Space machines help us find our way. 
Space machines help us find our way. 


GLONASS is a group of satellites used for navigation. 
Work on this system began in the Soviet Union in 1976. Many rockets launched satellites into space over the years. By 2011, the system had 24 satellites. 
To find a location, a device needs signals from at least four satellites. 
Using both GPS and GLONASS is even better. It gives a device more satellites to talk to. This helps find a position faster and more accurately. It is very useful in cities with many tall buildings. These buildings can sometimes block the view of the sky. New satellites, like the GLONASS-K2, keep the system moving forward.
GLONASS is a global navigation satellite system used for finding locations. 

The system works through a group of satellites in space. 
History shows how much work went into building this system. Development of GLONASS began in the Soviet Union in 1976. Many rockets were launched starting on 12 October 1982. These launches added satellites to the group over many years. The full set of satellites was finished in 1995. In the late 1990s, the system saw a decline in capacity. However, the government made restoring it a top priority in 2001. This led to much more funding for the project. By October 2011, the full constellation of 24 satellites was restored. This allowed the system to provide coverage for the whole world.
There are many specific facts about how GLONASS operates. 
GLONASS links to the technology we use every single day. 


GLONASS, which stands for the Global Navigation Satellite System, is a Russian radionavigation-satellite service. 

The system operates through a specific orbital arrangement designed for global reach. The satellites are positioned in a middle circular orbit at a specific altitude. They possess an orbital period of 11 hours and 16 minutes. This means a single satellite completes 17 revolutions every 8 sidereal days to pass over the same location. The constellation is organized into three orbital planes, with eight evenly spaced satellites in each plane. A full constellation requires 24 satellites to provide global coverage. However, only 18 satellites are necessary to cover the territory of Russia. To calculate an exact position, a receiver must be within range of at least four satellites.
One of the most important features of GLONASS is its high orbital inclination. The satellites orbit at an inclination of 64.8 degrees. This high tilt makes the system especially suited for use in high latitudes, such as the North or South Poles. In these polar regions, receiving a standard GPS signal can often be problematic. Because of this orbital design, GLONASS provides excellent supplemental positioning for northern areas. The system's hardware also continues to evolve, with the latest GLONASS-K2 version launching in 2023. 
The technical method for transmitting signals is known as frequency-division multiple access, or FDMA. In this technique, each satellite transmits on a different frequency channel. The signals are transmitted in a 38-degree cone using right-hand circular polarization. The satellites broadcast two primary types of signals: open standard-precision signals and obfuscated high-precision signals. The standard-precision signals, such as L1OF and L2OF, are available to the public. The high-precision signals, like L1SF and L2SF, are intended for authorized users like the military. These signals use similar DSSS encoding and binary phase-shift keying (BPSK) modulation as GPS signals.
Detailed signal management is required to maintain accuracy and security. The L1 band signals center around 1602.0 MHz, with frequencies varying based on a specific channel number. The L2 band signals straddle 1246 MHz. To manage the 24-satellite constellation using only 15 channels, the system uses identical frequency channels for antipodal satellite pairs. These are satellites on opposite sides of the planet that are never visible to a user at the same time. The high-precision signal is broadcast in phase quadrature with the standard signal. This allows it to share the same carrier wave while maintaining a ten-times-higher bandwidth. Unlike the American P(Y) code which uses an encrypting W code, GLONASS restricted codes use security through obscurity.
The history of GLONASS began with development in the Soviet Union in 1976. Numerous rocket launches began on 12 October 1982 to build the constellation. While the system was completed in 1995, it faced a decline in capacity during the late 1990s. In 2001, the Russian government made restoring the system a priority, which significantly increased funding. GLONASS became the most expensive program of Roscosmos, consuming one-third of its budget in 2010. By October 2011, the full 24-satellite constellation was restored, enabling full global coverage. 
Accuracy is maintained through precise coordinate systems and data updates. GLONASS uses a coordinate datum known as PZ-90, which is based on Earth parameters from 1990. This differs from the GPS WGS 84 datum, which uses the North Pole location from 1984. Since 2013, the PZ-90.11 version has been broadcast to align with international reference systems. At peak efficiency, the standard signal provides horizontal accuracy within 5 to 10 meters. It also provides vertical positioning and precise velocity vectors. This data is supported by continuous updates from the Ground Control segment. 
Today, GLONASS technology is integrated into many different types of hardware. 

🖼️ Images & Media (7)
More to explore
✨ What else?
Related topics you might enjoy
🔬 Go deeper
More advanced topics to explore
🪜 Step back
Simpler topics to build understanding
What is Nepedia?
A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.