Time and Frequency from A to Z, G (2024)

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Gigahertz (GHz)

A unit of frequency that represents one billion cycles per second (109 Hz).

Global Navigation Satellite Systems (GNSS)

A satellite system that can be used to locate a user’s receiver anywhere in the world. The Global Positioning System (GPS) was the first global navigation satellite system (GNSS), but has been followed by the three other systems listed in the table (note that BeiDou and Galileo are not fully operational as of 2016). In addition to being globally available systems for positioning and navigation, GNSS systems are widely used as references for time and frequency measurements. Some modern receivers can simultaneously receive signals from all four GNSS systems.

GNSS System

Controlling Region

Number of Satellitesin Full Constellation

BeiDou

China

30

Galileo

European Union

30

GLONASS

Soviet Union

24

GPS

United States

32

Global Positioning System (GPS)

A constellation of satellites controlled and operated by the United States Department of Defense (USDOD). The constellation includes at least 24 satellites that orbit the Earth at a height of 20,200 km in six fixed planes inclined 55° from the equator. The orbital period is 11 h 58 m, which means that a satellite will orbit the earth twice per day. By processing signals received from the satellites, a GPS receiver can determine its own position with an uncertainty of less than 10 m.

Time and Frequency from A to Z, G (1)

All GPS satellites broadcast on at least two carrier frequencies: L1, at 1575.42 MHz, and L2, at 1227.6 MHz (newer satellites also broadcast on L5 at 1176 MHz). Each satellite broadcasts a spread-spectrum waveform, called a pseudo-random noise (PRN) code on L1 and L2, and each satellite is identified by the PRN code it transmits. There are two types of PRN codes. The first type is a coarse acquisition (C/A) code with a chip rate of 1023 chips per millisecond. The second type is a precision (P) code with a chip rate of 10230 chips per millisecond. The C/A code is broadcast on L1, and the P code is broadcast on both L1 and L2. GPS reception is line-of-sight, which means that the antenna must have a clear view of the sky. The signals can be received nearly anywhere on Earth where a clear sky view is available.

The primary purpose of GPS is to serve as a radionavigation system, but it has also become the dominant system for the distribution of time and frequency signals. Each satellite carries a rubidium and/or cesium atomic clock that provides the reference for both the carrier and code broadcasts. The satellite clocks are continuously adjusted to agree with Coordinated Universal Time (UTC) as maintained by the United States Naval Observatory (USNO). There are several types of time and frequency measurements that involve GPS, including one-way, common-view, and carrier-phase measurements. GPS disciplined clocks and oscillators are commonly used as references for time and frequency measurements.

GPS Disciplined Oscillator (GPSDO)

A self-calibrating standard that is commonly used as a reference for frequency and time measurements. GPSDOs are sold commercially by a large number of manufacturers. The basic function of a GPSDO is to receive signals from the GPS satellites and to use the information contained in these signals to control the frequency of a local quartz or rubidium oscillator. A block diagram of one type of GPSDO is shown in the graphic.

Time and Frequency from A to Z, G (2)

GPS signals are kept in agreement with the Coordinated Universal Time scale maintained by the United States Naval Observatory, UTC(USNO). Nearly all GPSDOs use the coarse acquisition (C/A) code on the L1 carrier frequency (1575.42 MHz) as their incoming reference signal. The satellite signals can be trusted as a reference for two reasons: (1) they originate from atomic oscillators and (2) they must be accurate and stable to within parts in 1014 over a 12 hour averaging period in order for GPS to meet its specifications as a positioning and navigation system.

The best GPSDOs transfer as much of the inherent accuracy and stability of the satellite signals as possible to the signals generated by the local quartz or rubidium oscillator. Many modern GPSDOs have a frequency stability of 1 × 10-13 or less at tau = 1 day. Time accuracy with respect to UTC is typically better than 100 nanoseconds if a delay constant is entered for the antenna cable.

Greenwich Mean Time (GMT)

A 24-hour time keeping system whose hours, minutes, and seconds represent the time-of-day at the Earth's prime meridian (0° longitude) located near Greenwich, England. Technically speaking, GMT no longer exists, since it was replaced by other astronomical time scales many years ago, and those astronomical times scales were subsequently replaced by the atomic time scale UTC. However, the term GMT is still incorrectly used by the general public. When heard today, it should be considered as a synonym for UTC.

Groundwave

A radio wave that propagates close to the surface of the Earth. Groundwave propagation is a characteristic of low frequency (LF) radio signals. Since the propagation or path delay of a groundwave signal remains relatively constant and much easier to predict, LF signals are better time and frequency references than high frequency (HF) signals, which are often dominated by skywave. The diagram shows groundwave and skywave propagation paths between a transmitter and receiver.

Time and Frequency from A to Z, G (3)

Time and frequency

Time and Frequency from A to Z, G (2024)

FAQs

What is the frequency of A440? ›

A440 (sometimes called A4) is the 440 Hz tone that serves as the internationally recognized standard for musical pitch. A440 is the musical note A above middle C.

What is the relationship between time and frequency? ›

The time period of a wave decreases as its frequency increases. The time period is measured in 'seconds. ' Frequency and time period have a mathematical relationship that can be expressed as T = 1/f or f = 1/T.

What is the frequency of GPS transmission? ›

By processing signals received from the satellites, a GPS receiver can determine its own position with an uncertainty of less than 10 m. All GPS satellites broadcast on at least two carrier frequencies: L1, at 1575.42 MHz, and L2, at 1227.6 MHz (newer satellites also broadcast on L5 at 1176 MHz).

What is GPS L5 frequency? ›

L5 is the third civilian GPS signal, designed to meet demanding requirements for safety-of-life transportation and other high-performance applications. Its name refers to the U.S. designation for the radio frequency used by the signal (1176 MHz).

Is 432Hz better than 440 Hz study? ›

Conclusions: The data suggests that 432 Hz tuned music can decrease heart rate more than 440 Hz tuned music. The study results suggest repeating the experiment with a larger sample pool and introducing randomized controlled trials covering more clinical parameters.

Is 432Hz frequency bad? ›

There is no scientific evidence to suggest that listening to a particular frequency, such as 432 Hz, is inherently harmful. However, it's important to note that individuals may have different sensitivities and reactions to certain sounds or frequencies.

How is Hz related to time? ›

Frequency is defined as the number of oscillations per second. Thus, if each complete oscillation take 1.304 seconds then the number of oscillations completed in 1 second is 1/1.304=0.767 Hz. Note that frequency is measured in Hertz (Hz) which is a more convenient name for 'per second' (or 1/second).

How to calculate frequency from time period? ›

The frequency formula in terms of time is given as: f = 1/T where, f is the frequency in hertz, and T is the time to complete one cycle in seconds.

Is frequency the same as time? ›

Period refers to the time it takes something to happen. Frequency is a rate quantity. Period is a time quantity. Frequency is the cycles/second.

How accurate is GPS time transfer? ›

The government distributes UTC as maintained by the U.S. Naval Observatory (USNO) via the GPS signal in space with a time transfer accuracy relative to UTC(USNO) of ≤30 nanoseconds (billionths of a second), 95% of the time.

How does a GPS receiver calculate time? ›

GPS receivers decode these signals, effectively synchronizing each receiver to the atomic clocks. This enables users to determine the time to within 100 billionths of a second, without the cost of owning and operating atomic clocks. Precise time is crucial to a variety of economic activities around the world.

How accurate is the GPS frequency? ›

In the world of high-precision time and frequency measurement, GPS is considered the gold standard. According to NIST, using a well-designed receiver it's possible to obtain time from GPS to within an accuracy of 100 ns in a few minutes, and to about ±10 nanoseconds (ns) with a 24 hour average.

What is the time format for GPS? ›

GPS uses its own timescale: “GPS time”. The starting point (time zero) of GPS time was chosen to be midnight of 5-6 January 1980. The GPS satellites transmit the time in two parts: the week number (the number of weeks since time zero) and the elapsed number of seconds within that week.

What is the Y code in GPS? ›

Y code is actually the combination of the P code and a W encryption code and requires a DoD authorized receiver to use it. Originally the encryption was intended as a means to safe-guard the signal from being corrupted by interference, jamming, or falsified signals with the GPS signature.

What is C a code? ›

Coarse Acquisition (C/A)-Code

Each code consists of 1,023 chips and is sent at a rate of 1.023 megabits per second. The code sequence repeats every millisecond. The C/A-codes are Gold codes -- PRN codes that are distinguished by a very low cross correlation between any two codes (that is, they are nearly orthogonal).

What is the 440 MHz frequency? ›

The 70-centimeter or 440 MHz band is a portion of the UHF radio spectrum internationally allocated to amateur radio and amateur satellite use. The ITU amateur radio allocation is from 430 to 440 MHz; however, some countries, such as the United States, allocate hams 420 to 450 MHz.

What is the frequency wave 440 Hz? ›

A440 (also known as Stuttgart pitch) is the musical pitch corresponding to an audio frequency of 440 Hz, which serves as a tuning standard for the musical note of A above middle C, or A4 in scientific pitch notation. It is standardized by the International Organization for Standardization as ISO 16.

What Hz is 440 tuning? ›

The current reference frequency for tuning musical instruments is 440 Hz, which corresponds to the musical note A4 (LA3) in the central octave of the piano.

References

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