Technology & Innovation
Singapore and GE Aerospace Launch SPAARC for Aviation R&D
Singapore and GE Aerospace establish SPAARC to advance aviation research in AI safety, airspace modernization, and propulsion technologies.

This article is based on an official press release from GE Aerospace.
Singapore and GE Aerospace Launch SPAARC to Accelerate Aviation R&D
On February 2, 2026, key aviation stakeholders in Singapore signed a landmark Memorandum of Understanding (MOU) with GE Aerospace, officially establishing the Singapore Partnership for Aviation & Aerospace Research and Capability (SPAARC). Announced at the 3rd Changi Aviation Summit, this collaboration signals a major strategic shift for GE Aerospace in the region, expanding its focus from traditional Maintenance, Repair, and Overhaul (MRO) operations to upstream research and development.
According to the official press release, the partnership aims to accelerate the adoption of next-generation technologies essential for a sustainable global aviation hub. The agreement brings together GE Aerospace, the Civil Aviation Authority of Singapore (CAAS), the Singapore Economic Development Board (EDB), and the International Centre for Aviation Innovation (ICAI). Together, these entities plan to co-develop and test solutions in a real-world environment, specifically targeting safety, efficiency, and sustainability.
This initiative aligns with GE Aerospace’s broader strategy to deepen its footprint in the Asia-Pacific region. Late last year, the company announced a US$75 million investment to upgrade capabilities across the region, with a significant portion dedicated to enhancing Singapore’s status as a “living lab” for aviation technology.
The Three Pillars of SPAARC
The SPAARC initiative will concentrate its research and development efforts on three primary domains, designed to address the most pressing challenges in modern aviation.
1. AI and Digital Safety
As automation becomes increasingly critical to flight operations, the partnership will focus on developing robust governance frameworks for Artificial Intelligence. The goal is to ensure that safety-critical systems meet rigorous aviation standards. Additionally, the partners intend to utilize AI to enhance maintenance procedures, flight operations, and broader airspace management.
2. Airspace Modernization
To optimize flow and capacity at major hubs like Changi Airport, SPAARC will work on creating advanced analytical systems for flight route planning. These digital platforms aim to improve coordination between airports, airlines, and flight crews, reducing delays and fuel consumption.
3. Advanced Aerodynamics
The third pillar involves upstream research to support next-generation propulsion systems, such as Open Fan engines. Researchers will study how these novel engine designs integrate with current aircraft and airport infrastructure, preparing the ground for future fleet upgrades.
“Together, through the new Singapore Partnership for Aviation & Aerospace Research and Capability (SPAARC), we’ll shape what’s possible for the future of flight.”
, Rahul Ghai, CFO, GE Aerospace
Strategic Roles and Implementation
Each partner plays a distinct role in the ecosystem. CAAS acts as the regulator, providing a “regulatory sandbox” and the operational environment of Changi Airport to safely test new technologies. The EDB facilitates investment to ensure the partnership generates high-value technical jobs for Singapore’s workforce.
The International Centre for Aviation Innovation (ICAI), established in 2023, serves as the bridge between policy, private sector technology, and academic research. Its mandate is to translate research into operational reality, ensuring that innovations move effectively from the lab to the tarmac.
“Our work with GE Aerospace and key industry stakeholders translates research into real-world capabilities, helping to de-risk innovation and make transformative aviation projects achievable.”
, Patrick Ky, CEO, ICAI
AirPro News Analysis: Distinguishing SPAARC from Open Fan Testing
While SPAARC is a broad R&D framework, it is important to distinguish it from a separate agreement signed on the same day involving CAAS, Airbus, and CFM International (a GE/Safran joint venture). That separate deal establishes Singapore as the world’s first airport testbed specifically for the “RISE” Open Fan engine architecture.
We view SPAARC as the foundational research layer, providing the necessary data on aerodynamics and safety frameworks, that will support the operational testing conducted under the specific Open Fan agreement. By decoupling the broad research (SPAARC) from the specific hardware testing (Open Fan), Singapore is effectively de-risking the development of these technologies before a global rollout.
Significance for Global Aviation
For Singapore, this partnership cements its status as more than just a transit hub; it positions the nation as a global leader in aviation innovation. The initiative directly supports the Singapore Sustainable Air Hub Blueprint, which targets net-zero domestic emissions by 2050.
Han Kok Juan, Director-General of CAAS, emphasized the efficiency gains expected from this public-private model:
“Through public-private research partnerships such as this, we hope to establish and offer new innovation pathways that are more efficient and effective than what are available currently.”
, Han Kok Juan, Director-General, CAAS
Globally, the AI governance frameworks developed under SPAARC could set a precedent for how regulators worldwide approve AI tools for safety-critical flight operations, potentially standardizing the integration of artificial intelligence in aerospace.
Sources
Photo Credit: GE Aerospace
Sustainable Aviation
Montana Renewables Cuts SAF Expansion Cost to $137M
Calumet’s Montana Renewables targets 200M gallons of SAF annually by 2028 for $137M, down from a $1.2B plan.

Calumet, Inc. and its subsidiary Montana Renewables, LLC announced a revised expansion plan on September 1, 2026, that will scale SAF production to 200 million gallons annually by 2028 for a fraction of the originally projected cost.
By repurposing existing refining equipment at the Great Falls, Montana facility, the company expects to complete the MaxSAF project with only $137 million in remaining capital. This abandons a previous $1.2 billion megaproject design. The pivot eliminates the need for third-party equity and minimizes debt while accelerating domestic sustainable aviation fuel (SAF) capacity.
Capital efficiency and Department of Energy funding
The original Phase 2 plan contemplated $1.2 billion in capital expenditure. The revised strategy captures 70 percent of the expected benefit for 15 percent of the cost. The financial restructuring involves an amended Loan Guarantee Agreement (LGA) with the U.S. Department of Energy (DOE).
The original LGA was executed in January 2025, with a $782 million first tranche funded in February 2025 to recapitalize Montana Renewables, LLC (MRL). Under the amended agreement, the company will make a final draw of $34 million. This is significantly lower than the original $658 million Phase 2 DOE funding limit.
Calumet CEO Todd Borgmann stated the Office of Energy Dominance Financing (EDF) supported the adjustment to the loan agreement.
“Our amended agreement with the DOE facilitates innovative technology and domestic energy security at a fraction of the original cost. EDF’s willingness to right-size the LGA reflects its ongoing support for Montana’s largest agricultural investment. We look forward to our continued collaboration with the DOE on the success of this project,” Borgmann said.
Borgmann credited the company’s engineering and operational teams for developing a project that maximizes output while drastically reducing the required capital investment.
Production timeline and capacity milestones
The Great Falls facility currently operates at a 60 million gallon SAF run-rate following a spring 2026 constraint removal. A scheduled turnaround in the fourth quarter of 2026 will tie in repurposed equipment from the adjacent Calumet Montana Refining facility.
Following the fourth-quarter integration, the company expects to exceed an 80 million gallon SAF run-rate by December 31, 2026. Production is projected to surpass 120 million gallons by spring 2027 and reach the 200 million gallon target by December 31, 2028.
Total renewable product sales, including renewable diesel and renewable gasoline, are targeted at 17,000 barrels per day by year-end 2028. This represents a 40 percent expansion. The expanded facility will consume 2 billion pounds of ranch- and farm-originated feedstocks annually.
AirPro News analysis
The revised MaxSAF expansion highlights a strategic shift in how producers approach SAF scaling. As noted by Aviation Week on September 2, 2026, the plan allows the largest US producer of SAF to more than triple its production capacity for barely 10 percent of the originally planned investment.
During Calumet’s second-quarter 2026 earnings call on August 7, 2026, the company confirmed that Montana Renewables completed performance testing of the newly installed MaxSAF catalyst, which met or exceeded expectations. By leveraging existing fossil-fuel infrastructure rather than pursuing multi-billion-dollar greenfield projects, producers can bring SAF to market faster and with significantly lower financial risk. This capital-efficient model may set a precedent for other refiners looking to enter or expand in the renewable fuels sector without diluting equity or taking on unsustainable debt.
Sources: Calumet, Inc.
Photo Credit: Montana Renewables
Technology & Innovation
AURA AERO X-VOLT Resumes Flight Testing for ERA Program
AURA AERO resumed X-VOLT hybrid-electric flight tests on Sept 16, 2026, targeting ERA first flight in late 2027.

French manufacturer AURA AERO resumed flight testing of its hybrid-electric demonstrator aircraft, now rebranded as the X-VOLT, on September 16, 2026, at Rochefort Airport (RCO) in the Nouvelle-Aquitaine region.
In a press release issued on September 16, the company confirmed the flight marks the operational integration of assets acquired from VoltAero during the summer of 2026. The X-VOLT, formerly known as the Cassio S, will serve as a flying testbed to validate propulsion technologies and critical components for AURA AERO’s upcoming 19-seat hybrid-electric regional aircraft, the ERA.
Testing the ERA propulsion architecture
According to reporting by ch-aviation, the X-VOLT demonstrator is based on a modified Cessna 337 Skymaster airframe. The aircraft is equipped with Safran ENGINeUS electric motors, which AURA AERO will evaluate in real flight conditions to mature the technology ahead of the ERA’s final design freeze.
The flight data gathered at the Rochefort site will directly support the development of the ERA program. AURA AERO stated that the company has now completed more than 350 combined hybrid-electric and all-electric flights across its X-VOLT and INTEGRAL E test aircraft, providing a substantial baseline of operational data.
Development timeline and market entry
The successful integration of the former VoltAero demonstrator accelerates AURA AERO’s timeline for its decarbonized aircraft programs. Aviation Week reported that the manufacturer is targeting late 2027 for the first flight of the ERA.
Following the initial flight test phase, the company aims to bring the 19-seat regional aircraft to market by 2030. The Rochefort facility will continue to operate as a dedicated testing and prototyping base as the ERA moves toward certification.
AirPro News analysis
We view the rapid return to flight of the X-VOLT as a strong indicator of AURA AERO’s ability to integrate acquired assets efficiently. By utilizing an existing, proven testbed rather than building a new demonstrator from scratch, the company mitigates early-stage development risks for the ERA program. The 2027 first flight target remains ambitious, but the accumulation of real-world flight data from the Safran ENGINeUS motors will be critical for regulatory certification.
Sources: AURA AERO
Photo Credit: AURA AERO
Sustainable Aviation
United Airlines Extends Neste SAF Supply Deal Through 2027
United Airlines and Neste extend SAF supply at Chicago O’Hare and Amsterdam Schiphol through mid-2027 after doubling fuel volume in 2025.

United Airlines and Neste Corporation have extended their supply agreement for sustainable aviation fuel at Chicago O’Hare International Airport (ORD) and Amsterdam Airport Schiphol (AMS), securing deliveries through mid-2027. The extension supports the carrier’s expanding use of alternative fuels, which doubled in volume during the 2025 calendar year.
In a press release issued on September 16, 2026, Neste confirmed that deliveries under the extended contract began at Amsterdam in June 2026 and at Chicago O’Hare in July 2026. While the Amsterdam supply concluded in August 2026, the Chicago deliveries are scheduled to continue until June 2027. The agreement reinforces a long-standing partnership between the two companies, as United Airlines was the first carrier globally to utilize blended sustainable aviation fuel (SAF) in regular commercial operations.
Expanding SAF utilization across the United network
United Airlines has steadily increased its integration of SAF, consuming 83,000 metric tons (approximately 27.7 million gallons) in 2025. This represents a 104 percent year-over-year increase in the airline’s SAF usage. The carrier now utilizes the fuel at six of its seven domestic hubs, following recent supply expansions to Newark Liberty International Airport (EWR), Washington D.C., and Houston.
Under current aviation regulations, SAF is certified for commercial use at a maximum blending ratio of 50 percent with conventional jet fuel. United Airlines previously became the first operator to purchase and use blended SAF at Chicago O’Hare in August 2024.
Lauren Riley, Chief Sustainability Officer at United Airlines, highlighted the operational history behind the extended agreement.
“United was the first airline in the world to fly on blended SAF in regular operations, and we’ve spent the years since proving it can work at scale in day-to-day flying, including being the first airline to purchase and use blended SAF at Chicago O’Hare. Continuing our work with Neste across two continents reflects a shared conviction that SAF is available and capable of being scalable.”
Neste’s production capacity and feedstock strategy
Neste currently maintains a global SAF production capability of 1.5 million metric tons (approximately 515 million gallons) per year. The company projects this capacity will increase to 2.2 million metric tons (around 750 million gallons) in 2027, following the completion of an expansion project at its Rotterdam refinery.
To support this scaling production, the manufacturer is actively securing agricultural supply chains. On September 10, 2026, Neste and Bayer finalized a commercial agreement to jointly scale the production of newgold winter canola in the Southern Great Plains of the United States. This partnership is designed to strengthen the supply of lower-carbon-intensity feedstocks required to meet the growing global demand for biofuels.
Carl Nyberg, Senior Vice President of the Commercial, Renewable Products business at Neste, stated that the continued supply at major hubs demonstrates the viability of the fuel alternative.
“This extended agreement with United Airlines covering two international airports across two major aviation regions is a testament to our joint belief in the critical role of SAF in reducing aviation related GHG emissions. By continuing to make SAF available at two of United’s key hubs, we are proving that SAF is a readily available, scalable solution, and we look forward to continuing our longstanding collaboration.”
AirPro News analysis
We note that securing consistent SAF supply at major hubs like Chicago O’Hare remains a critical bottleneck for airlines attempting to meet greenhouse gas (GHG) reduction targets. United’s ability to double its SAF uptake in a single year demonstrates aggressive procurement, but the total volume of 27.7 million gallons remains a fraction of the airline’s overall annual fuel consumption. Neste’s parallel moves to secure agricultural feedstock through partnerships like the recent Bayer agreement indicate that producers are actively working to mitigate supply chain constraints ahead of the anticipated 2027 refinery capacity increases.
Sources: Neste Corporation
Photo Credit: Neste Corporation
-
Defense & Military4 days agoBoeing Wins $552M Navy Contract for MQ-25A Stingray Production
-
Regulations & Safety4 days agoFAA Awards $1.1 Billion in Airport Improvement Grants
-
Business Aviation6 days agoFlexjet Opens $34M Private Terminal at Farnborough Airport
-
Aircraft Orders & Deliveries4 days agoAirbus Delivers First A320neo From Second Tianjin Assembly Line
-
Aircraft Orders & Deliveries5 days agoDrukair Selects CFM LEAP-1A Engines for A320neo Fleet Order
