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Magma Aviation Partners with Air Atlanta to Improve Fuel Efficiency

Magma Aviation and Air Atlanta use SkyBreathe AI platform to reduce fuel consumption by 250,000 kg and cut CO2 emissions by 800,000 kg in 2025.

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This article is based on an official press release from Magma Aviation.

Global air cargo specialist Magma Aviation has announced an expanded partnership with aircraft operator Air Atlanta to bolster environmental performance across its flight network. According to an official press release from the company, the collaboration centers on the deployment of “SkyBreathe,” an advanced eco-flying digital platform designed to reduce the environmental footprint of heavy freight operations.

The aviation industry faces mounting pressure to decarbonize, and digital transformation is proving to be an immediate, viable solution. By leveraging AI and big data to monitor and optimize fuel usage, Magma Aviation reported a reduction of over 250,000 kilograms in fuel consumption in 2025 alone.

This substantial fuel savings translates to an estimated reduction of 800,000 kilograms of CO2 emissions. The milestone highlights how data analytics can help cargo operators achieve sustainability goals without compromising operational reliability or safety.

The SkyBreathe Technology and Its Impact

Harnessing AI for Fuel Efficiency

The core of this sustainability initiative is SkyBreathe, an eco-flying platform developed by French clean-tech company OpenAirlines. According to industry data, OpenAirlines launched the software in 2013 after extensive research and development. Today, the software is utilized by over 80 airlines worldwide, including major carriers like Air France, easyJet, and DHL.

The platform utilizes Big Data, Artificial Intelligence (AI), and Machine Learning to automatically analyze vast amounts of flight data. This includes billions of data records from aircraft black boxes, flight trajectories, aircraft weight, and weather conditions. By assessing this data, SkyBreathe identifies fuel-saving opportunities and provides actionable recommendations to pilots and operations teams.

According to Magma Aviation, the platform highlights specific inefficiencies, such as suboptimal flight trajectories or fuel burn patterns, allowing internal teams to implement practical, data-driven corrective actions.

Industry benchmarks indicate that the adoption of SkyBreathe can reduce an airline’s total fuel consumption and carbon footprint by up to 5%, notably without requiring any physical modifications to the aircraft.

The Collaborative Ecosystem

Magma Aviation and Air Atlanta Icelandic

Modern aviation relies heavily on strategic partnerships to execute complex global logistics. Magma Aviation, founded around 2009 and headquartered in the UK, operates as a cargo management company specializing in charter and regular air freight services. Following acquisitions by Chapman Freeborn in 2017 and subsequently by the Dublin-based Avia Solutions Group in 2019, Magma has become a key player in the global logistics sector.

To operate its fleet of Boeing 747-400 jumbo freighters, Magma partners with Air Atlanta Icelandic. Founded in 1986 and celebrating its 40th anniversary in February 2026, Air Atlanta is a prominent ACMI (Aircraft, Crew, Maintenance, and Insurance) and charter airline. The company is recognized globally as one of the most significant operators of the Boeing 747 aircraft.

The expanded partnership allows Magma to operate more consciously. By integrating SkyBreathe into their daily operations, Air Atlanta provides Magma Aviation with granular, real-time insights into flight performance. This collaborative ecosystem ensures that both the cargo manager and the aircraft operator are aligned in their environmental objectives.

Industry Context and Global Implications

Immediate Climate Solutions

The aviation sector is responsible for nearly 1 billion tons of CO2 emissions annually. With regulatory scrutiny intensifying globally, airlines and cargo operators are under immense pressure to decarbonize their supply chains.

While long-term solutions like Sustainable Aviation Fuel (SAF) and next-generation aircraft are still scaling and face supply constraints, digital optimization tools offer immediate, measurable reductions in emissions. The Magma Aviation and Air Atlanta partnership reflects a broader trend in the air cargo sector toward leveraging software and AI to meet environmental objectives today, rather than waiting for the hardware of tomorrow.

AirPro News analysis

At AirPro News, we observe that fuel is typically an airline’s largest operating expense. By reducing fuel consumption through software like SkyBreathe, Magma Aviation and Air Atlanta are simultaneously lowering operational costs and achieving corporate social responsibility (CSR) milestones. This partnership proves that ecological and economic goals can align in the heavy-polluting freight sector. The tripartite approach, combining a cargo manager (Magma), an aircraft operator (Air Atlanta), and a tech provider (OpenAirlines), serves as a highly effective, scalable model for solving supply chain emissions in the near term.

Frequently Asked Questions

  • What is SkyBreathe?
    SkyBreathe is an eco-flying digital platform developed by OpenAirlines that uses Artificial Intelligence and Big Data to monitor and optimize aircraft fuel usage.
  • How much fuel did Magma Aviation save in 2025?
    According to the company’s data, Magma Aviation reduced its fuel consumption by over 250,000 kilograms in 2025, preventing an estimated 800,000 kilograms of CO2 from entering the atmosphere.
  • Who operates Magma Aviation’s Boeing 747 fleet?
    Magma Aviation partners with Air Atlanta Icelandic, a prominent ACMI and charter airline, to operate its heavy freighter aircraft.

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Photo Credit: Magma Aviation

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Sustainable Aviation

Syzygy Plasmonics and IFC Partner on SAF Projects in Latin America

Syzygy Plasmonics and IFC sign a framework to develop SAF projects in Latin America, starting with a 350,000-gallon facility in Uruguay.

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Syzygy Plasmonics and the International Finance Corporation (IFC) announced a framework agreement on August 18, 2026, to develop a pipeline of SAF projects across Latin America, beginning with a commercial-scale facility in Uruguay.

The partnership, detailed in a press release issued by Syzygy Plasmonics, pairs the company’s proprietary light-driven reactor technology with the IFC’s technical and commercial advisory services. The initiative targets emerging markets by utilizing regional renewable energy and biogas feedstocks to produce lower-carbon alternatives to conventional jet fuel.

The NovaSAF-1 project in Uruguay

The first project under this framework is NovaSAF-1, located in Durazno, Uruguay. The facility is projected to produce an estimated 350,000 gallons of SAF annually. Syzygy Plasmonics has set a target year of 2028 for the commencement of commercial-scale operations and initial fuel deliveries from the site.

NovaSAF-1 will utilize biogas sourced from the nearby Estancias Del Lago powdered milk plant. This biogas will be combined with Uruguayan renewable electricity to produce synthetic paraffinic kerosene. The production process integrates Syzygy’s light-driven technology with Fischer-Tropsch technology licensed from Velocys to maximize fuel output. According to Syzygy Plasmonics, this process yields an estimated reduction in lifecycle greenhouse gas emissions of up to 90 percent compared with conventional jet fuel.

Commercial backing and offtake agreements

The IFC framework agreement follows established commercial commitments for the NovaSAF-1 facility. On January 20, 2026, global commodities group Trafigura signed a binding six-year offtake agreement to purchase the entire production volume from the Uruguayan plant. The agreement also includes an option for Trafigura to purchase additional volumes from future Syzygy projects.

Syzygy Plasmonics CEO Trevor Best described the commercial arrangements as a critical step toward commercial-scale impact and disrupting the SAF market. The IFC, a member of the World Bank Group, will provide advisory support to help scale these operations across the region.

“The transition to lower-carbon aviation will depend on technologies that are not only innovative, but commercially viable and scalable,” said Raphaël Eskinazi, IFC Regional Investment Manager for Manufacturing and Forests in Latin America and the Caribbean. “IFC’s role is to help bridge that transition: supporting pioneering projects that can mobilize private capital, demonstrate new business models and create pathways for broader market adoption across emerging economies.”

AirPro News analysis

We view the alignment of IFC advisory services, Trafigura’s guaranteed offtake, and Velocys’ established Fischer-Tropsch technology as a significant de-risking mechanism for Syzygy Plasmonics. Scaling novel SAF production methods, particularly those categorized as Renewable Fuels of Non-Biological Origin (RFNBO), typically faces steep financing hurdles. By securing a guaranteed buyer for 100 percent of the initial plant’s output before finalizing the IFC framework, Syzygy has demonstrated a clear path to revenue.

Latin America presents a highly favorable environment for RFNBO production. The region offers abundant agricultural waste for biogas and a growing grid of renewable electricity. If NovaSAF-1 meets its 2028 production targets, the framework agreement with the IFC positions Syzygy to replicate this model rapidly across other agricultural and renewable energy hubs in the Southern Hemisphere.

Sources: Syzygy Plasmonics via PR Newswire (IFC Agreement)

Photo Credit: Syzygy Plasmonics

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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.

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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

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Sustainable Aviation

ZeroAvia Leads HyPRIME Liquid Hydrogen Refuelling Project

ZeroAvia leads Project HyPRIME, backed by over £2 million in UK funding to test mobile LH2 refuelling at commercial airports.

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ZeroAvia is leading a newly formed consortium to develop and test a mobile liquid hydrogen (LH2) refuelling vehicle at commercial airports in the United Kingdom, backed by over £2 million in government funding.

The initiative, known as Project HyPRIME (Hydrogen Propulsion Refuelling Infrastructure Mobile Ecosystem), was officially announced by the UK Department for Transport (DfT) and Innovate UK on July 23, 2026. ZeroAvia formally highlighted its leadership of the project on August 4, 2026. The consortium aims to demonstrate that hydrogen-electric aircraft can be refuelled within standard commercial turnaround times.

Advancing liquid hydrogen infrastructure

The HyPRIME consortium includes ZeroAvia as the lead partner, alongside ULEMCO Ltd, GeoPura Ltd, Bristol Airport Ltd, and Birmingham Airport Ltd. The group is tasked with designing, building, and testing a mobile refuelling system capable of supporting commercial hydrogen-electric aircraft operations.

A key technical objective of the project is the capture and utilization of “boil-off” hydrogen. Rather than venting this gas, the system will redirect it to fuel hydrogen-powered Ground Support Equipment (GSE), such as aircraft tugs, and on-site power generation units. The findings from these tests will inform future regulatory, safety, and infrastructure investment decisions for scaling LH2 fuel across the UK aviation sector.

Airport integration and sustainability targets

Testing and demonstrations for the mobile refuelling vehicle will take place in live commercial airport environments at Birmingham Airport (BHX) and Bristol Airport (BRS). Integrating cryogenic fuels into active aprons requires coordination with regulators, including the UK Civil Aviation Authority (CAA), to establish safe handling procedures.

Tom Denton, Head of Sustainability at Birmingham Airport, stated that hydrogen electric aircraft are progressing quickly and airports need to understand how the fuel can be safely and efficiently integrated into daily operations.

“HyPRIME gives us the opportunity to test procedures and build the knowledge required to support future zero emission flights from Birmingham. Taking part in this project helps us maintain the momentum we’ve built over the past few years and moves us that bit little closer to achieving our mission of running a lower carbon airport,” Denton said in a press release.

Birmingham Airport recently reported an 11% reduction in location-based greenhouse gas emissions for 2025/26 and has set a target year of 2033 to achieve net zero carbon emissions from its direct operations. Bristol Airport is also expanding its hydrogen footprint, having been announced on July 23, 2026, as a partner in the CHOSAN (Cryogenic Hydrogen Optimised Systems for AviatioN) project, which aims to deliver the first flight of a liquid hydrogen-powered aircraft from a UK commercial airport.

Government funding and strategic partnerships

Project HyPRIME is funded under the UK Government’s Zero Emission Flight Demonstrator Programme. According to Bristol Airport, the total funding pool for the program is £8 million. Reporting by BusinessGreen indicates that over £2 million of that total was specifically awarded to the HyPRIME initiative.

The announcement follows a series of strategic agreements for ZeroAvia in July 2026. On July 8, 2026, the company announced a collaboration with Marshall Aerospace to explore hydrogen-electric capabilities for military and defense platforms. On July 17, 2026, ZeroAvia and Safran forged a partnership to develop high-temperature hydrogen fuel cells for aviation applications.

AirPro News analysis

We view Project HyPRIME as a necessary step in bridging the gap between hydrogen aircraft development and practical airport operations. While powertrain technology has advanced rapidly, the logistical challenge of handling cryogenic liquid hydrogen on a busy commercial apron remains a significant hurdle. By testing boil-off capture for GSE, the consortium is addressing both safety and economic efficiency. Proving that LH2 can be managed within standard turnaround times without disrupting existing airport operations will be essential for securing regulatory approval and driving future infrastructure investments.

Sources: ZeroAvia

Photo Credit: ZeroAvia

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