Description
Geostationary-Satellite Orbit (GSO) refers to a specific high-altitude orbit used for telecommunications satellites. A satellite in GSO is positioned at an altitude of approximately 35,786 kilometers directly above the Earth's equator. At this altitude, the satellite's orbital period is exactly 24 hours, synchronizing with the Earth's rotational period. Consequently, when observed from the ground, the satellite appears stationary in the sky. This characteristic is crucial for establishing fixed ground antenna pointing, simplifying the ground station and user terminal design, as they do not need to track satellite movement.
Within the 3GPP framework, starting from Release 15, GSO satellites are defined as a component of Non-Terrestrial Networks (NTN). The 3GPP specifications define the technical parameters for integrating GSO satellites into the 5G NR radio access network. This includes defining the specific radio characteristics, such as the very large propagation delay (approximately 250 ms one-way) and Doppler shift characteristics, which are negligible for GSO compared to Low Earth Orbit (LEO) satellites due to the fixed relative position. The radio interface must be adapted to handle these unique channel conditions.
The system architecture for GSO-based NTN involves the satellite acting as a radio relay node, or in some scenarios, a base station (gNB). The satellite communicates with User Equipments (UEs) on the service link and with a ground-based gateway station on the feeder link. The gateway then connects to the 5G core network. Key challenges addressed in the specifications include timing advance management for the enormous delay, handling of discontinuous coverage (for regenerative payloads), and mobility procedures adapted for a virtually fixed cell from the user's perspective. The radio specifications (e.g., 38.101, 38.306) define frequency bands, UE requirements, and performance aspects for operation with GSO satellites.
Purpose & Motivation
The integration of GSO satellites into 3GPP standards was motivated by the need to provide seamless global coverage, including in remote, maritime, and aerial areas where terrestrial networks are economically or physically impractical to deploy. Traditional terrestrial cellular networks have coverage gaps that satellites are uniquely positioned to fill. GSO satellites, with their fixed footprint covering roughly a third of the Earth's surface, offer a proven and reliable method for broadcast and wide-area communications.
3GPP's work on NTN, including GSO, aims to unify terrestrial and non-terrestrial networks under a single 5G system architecture. This creates a true global network, enabling service continuity for users moving between terrestrial and satellite coverage. It also allows for new use cases like massive IoT sensor networks in remote areas, backhaul for terrestrial networks, and communications for transportation sectors (aviation, shipping). GSO was included alongside LEO and MEO orbits to provide a range of solutions balancing coverage area, latency, and infrastructure cost, with GSO offering the advantage of continuous coverage over a vast region with a small number of satellites.
Classification
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (4 CRs across 2 releases). Complements the general historical overview above with the evidence-based evolution of this function.
Studied in Rel-15, normative work from Rel-18.
In Release 18, clarifications and corrections were introduced for the GSO function, specifically regarding the accurate usage of terminology for service link types and the distinct roles of LEO, GEO, GSO, and NGSO satellites. The specification text illustrates a key operational scenario where a device can maintain service continuity by switching its communication path to a MEO/GSO satellite, highlighting GSO's role in partnerships and multi-orbit networks.
In Release 19, the new work on the GSO function introduced specific UE demodulation performance requirements for 5G broadcast services delivered via geostationary satellites. This was complemented by a correction to the conformance testing specifications related to 5G broadcast over GSO. These enhancements specifically address scenarios where a UE, such as a device on an autonomous ship, can be served via a GSO satellite as part of multi-orbit network operations.
Explore further
Broader topics and technologies where GSO plays a role.
Defining Specifications
3GPP specifications that define or reference GSO, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 22.887 vk00 | Study on satellite access - Phase 4 | Rel-20 |
| TS 26.804 vj10 | 5G Media Streaming Extensions Study | Rel-19 |
| TS 36.102 vj10 | E-UTRA UE Satellite Access RF Requirements | Rel-19 |
| TS 36.108 vj10 | Satellite Access Node RF Requirements | Rel-19 |
| TS 36.300 vj00 | E-UTRAN Radio Interface Protocol Architecture Overview | Rel-19 |
| TS 36.331 vj00 | LTE RRC Protocol Specification | Rel-19 |
| TS 36.521 vj00 | E-UTRA UE Conformance ICS Proforma | Rel-19 |
| TS 38.101 vj31 | NR User Equipment Radio Transmissions | Rel-19 |
| TS 38.300 vj00 | NG-RAN Overall Description | Rel-19 |
| TS 38.306 vj00 | NR UE Radio Access Capability Parameters | Rel-19 |
| TS 38.331 vj00 | NR Radio Resource Control (RRC) Protocol Specification | Rel-19 |
| TS 38.523 vj20 | 5G NR UE Conformance Testing: Idle/Inactive | Rel-19 |
| TS 38.811 vf40 | Study on NR Support for Non-Terrestrial Networks | Rel-15 |
| TR 38.882 vi00 | Technical Report on UE Location Service | Rel-18 |