | 1000 Hz | 0.001 kHz | Kilohertz to Hertz |
| Megahertz | MHz | 0.001 MHz | 1000 kHz | Kilohertz to Megahertz |
| Gigahertz | GHz | 0.000001 GHz | 1000000 kHz | Kilohertz to Gigahertz |
| Terahertz | THz | 0.000000001 THz | 1000000000 kHz | Kilohertz to Terahertz |