Satellite-based internet connectivityLEO Satellite Broadband

We’re on the cusp of the next great internet revolution, a revolution that will deliver fast, low-latency internet access wherever people are in the world, enabling a truly connected global society and increasing digital inclusion.
Today, while internet connectivity has become essential in many aspects of our everyday lives, there are still over 3.5 billion people without internet access, that’s nearly 40% of the world’s population. Even in more developed nations, internet access is not uniformly available, with some areas suffering limited, slow or zero internet access, including rural locations that may not be cost-effective to connect.
Now, as the result of recent technology advances, new generation Low Earth Orbit (LEO) satellites have the potential to deliver fast, affordable internet access anywhere in the world, on land, sea or in the air.
Satellite-based internet
Satellite-based internet access has been available for more than 25 years from geostationary (GEO) satellites in high earth orbit. The challenge has been that satellites operating at this altitude deliver an internet signal with minimum latency of 500-600ms, which is inadequate for many applications. Indeed, effective communication with these GEO satellites typically requires the use of a large, fixed dish, or a relatively powerful signal.
Figure 1: Satellite Orbit

New generation of satellites
Low Earth Orbit (LEO) satellites, the latest generation of satellites providing internet access, are smaller, lighter and less expensive than GEO satellites. Launch-ready Starlink satellites measure approximately 3.2m x 1.6m x 20cm, with a weight of 227kg (500lbs). The smallest LEO satellites are only now 11cm x 11cm x 2.8cm, weighing less than 1kg (2.2lbs). In addition, LEO satellites are mass-produced and can cost as little as $7,000 each, before launch costs are added. In comparison, the largest GEO satellites can be the same size as a city bus, weighing up to 6,500kg (14,000lbs) and costing $150m-$200m before launch costs.
Significantly, LEO satellites provide low latency (2ms to 27ms) and high bandwidth internet access, making them a viable alternative to both fixed and wireless internet for many applications.
As they operate at lower altitudes, LEO satellites can only cover relatively small areas. They also move quickly in the sky, so providers of satellite-based internet may need to deploy hundreds, even thousands, of satellites to provide the seamless connectivity required by users on the ground. On the plus side, the low altitude reduces the power needed to communicate with them, compared to GEO satellites.
To increase the resilience of these extensive LEO satellite constellations, Starlink and other network operators have equipped their satellites with laser-based satellite-to-satellite communication. This allows satellites in a constellation to communicate with each other, providing a continuous service even when some may not have a direct link to a ground station, for example when they pass over the sea or where a ground station is offline. Fujitsu’s Digital Annealer technology has the potential to help operators adapt even the most complex routing of satellites to maintain optimum throughput.
Note: Medium Earth Orbit (MEO) satellites are also available. However, these are typically more expensive to deploy then LEO satellites and suffer from increased latency because of their increased orbit, making them less suitable for satellite-based internet access applications.
Why now?
The migration to using LEO satellites to provide internet access has been made possible by the development of new, small, solid state, low-profile, phased array antennas. These flat, pizza-box size antennas, referred to as Electronically Steered Antennas (ESAs), make it straightforward to track fast-moving LEO satellites. The antennas have the added advantage of being able to provide internet connectivity on moving ships, aircraft, trains and vehicles. Indeed, a competitor in the Baja rally recently demonstrated the ability to livestream the rally directly from their car using the Starlink network, despite traveling at high speeds across extreme terrains.
In addition, the availability of reusable launch vehicles has improved the economics around putting satellites into low earth orbit, providing the capability to put 60 LEO satellites into low earth orbit in a single launch.
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What are the advantages of LEO satellites?
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Sustainability transformation
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8 ways that LEO satellite communications will drive transformation
We are already seeing exciting use cases for these new levels of connectivity. These are driving significant investment by encouraging providers to develop the new networks needed to meet growing demand. Recent early adoption examples include:
1. Autonomous vehicles
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2. Internet of Things (IoT)
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3. Emergency services
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4. Maritime and aviation
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5. Connecting rural communities and organizations
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6. Improving resilience
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7. Logistics applications
The ability to be always-connected will enable cold-chain and chill-chain logistics organizations to track and monitor their consignments in transit, ensuring they can provide their customers with accurate, real-time audit trails.
8. Combating digital inequalities
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LEO satellite provider options for enterprise IT
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Viasat
Viasat has announced a 300-satellite low-orbit network of its own that will come online in 2023, primarily targeting business customers.
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Kepler Communications
Kepler Communications is developing the ÆTHER constellation, a network of 140 LEO satellites focused on enabling IoT connectivity to support industrial, maritime, aviation and logistics applications.
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Airtel
Airtel in India and the UK government’s OneWeb are also collaborating to bring LEO satellite connectivity services to India, following the Indian Government’s decision to make universal broadband a priority under their Digital India program.
7 technical challenges for LEO satellites
1. Available orbits
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- 10% of their constellation in orbit within the first two years after the start of deployment
- 50% within five years from the start of development
- 100% within seven years from the start of deployment
For example, Starlink has permission to deploy 12,000 Starlink satellites from the US Federal Communications Commission (FCC) and the International Telecommunications Union (ITU) by 2026. Starlink also has the option to extend this to 42,000 satellites, in accordance with an agreed seven-year launch schedule.
2. Radio spectrum
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3. Interoperability
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4. Ongoing costs for providers
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5. Space debris
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6. Developing countries
The UN would like to see priority given to delivering satellite-based internet services to the 3.5 billion people living in developing countries, to help them benefit from the significant social, economic, financial and educational advantages that come with being online.



