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EVIO Inc Launches EVIO 810 Hybrid-Electric Regional Aircraft Program

EVIO Inc. debuts the EVIO 810 hybrid-electric regional aircraft with 450 pre-orders, supported by Boeing and Pratt & Whitney Canada.

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This article is based on an official press release from EVIO Inc. and verified industry data.

EVIO Inc. Debuts Hybrid-Electric Program with Boeing Backing and 450 Pre-Orders

Montreal-based aerospace company EVIO Inc. has officially launched its EVIO 810 hybrid-electric regional aircraft program, marking a significant shift in the sustainable aviation landscape. According to the company’s announcement, the program enters the market with substantial momentum, securing 450 conditional pre-orders from two undisclosed major Airlines. These commitments are split between 250 firm orders and 200 options.

The launch is bolstered by strategic investment and technical support from Boeing, alongside a propulsion collaboration with Pratt & Whitney Canada. The EVIO 810 is a “clean-sheet” design targeting the 76-to-100-seat market, a segment that has seen limited innovation in recent decades. The aircraft aims to replace aging regional turboprops and jets with a solution that balances operational reality with aggressive decarbonization goals, targeting an entry into service (EIS) in the early 2030s.

The EVIO 810: Technical Specifications

The EVIO 810 is positioned as a regional hybrid-electric airliner designed to address the “replacement crisis” facing regional fleets. Unlike smaller electric concepts, this aircraft is sized to handle standard regional routes with a capacity of 76 to 100 passengers.

Propulsion and Performance

At the core of the EVIO 810 is a “Strong Hybrid” propulsion architecture. According to technical details released by the company, this system allows the aircraft to operate in fully Electric-Aviation mode during specific flight phases,such as taxiing, takeoff, landing, and short-range flights of approximately 100 nautical miles (185 km). For longer missions, the turbine engines engage to extend range and recharge batteries.

The aircraft features four wing-mounted nacelles. Each houses a Pratt & Whitney Canada PT6E turbine engine mated to an electric motor and battery pack. This configuration aims to deliver:

  • Range: Optimized for 200–300 nm routes, with a maximum capability of up to 500 nm (approx. 926 km).
  • Speed: Comparable to current regional turboprops, estimated at 300–350 knots.
  • Versatility: A Cargo-Aircraft door and reinforced floor capable of handling standard pallets, suitable for freight and potential defense applications.

Strategic Partnerships and Leadership

EVIO’s rapid ascent from a “stealth” entity to a major industry player is underpinned by high-profile Partnerships. Boeing has stepped in as a strategic investor, providing both capital and technical services to assist with certification and manufacturing scaling. Simultaneously, the collaboration with Pratt & Whitney Canada leverages the legendary reliability of the PT6 engine family, a move designed to reduce the technical risk associated with unproven propulsion systems.

The company is led by CEO Michael Derman and CTO Luc Van Bavel. The Board of Directors includes notable industry veterans such as Rob Dewar, widely recognized as the “Father of the CSeries” (now the Airbus A220), and Frank Cappuccio, former EVP of Lockheed Martin Skunk Works.

“The EVIO 810 represents a pragmatic evolution in regional aviation, combining proven turbine reliability with the efficiency of electric propulsion,” the company stated in its release materials.

AirPro News Analysis: The Regional Market Gap

The launch of the EVIO 810 addresses a critical gap in the aviation market. As major manufacturers like Airbus and Embraer focus on larger jets (100+ seats), the sub-100-seat market has been largely reliant on aging platforms like the De Havilland Dash 8 and ATR series. Airlines are under increasing pressure to decarbonize short-haul flights, which are disproportionately carbon-intensive on a per-passenger basis.

EVIO’s approach differs significantly from competitors like Heart Aerospace, which targets the 30-seat commuter market. By aiming for up to 100 seats, EVIO places itself in direct competition with traditional regional jets and the upcoming Maeve M80. The sheer volume of the initial order book,450 aircraft,suggests strong interest from the world’s largest regional carriers, potentially including operators like SkyWest or major airline subsidiaries looking to hedge against rising fuel costs and carbon taxes.

Frequently Asked Questions

When will the EVIO 810 enter service?
The company targets entry into service (EIS) in the early 2030s.

Who provides the engines for the aircraft?
The propulsion system utilizes Pratt & Whitney Canada PT6E turbine engines integrated with electric motors.

What is the range of the aircraft?
The aircraft is optimized for routes between 200 and 300 nautical miles but is capable of flying up to 500 nautical miles.

Is the aircraft fully electric?
No, it uses a “Strong Hybrid” system. It can fly fully electric for short distances (approx. 100 nm) and uses turbine power for cruise and longer ranges.

Sources

Business Wire (EVIO Inc. Press Release)

Photo Credit: EVIO Inc.

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Sustainable Aviation

Cathay Pacific and Google Expand AI Contrail Avoidance Program

Cathay Pacific and Google scale AI contrail avoidance to long-haul routes after trials cut warming impact by 40 percent.

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Cathay Pacific Airways (CX) and Google announced an expanded partnerships on September 7, 2026, to scale artificial intelligence-driven contrail avoidance technology across the airline’s ultra-long-haul network. Following initial trials that reduced the climate impact of condensation trails by approximately 40 percent, the initiative will now cover transpacific, polar, and Asia-Pacific routes.

In a press release issued by the Hong Kong-based carrier, Cathay Pacific detailed how the system integrates Google’s AI predictions, satellite imagery, and weather data directly into the pilots’ Electronic Flight Folder. Developed in collaboration with the non-governmental organization Contrails.org, the technology allows flight crews to make minor altitude adjustments to avoid atmospheric zones prone to contrail formation. Contrails are responsible for roughly 35 percent of the aviation industry’s total global warming impact.

Scaling AI for climate mitigation

The decision to expand the program follows a testing phase initiated in late 2025. During that period, Cathay Pacific conducted over 80 flights utilizing the predictive technology. The results demonstrated a 40 percent reduction in the warming effect of contrails on those specific routes, proving the operational viability of the software on long-duration flights.

Lawrence Fong, Director of Digital and IT at Cathay Pacific, stated that the collaboration highlights how data and innovation can address real-world challenges at scale. Fong noted that the aviation sector requires immediate climate solutions and that artificial intelligence is accelerating that progress.

Operational integration and cost efficiency

Implementing contrail avoidance requires minimal changes to existing flight operations. Pilots receive contrail forecasts alongside standard operational data, enabling them to request altitude changes from air traffic control when approaching high-risk zones. While flights that alter their trajectory to avoid contrails consume approximately 2 percent more fuel, the fleet-wide fuel burn increase is estimated at just 0.3 percent because only a small fraction of flights require adjustment.

This efficiency makes contrail mitigation highly cost-effective. Google estimates the cost of implementation at $5 to $25 per ton of carbon dioxide equivalent (CO2e). Kemal Armada, Product Manager for Climate and AI at Google, described the technology as an extremely low-cost and effective climate lever that is immediately available for existing aircraft fleets regardless of the fuel type currently in use.

Broader industry adoption

The Cathay Pacific expansion is part of a broader push by Google to deploy its contrail prediction models across the global aviation sector. Prior to the Cathay Pacific trials, Google partnered with American Airlines (AA) for a 70-flight test program that achieved a 54 percent reduction in contrail formation.

On August 18, 2026, Google also launched “Operation Blue Skies,” a 30-month trial backed by the United Kingdom government. That initiative aims to test contrail avoidance at the scale of an entire oceanic airspace, focusing on the Shanwick Oceanic Control Area in the North Atlantic corridor.

AirPro News analysis

We view the expansion of the Cathay Pacific and Google partnership as a critical validation of software-based climate interventions in commercial aviation. While the industry heavily promotes Sustainable Aviation Fuel (SAF) and next-generation propulsion systems, those technologies face severe supply constraints and decades-long development timelines. Contrail avoidance utilizes existing aircraft and current air traffic management frameworks. If the 0.3 percent fleet-wide fuel penalty holds true at scale, airlines can achieve a disproportionately large reduction in their overall climate impact for a fraction of the cost of SAF procurement. The primary hurdle moving forward will likely be air traffic control capacity, as widespread altitude adjustments in congested airspace could introduce operational complexities that isolated trials have not yet fully tested.

Sources: Cathay Pacific

Photo Credit: Cathay Pacific

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Sustainable Aviation

Nova Pangaea Completes 72-Hour SAF Endurance Trial at Teesside

Nova Pangaea Technologies validates its REFNOVA waste biomass to bioethanol process with a 72-hour continuous trial at its UK plant.

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Nova Pangaea Technologies (NPT) has completed a 72-hour continuous endurance trial of its REFNOVA technology at its Teesside demonstration plant in the United Kingdom, validating a process that converts waste biomass into bioethanol for Sustainable Aviation Fuel (SAF) production.

Announced in a press release on August 24, 2026, the milestone demonstrates a scalable alternative to hydroprocessed esters and fatty acids (HEFA) derived from used cooking oil. The HEFA pathway currently dominates the SAF market but faces supply constraints and escalating costs as competition intensifies across biofuel sectors.

Scaling waste-to-fuel technology

During the trials, the Teesside facility processed up to three tonnes of softwood residues per day, maintaining stable operation for up to 72 hours. The successful run follows initial smaller-scale tests conducted in early 2025 that proved the viability of the REFNOVA process outside laboratory conditions.

NPT Chief Executive Officer Stewart Stewart stated in the press release that the trials validate the technology and will support investor confidence as the company moves toward constructing its first commercial plant.

To date, NPT has raised over £21 million from investors including International Airlines Group (IAG), Mercia Ventures, and UK government grants. The company plans to conduct further trials in 2027 to refine the design of its commercial-scale facilities.

Project Speedbird and UK SAF mandates

The technological validation directly supports Project Speedbird, a joint initiative between NPT, LanzaJet, and British Airways. Backed by the UK government’s Advanced Fuels Fund, the project aims to develop domestic SAF production capabilities using agricultural and wood waste. Under this initiative, NPT plans to construct four UK facilities to produce bioethanol.

The push for domestic production aligns with the UK SAF Mandate, which requires 3.6% of jet fuel supplied in 2026 to come from sustainable sources. This requirement scales to 10% by 2030 and 22% by 2040.

Speaking to SAF Investor, Stewart emphasized the urgency of diversifying feedstocks amid rising demand and geopolitical supply chain shocks.

“Nova Pangaea’s tried and tested technology offers a genuine alternative. By tapping into the plentiful supplies of waste biomass, we can boost SAF production, enhancing our energy security, and building a new domestic industry that generates jobs and revenues while reducing fossil fuel emissions,” Stewart told the publication.

AirPro News analysis

We view the successful endurance trials at Teesside as a necessary step toward breaking the aviation industry’s reliance on used cooking oil and waste animal fats. While HEFA-based SAF has proven the viability of drop-in replacement fuels, the limited global supply of waste oils creates a hard ceiling on production capacity.

Unlocking agricultural and forestry waste as a feedstock opens a significantly larger volume of raw material. The International Air Transport Association (IATA) estimates that available waste biomass in Europe and the UK could yield 30 million tonnes of SAF by 2030. Beyond volume, the REFNOVA process generates biochar as a byproduct. This creates a carbon-negative fuel lifecycle, which will become increasingly valuable to airlines as regulatory frameworks tighten around lifecycle emissions accounting.

Sources: Nova Pangaea Technologies

Photo Credit: Nova Pangaea Technologies

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Sustainable Aviation

KBR PureSAF Technology Selected for Kazakhstan First SAF Plant

KBR licenses PureSAF technology for Kazakhstan’s first SAF facility, using an alcohol-to-jet process with domestic feedstocks.

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Global engineering firm KBR announced on August 24, 2026, that it secured a contracts to license its proprietary PureSAF technology and provide engineering design for Kazakhstan’s inaugural Sustainable Aviation Fuel (SAF) production facility. The project, developed in partnership with KazMunayGas-Aero LLP (KMG-Aero) and KazFoodProducts (KFP), will utilize domestic agricultural feedstocks to produce low-carbon aviation fuel via an alcohol-to-jet (AtJ) process.

In a press release detailing the contract award, KBR confirmed the agreement supports Kazakhstan’s strategic objective to establish itself as an international aviation hub while advancing aviation decarbonization. The planned facility will leverage technology developed in collaboration with Swedish Biofuels AB to convert ethanol into drop-in aviation fuel.

Technology and Project Scope

The facility will utilize KBR’s PureSAF technology, an alcohol-to-jet pathway designed to process agricultural feedstocks into sustainable aviation fuel. The foundational trilateral agreement covering the Process Design Package (PDP) and technology licensing was signed by KBR, KMG-Aero, and KFP in Astana on July 23, 2026. KBR, which employs approximately 37,000 people and operates in 28 countries, will provide the engineering framework required to scale the AtJ process for commercial output.

KBR Sustainable Technology Solutions President Jay Ibrahim stated the company is honored to support the national commitment to reduce greenhouse gas emissions.

“KBR’s PureSAF is a feed-flexible, bankable technology that is designed to deliver high SAF yields and supports the project across the full lifecycle. We look forward to closely collaborating and supporting the successful execution of this landmark SAF project,” Ibrahim said.

Kazakhstan’s Aviation Decarbonization Strategy

The KBR contract follows a series of government initiatives aimed at building a domestic SAF supply chain. On August 4, 2026, Kazakh Prime Minister Olzhas Bektenov and Dr. Peter Lee of Hong Kong-based Full Vision Capital signed a memorandum of understanding to explore creating a green aviation fuel ecosystem in the city of Alatau. This proposed ecosystem would cover the full production cycle, from cultivating agricultural feedstock to manufacturing the finished product.

These infrastructure investments align with recommendations from global aviation regulators and industry groups. In April 2026, the International Air Transport Association (IATA) emphasized that continued investment in SAF, alongside new airport infrastructure, is critical for Kazakhstan to capitalize on global passenger and cargo traffic and strengthen its domestic aviation sector.

AirPro News analysis

The KBR contract award represents a concrete technical step in Kazakhstan’s ambition to localize SAF production, but several commercial variables remain undefined. The August 24 announcement did not disclose the financial value of the engineering contract, the projected production capacity of the facility, or a target completion date. We note that while the alcohol-to-jet pathway is a proven method for SAF production, scaling agricultural feedstock supply-chain domestically will be critical to the plant’s long-term viability. The parallel involvement of Full Vision Capital suggests the government is actively working to finance and structure this agricultural supply chain in the Alatau region to ensure the KBR-designed facility has the necessary inputs to operate at scale.

Sources: KBR

Photo Credit: Montage

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