Technology & Innovation
Airbus Advances Global 5G Connectivity with SpaceRAN and LEO Satellites
Airbus launches SpaceRAN to integrate terrestrial and non-terrestrial 5G networks using LEO satellites, targeting aviation connectivity by 2028.

This article is based on an official press release from Airbus.
The aerospace and telecommunications sectors are converging to eliminate global connectivity dead zones. Airbus has outlined its vision to integrate Terrestrial Networks (TN) with Non-Terrestrial Networks (NTN), aiming to deliver seamless, high-speed 5G coverage to commercial aviation and remote areas worldwide.
According to an official release from the Airbus Newsroom, the European aerospace manufacturer is leveraging Low Earth Orbit (LEO) satellite constellations, positioned 2,000 kilometers or less above the Earth, to act as “floating cell towers.” This initiative seeks to provide gate-to-gate 5G connectivity, transforming how passengers and aircraft systems interact with digital networks.
Central to this effort is the SpaceRAN demonstrator, a project spearheaded by the company’s innovation hub, Airbus UpNext. By prioritizing open standards and in-orbit data processing, Airbus is laying the groundwork for a unified communications fabric that bridges the gap between ground-based cellular towers and space-based infrastructure.
The SpaceRAN Demonstrator and Technological Shifts
Moving Beyond “Bent-Pipe” Satellites
Historically, satellite communications have relied on “bent-pipe” architectures, which simply relay signals back to Earth for processing. Airbus notes that the SpaceRAN (Space Radio Access Network) demonstrator, officially launched in January 2026, shifts this paradigm by utilizing software-defined satellites to process 5G data directly in space.
This in-orbit processing capability is designed to significantly reduce end-to-end latency and maximize data throughput. By handling data in orbit, the system can more efficiently manage the high-speed connections required for modern commercial aviation and real-time operational data exchange.
Fostering Open Industry Standards
A critical component of Airbus’s strategy is the push for an open, non-proprietary industry standard for 5G NTN. The company states that supporting universal standards will guarantee interoperability between different network operators globally.
This approach ensures that airlines and aircraft operators are not locked into a single external provider’s proprietary technology, allowing for greater flexibility, competitive pricing, and seamless handoffs between different networks as an aircraft traverses the globe.
Project Timeline and Strategic Partnerships
Milestones on the Road to 5G NTN
Airbus has established a clear roadmap for deploying this technology. The foundation was laid in February 2025, when Airbus, alongside Eutelsat, MediaTek, ITRI, and the European Space Agency (ESA), announced the world’s first successful trial of 5G NTN technology using the Airbus-built OneWeb LEO constellation.
Following the January 2026 launch of the SpaceRAN project, Airbus leaders, including Olivier Hauw, Head of the Airbus UpNext SpaceRAN demonstrator, and Brian Barritt, CTO of Aalyria, presented their vision for a unified communications fabric at the Mobile World Congress (MWC) in Barcelona in March 2026.
Looking ahead, Airbus projects that between 2027 and 2028, the SpaceRAN project will conduct ground demonstrations simulating a two-satellite LEO constellation. This phase will test essential functions like beam and satellite handovers. An in-orbit demonstration featuring a 5G NTN payload on an Airbus LEO satellite is scheduled for launch in 2027, with initial testing results expected by 2028.
Collaborating with Tech Innovators
To achieve these milestones, Airbus is partnering with specialized technology firms. UK-based AccelerComm is providing patented hardware acceleration technology for the SpaceRAN demonstrator. According to AccelerComm, this integration can increase satellite throughput by up to ten times compared to software-only implementations.
“A key enabler for standardized global connectivity and the evolution of future non-terrestrial network architectures,” stated David Helfgott, CEO of AccelerComm, regarding the delivery of 5G processing in orbit.
Additionally, Airbus is collaborating with Aalyria to explore software-defined NTN technology, focusing on further reducing latency and enabling seamless integration with terrestrial mobile networks.
Implications for Aviation and Beyond
Transforming the Passenger and Operational Experience
The successful deployment of 5G NTNs promises profound impacts on the commercial aviation sector. Airbus envisions a future where cellular-standard 5G connectivity is as ubiquitous on new aircraft as connected navigation systems are in modern automobiles, allowing passengers to experience the same network performance in the air as they do on the ground.
Beyond passenger entertainment, high-speed, low-latency connections will facilitate real-time data exchange between the aircraft and ground control. Airbus highlights that this capability will vastly improve flight management, enable predictive maintenance, and enhance overall flight safety.
AirPro News analysis
We view Airbus’s aggressive push into standardized 5G NTN as a strategic maneuver to commoditize inflight connectivity. By championing open standards over proprietary systems, Airbus is positioning itself as a neutral platform provider, potentially disrupting legacy satellite internet providers that rely on closed ecosystems.
Furthermore, the explicit mention of this technology serving as a stepping stone for 6G indicates that Airbus is playing a long game. The 2027–2028 testing window will be critical; if the in-orbit data processing performs as expected, it could trigger a rapid industry-wide shift toward integrated terrestrial and non-terrestrial networks, fundamentally altering airline operational models by the end of the decade.
Frequently Asked Questions
What is a Non-Terrestrial Network (NTN)?
An NTN utilizes space-borne or airborne assets, such as Low Earth Orbit (LEO) satellites, to provide network coverage in areas where traditional ground-based cell towers cannot reach, such as over oceans or in remote regions.
What is the SpaceRAN demonstrator?
Launched by Airbus UpNext in January 2026, SpaceRAN is a technology demonstrator aimed at integrating commercial aviation into a standardized global 5G network using software-defined satellites that process data directly in orbit.
When will Airbus test this technology in space?
Airbus plans to launch a 5G NTN payload on a LEO satellite in 2027, with initial in-orbit testing results expected by 2028.
Sources
Photo Credit: Airbus
Sustainable Aviation
UK, Google and NATS Launch Contrail Avoidance Trial
Operation Blue Skies is a £5M, 30-month trial targeting contrail reduction across Shanwick oceanic airspace.

A consortium led by the UK government, Google, and air navigation service provider NATS has launched a £5 million, 30-month trial to mitigate aviation-induced warming contrails across the entire Shanwick oceanic airspace.
Announced on August 18, 2026, in a Google press release, “Operation Blue Skies” marks the commercial aviation industry’s first attempt to implement contrail avoidance at the scale of an entire flight corridor rather than on a per-airline basis. The initiative targets a phenomenon responsible for approximately one-third of the sector’s total climate impact.
Scaling AI for airspace-wide mitigation
The program will conduct two operational trials during the winters of 2026-2027 and 2027-2028. Testing will take place exclusively within the NATS-controlled Shanwick oceanic airspace, which encompasses the eastern half of the North Atlantic corridor. According to Google, this specific airspace accounts for roughly 5 percent of global contrail warming.
Google UK is participating on a pro-bono basis, providing a £1.4 million in-kind contribution that includes artificial intelligence research, engineering resources, and computing infrastructure. Google Technical Program Manager Paul Hodgson and Senior Program Manager Chaim Langermann described the initiative as “the world’s first state-backed trial to avoid contrails at the scale of an entire oceanic airspace.”
The broader consortium includes the UK Department for Transport (DfT), the Met Office, Contrails.org, Imperial College London, the University of Cambridge, and the Aerospace Technology Institute (ATI).
“We’re partnering with Google to back British experts and innovators to find practical ways to make flying cleaner. This is a world-first, and it is British ingenuity leading the way. By testing small tweaks to flight paths over the Atlantic, we can cut the vapour trails left behind by planes,” said UK Government Minister for Aviation, Maritime and Freight Keir Mather, according to reporting by Smart Cities World.
Transitioning from individual flights to systemic integration
Operation Blue Skies builds upon earlier research validating the use of AI-powered forecasts to predict and avoid contrail-forming regions. Google Research previously partnered with American Airlines, EUROCONTROL’s Maastricht Upper Area Control Centre (MUAC), and FlightKeys to demonstrate that contrail avoidance is scientifically and operationally viable for individual flights.
The new trial shifts the operational coordination to the air navigation service provider. By integrating predictive models directly into the airspace management level, NATS and its partners aim to evaluate how contrail mitigation impacts overall airspace capacity, controller workload, and flight efficiency across a high-density oceanic routing system.
AirPro News analysis
We view the shift from individual airline dispatch trials to an air navigation service provider-led model as a critical maturation in aviation sustainability efforts. If NATS can successfully integrate AI-driven contrail forecasting into the Shanwick oceanic clearance process without degrading airspace capacity or significantly increasing fuel burn, it could establish a blueprint for global air traffic management. The winter testing windows are particularly relevant, as atmospheric conditions during these months are highly conducive to persistent contrail formation over the North Atlantic. The results of this 30-month program will likely dictate whether regulators and service providers mandate contrail avoidance routing in the next decade.
Sources: Google Blog
Photo Credit: Google
Technology & Innovation
GE Aerospace Bengaluru Engineers Drive CFM RISE Program
GE Aerospace’s Bengaluru hub leads Open Fan and hybrid electric development for the CFM RISE program targeting 20% fuel burn reduction.

Engineers at GE Aerospace’s John F. Welch Technology Centre (JFWTC) in Bengaluru, India, are spearheading the development of Open Fan architecture and hybrid electric systems designed to deliver a 20 percent reduction in commercial aircraft fuel burn.
In an official company article published on August 18, 2026, GE Aerospace detailed the specific contributions of its Indian research and development hub to the CFM RISE program. The engineering push in Bengaluru follows the manufacturer’s recent flight testing milestones, including a transatlantic hybrid electric flight demonstration in July 2026.
Doubling historical efficiency gains
The CFM RISE program targets a significant leap in performance over current-generation powerplants. Previous engine iterations developed by the company, including the GE90, GEnx, GE9X, and CFM LEAP, each delivered fuel efficiency improvements of 10 to 15 percent.
Nitesh Jain, a consulting engineer with 26 years at GE Aerospace, noted that the current development cycle aims to double those historical margins. Achieving a 20 percent improvement requires fundamental changes to engine design rather than incremental updates to existing turbofan models.
“We found the only way to get this kind of step change in fuel-burn efficiency without excessive weight and drag is to remove the constraints of the engine’s cover,” Jain stated in the company release.
The resulting Open Fan architecture relies on a combination of advanced aerodynamics, thermal systems design, and additive manufacturing. Jain indicated that these disciplines must work in concert to meet future commercial aviation demands for operability, durability, and manufacturability.
Scaling hybrid electric power for high altitudes
Alongside the Open Fan design, the Bengaluru team is adapting megawatt-scale hybrid electric systems for commercial aircraft. A primary technical hurdle involves engineering electrical components that can function reliably above 30,000 feet.
Sumitha Mohan, a senior engineer who has spent four years adapting hybrid electronics for aircraft, highlighted the distinct challenges of aerospace applications compared to terrestrial electric vehicles.
“Cars are designed to operate at sea level, at normal temperatures, with relatively few weight demands. With aircraft, you need systems as power-dense as possible, so as not to negatively affect fuel burn, and that can operate at high ambient conditions,” Mohan explained.
The integration efforts in Bengaluru directly supported recent flight tests of GE Aerospace’s modified Electrified Powertrain Flight Demonstration (EPFD) aircraft. In May 2026, the EPFD testbed completed the world’s first high-altitude hybrid electric flight. Two months later, in July 2026, the aircraft crossed the Atlantic Ocean en route to the Farnborough International Airshow, demonstrating the viability of integrating a megawatt-class hybrid system with existing onboard electrical networks.
AirPro News analysis
The detailed spotlight on the John F. Welch Technology Centre underscores a broader industry shift toward distributed, globalized research and development. As engine manufacturers approach the thermodynamic limits of traditional enclosed turbofans, achieving the 20 percent efficiency target of the CFM RISE program requires concurrent breakthroughs in materials science, aerodynamics, and electrical engineering.
We view the successful high-altitude and transatlantic flights of the EPFD aircraft as critical validation points for GE Aerospace. However, transitioning these megawatt-scale hybrid systems from a modified testbed to a certifiable, production-ready commercial airliner will require sustained engineering investment. The work emerging from Bengaluru indicates that GE Aerospace is positioning its international engineering hubs to carry a substantial portion of that developmental load.
Sources: GE Aerospace News
Photo Credit: GE Aerospace
Technology & Innovation
Eve Air Mobility and RV Connex Sign MOU for Thailand AAM
Eve Air Mobility and RV Connex signed an MOU to develop an eVTOL regulatory framework in Thailand, targeting commercial AAM readiness.

Eve Air Mobility (NYSE: EVEX) and Thai aerospace firm RV Connex Co., Ltd. signed a Memorandum of Understanding (MOU) on August 17, 2026, to collaboratively develop a regulatory framework for Advanced Air Mobility (AAM) operations in Thailand. The partnership focuses on evaluating operational scenarios, safety requirements, and infrastructure needs to prepare the country for commercial electric vertical takeoff and landing (eVTOL) flights.
Announced in a company press release, the agreement aims to accelerate Thailand’s readiness for urban air mobility by aligning local airspace rules with global standards. The collaboration will engage Thai aviation authorities to establish the necessary operational foundations for the Eve 100 eVTOL aircraft and the broader AAM ecosystem.
Regulatory Development and Local Integration
The partnership leverages RV Connex’s local aerospace expertise to navigate Thailand’s specific aviation system requirements. The companies plan to assess future airspace rules and infrastructure demands required to safely integrate eVTOL aircraft into existing traffic patterns.
RV Connex President Sujate Jantarang stated the MOU will create a strong framework to help Thai authorities develop modern, globally aligned Regulations for the new technology. Jantarang noted the company intends to help make Thailand a leader in global advanced air mobility.
“Thailand offers a fantastic opportunity for urban air mobility. Working with RV Connex lets us help shape the regulations this industry needs to grow,” said Johann Bordais, Chief Executive Officer at Eve Air Mobility.
Bordais added that the Partnerships demonstrates the Manufacturers commitment to building regulatory and operational foundations alongside local partners.
Eve Air Mobility Program Milestones
The regulatory push in Southeast Asia follows several technical and financial developments for the manufacturer. On August 3, 2026, Eve announced its engineering prototype completed its first partial transition flight, successfully activating the pusher propulsion system in flight.
On January 20, 2026, the company secured $150 million in debt financing from a bank syndicate to accelerate eVTOL development. The Thailand agreement also follows a July 22, 2026, partnership with the Florida Department of Transportation to advance AAM operations in the United States.
AirPro News analysis
We view Eve Air Mobility’s strategy of engaging local aerospace contractors like RV Connex as a pragmatic approach to international market entry. Rather than waiting for national regulators to independently draft AAM guidelines, eVTOL manufacturers are increasingly co-authoring these frameworks. Thailand represents a high-potential market for urban air mobility due to severe ground congestion in Bangkok and a strong tourism sector reliant on island and coastal transfers. By establishing regulatory parameters early, Eve positions its Eve 100 aircraft favorably for future Certification and operational approval within the Thai airspace system.
Sources: Eve Air Mobility
Photo Credit: Eve Air Mobility
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