Defense & Military
U.S. Navy MQ-25A Stingray Achieves Milestone C Approval for Production
The U.S. Navy grants Milestone C to MQ-25A Stingray, enabling Low-Rate Initial Production of the carrier-based UAV for aerial refueling and ISR missions.

This article is based on an official press release from the U.S. Navy.
Navy’s MQ-25A Stingray Secures Milestone C Approval, Entering Initial Production
The U.S. Navy has officially granted Milestone C approval to the MQ-25A Stingray program, marking a critical transition from the engineering phase into manufacturing and deployment. Announced on May 19, 2026, by Acting Secretary of the Navy Hung Cao, this decision authorizes Low-Rate Initial Production (LRIP) for the world’s first fully integrated, carrier-based unmanned aerial vehicle (UAV).
Developed by Boeing, the MQ-25A is designed primarily to provide organic aerial refueling to the Carrier Air Wing (CVW). By taking over routine tanking duties, the Stingray will relieve manned F/A-18E/F Super Hornets, significantly extending the operational reach and lethality of U.S. Carrier Strike Groups. According to the official Navy press release, this milestone follows a highly successful test flight of a production-representative aircraft in late April 2026, which cleared the path for fleet introduction.
The transition to production represents a major technological leap for naval aviation, introducing a hybrid manned-unmanned model to the flight deck and setting the doctrinal foundation for future collaborative combat aircraft.
Overcoming Delays and Proving Capabilities
The Crucial April Test Flight
The Milestone C decision was heavily dependent on the successful first test flight of a production-representative MQ-25A Stingray, which took place on April 25, 2026. As detailed in the Navy’s release, the aircraft launched from Boeing’s facility at MidAmerica Airport in Mascoutah, Illinois, and completed a comprehensive two-hour flight.
During this flight, the UAV autonomously executed a digitally programmed mission plan. The demonstration included taxiing, takeoff, complex flight maneuvers, and landing. Furthermore, the aircraft successfully responded to commands from the Unmanned Carrier Aviation Mission Control System (UMCS) MD-5 Ground Control Station, proving its readiness for carrier integration.
This successful demonstration was vital for the program’s advancement. The MQ-25A had previously missed its originally scheduled Milestone C target in fiscal year 2023 due to technical and production delays. The Pentagon’s Director, Operational Test and Evaluation (DOT&E) had previously cited concerns over the program’s reliance on data from an early prototype rather than production-representative hardware. The April 2026 flight of the operational model effectively resolved these hurdles.
“Boeing is honored to work alongside our U.S. Navy partner in achieving this historic milestone in the MQ-25A Stingray’s development life cycle. We remain focused on getting this game-changing unmanned aircraft into the hands of the fleet and integrated into the carrier air wing.”
, Troy Rutherford, Vice President of Boeing’s MQ-25 Program, via Navy press release
Production Contracts and Program Scale
Transitioning to Low-Rate Initial Production
With Milestone C secured, the Navy is moving rapidly to initiate manufacturing. According to program data, the Navy is expected to award an LRIP Lot 1 contract for three aircraft this summer. This upcoming contract will also include priced options for Lot 2, which covers three additional aircraft, and Lot 3, which covers five aircraft.
The financial scope of the MQ-25A program is substantial. The original Engineering and Manufacturing Development (EMD) contract, signed in 2018, was valued at $805 million for the design, development, and delivery of the first four Stingray aircraft. Moving forward, the Navy expects the total program to cost approximately $13 billion to procure a complete fleet of 72 aircraft.
“Unmanned refueling extends our reach against any adversary. Moving the MQ-25A Stingray to Milestone C and into production is arming our warfighters with a capability that increases the lethality of our Carrier Strike Groups. This is a decisive advantage that delivers our warfighters what they need to fight and win.”
, Hung Cao, Acting Secretary of the Navy, via Navy press release
Technical Specifications and Strategic Impact
Engineering for Endurance
To meet the demanding requirements of carrier-based aerial refueling, the MQ-25A is powered by a single Rolls-Royce AE 3007N engine. This engine features a high-bypass-ratio (5:1) architecture specifically designed for low specific fuel consumption, which is critical for enabling the long-endurance missions required of a fleet tanker. While its primary mission is refueling, the Navy notes that the MQ-25A is also equipped to conduct Intelligence, Surveillance, and Reconnaissance (ISR) missions, adding a secondary layer of utility to the Carrier Air Wing.
“The Rolls-Royce AE 3007N engine was integral to the successful first flight of the MQ-25A Stingray, which will greatly enhance the range and capability of the U.S. Carrier Air Wing. We are honored the U.S. Navy has, once again, put its trust in our proven, reliable family of high-performance AE engines for this critical new unmanned platform.”
, Meagan Rater, Director of U.S. Mature Programs for Defense, Rolls-Royce, via Navy press release
Redefining Carrier Strike Range
The introduction of the Stingray addresses a critical operational bottleneck for the Navy. Currently, up to 20 to 30 percent of F/A-18 Super Hornet flight hours are consumed by “buddy tanking”, the practice of using manned fighters to refuel other fighters. By assuming this organic tanking mission, the MQ-25A will preserve the service life of the Super Hornet fleet and allow manned fighters to focus strictly on combat and strike missions.
Furthermore, the Stingray is designed to offload up to 15,000 pounds of fuel at a distance of 500 nautical miles from the aircraft carrier. This capability effectively doubles the strike range of manned aircraft, a crucial metric for modern naval operations.
AirPro News analysis
The Milestone C approval for the MQ-25A Stingray is more than just an acquisition checkpoint; it represents a fundamental shift in the geometry of naval warfare. By allowing aircraft carriers to project power from significantly further away, the Navy is directly addressing the growing threat of adversarial anti-access/area-denial (A2/AD) systems, particularly in contested environments like the Indo-Pacific. Furthermore, the Stingray serves as the vital pathfinder for integrating autonomous drones into the high-pressure, complex environment of carrier flight decks. The lessons learned from the MQ-25A’s deployment will inevitably shape the future of collaborative combat aircraft (CCA) and the broader integration of unmanned systems across the U.S. military.
Frequently Asked Questions
- What is Milestone C?
Milestone C is a critical defense acquisition checkpoint that authorizes a program to transition from the Engineering and Manufacturing Development (EMD) phase into Low-Rate Initial Production (LRIP) and eventual deployment. - What engine powers the MQ-25A Stingray?
The aircraft is powered by a single Rolls-Royce AE 3007N engine, which utilizes a high-bypass-ratio design for fuel efficiency and long endurance. - How much fuel can the MQ-25A offload?
The Stingray is designed to offload up to 15,000 pounds of fuel at a distance of 500 nautical miles from the carrier. - How many MQ-25A aircraft does the Navy plan to buy?
The Navy expects to procure a total fleet of 72 aircraft, with the total program cost estimated at approximately $13 billion.
Sources
Photo Credit: U.S. Navy
Defense & Military
GE Aerospace and Shield AI Complete X-BAT Engine Test
GE Aerospace and Shield AI complete AVEN thrust-vectoring nozzle testing on the F110-GE-129E, keeping X-BAT on track for late 2026 first flight.

GE Aerospace and Shield AI have successfully completed integration, actuation, and engine light-off testing of a multi-axis thrust-vectoring nozzle on an F110-GE-129E engine, clearing a major propulsion hurdle for the X-BAT vertical take-off and landing combat aircraft.
Announced in a July 20, 2026, press release, the testing took place at GE Aerospace’s operations site in Peebles, Ohio. The campaign represents the first fully integrated test of the Axisymmetric Vectoring Exhaust Nozzle (AVEN) hardware and control systems since its original development in the 1990s. The successful light-off keeps the X-BAT program on schedule for a planned first flight in late 2026.
Resurrecting thrust vectoring for vertical flight
The AVEN system pivots engine exhaust in three dimensions, providing the precise directional control required for the aircraft to balance on its tailpipe during vertical takeoff and landing (VTOL) maneuvers. Originally designed in the 1990s, the AVEN program accumulated 73 hours of ground testing and 135 flight hours across 95 flights on an experimental F-16 before being shelved.
Shield AI and GE Aerospace are now adapting that legacy hardware to meet the demands of modern autonomous flight. The integration requires the nozzle to execute rapid, coordinated movement sequences driven by Shield AI’s flight control software.
“The AVEN is what makes vertical flight possible on a platform this size and this capable. We’re applying it differently than it was ever used before. Vertical flight requires fast gimbaling to maintain attitude control, a demand the original program never had to meet,” said Armor Harris, Senior Vice President of Aircraft Engineering at Shield AI.
Harris noted that utilizing hardware with a proven track record allowed the engineering teams to bypass the initial stages of clean-sheet development. The next phase of the program will focus on iterating the propulsion approach to reduce weight and increase speed for future variants.
Scaling the X-BAT for contested environments
Shield AI unveiled the X-BAT in Washington, D.C., on October 21, 2025. The aircraft is designed as a Collaborative Combat Aircraft (CCA) capable of operating independently or as a drone wingman in contested airspace. By November 5, 2025, Shield AI and GE Aerospace had signed a Memorandum of Understanding to collaborate on the platform’s propulsion, selecting the F110-GE-129 engine paired with the AVEN system.
The aircraft relies on Shield AI’s Hivemind autonomy software to conduct missions without traditional runway infrastructure. According to reporting by Tectonic Defense, the X-BAT measures 26 feet in length and features a 39-foot wingspan. Naval News estimates the platform will achieve a range exceeding 2,000 nautical miles and an operational ceiling of 50,000 feet, positioning it for both austere land bases and potential naval integration.
Amy Gowder, President and CEO of Defense & Systems at GE Aerospace, stated that pairing the company’s propulsion scaling experience with Shield AI’s vehicle development allows the program to move rapidly from concept to fielded capability.
AirPro News analysis
We view the successful light-off of the AVEN-equipped F110 as a validation of Shield AI’s strategy to integrate mature subsystems rather than developing bespoke hardware. The GE Aerospace F110 engine family has accumulated 11 million flight hours. By pairing a highly reliable, mass-produced core engine with a previously flight-tested 3D vectoring nozzle, the X-BAT program significantly reduces its technical risk profile.
The primary challenge moving forward will be software integration. While the AVEN hardware is proven, the 1990s-era actuators were not designed for the continuous, high-frequency gimbaling required to stabilize a tail-sitting VTOL aircraft in turbulent conditions. Shield AI’s Hivemind system will need to manage these actuation limits carefully to prevent mechanical fatigue while maintaining attitude control during the critical transition between vertical and forward flight.
Sources: GE Aerospace
Photo Credit: GE Aerospace
Defense & Military
Pratt Whitney Completes 3D-Printed TJ150 Turbojet Demo Test
Pratt & Whitney validates additive manufacturing for the TJ150, consolidating 50+ hot section parts into 3D-printed components.

Pratt & Whitney has successfully completed demonstration testing of an additively manufactured TJ150 turbojet engine, a process that consolidated more than 50 individual hot section components into a small number of 3D-printed parts.
The RTX Corporation subsidiary announced the milestone on July 20, 2026, during the Farnborough International Airshow in London. The test results validate the manufacturer’s strategy to use additive manufacturing to simplify design and accelerate production for expendable military propulsion systems.
Consolidating hot section components
According to the press release, nearly 60 percent of the TJ150 engine’s volume was produced using additive manufacturing. This volume includes major static and rotating hardware. By utilizing 3D printing technologies, engineers reduced the complexity of the engine’s hot section and replaced over 50 traditional parts with a handful of consolidated components.
The TJ150 is a 150-pound thrust class turbojet designed for single-use applications.
“For expendable engines like the TJ150, where missions can last minutes or hours, simplifying the design and scaling production quickly is essential to meeting rising demand,” said Jill Albertelli, President of Military Engines at Pratt & Whitney.
Integration with cruise missiles and decoys
The successful demonstration of the 3D-printed TJ150 follows recent contract awards and integration announcements for the engine platform. On March 10, 2026, Pratt & Whitney secured a follow-on contract from Leidos Dynetics to supply TJ150 engines for the AGM-190A small cruise missile.
In a separate announcement on July 15, 2026, Raytheon confirmed plans to prioritize the TJ150 engine for the initial production of the Miniature Air-Launched Decoy (MALD). Raytheon noted that utilizing the existing engine platform keeps restart timelines short while the company explores additively manufactured engines for longer-term opportunities.
Expanding additive manufacturing applications
Pratt & Whitney plans to apply the manufacturing techniques validated during the TJ150 demonstration to other propulsion programs. Albertelli stated that additive manufacturing helps the company move designs from concept to capability faster. She confirmed that the manufacturer is leveraging the TJ150 learnings to benefit other systems, including the Pratt & Whitney Valox engine family.
AirPro News analysis
The successful test of a heavily 3D-printed TJ150 highlights a critical shift in defense aerospace manufacturing. As military operators demand higher volumes of autonomous systems, decoys, and tactical missiles, traditional supply chains for small turbine engines face significant bottlenecks. Casting and machining conventional hot-section components requires extensive tooling and long lead times. By consolidating dozens of parts into a few additively manufactured pieces, we see manufacturers directly addressing the need for rapid scalability.
Expendable engines operate for very short durations, meaning they do not require the same long-term durability as commercial or manned military turbofans. This specific operational profile makes them ideal candidates for additive manufacturing, allowing producers to prioritize production speed and cost reduction over thousands of hours of time-on-wing reliability.
Photo Credit: RTX
Defense & Military
GE Aerospace and Magellan Sign F414 MRO MOU for Canada
GE Aerospace and Magellan Aerospace signed an MOU at Farnborough to establish a Canadian F414 engine MRO center if Canada selects the Gripen E.

GE Aerospace and Magellan Aerospace Corporation signed a Memorandum of Understanding (MOU) on July 22, 2026, at the Farnborough International Airshow to establish a Canadian MRO center for the F414-GE-39E engine. The agreement is entirely contingent on the Government of Canada selecting the Saab JAS 39 Gripen E for its future fighter fleet.
Announced in a GE Aerospace press release, the proposed MRO work would take place at Magellan’s facility in Mississauga, Ontario. The partnership aims to position Magellan as Canada’s domestic center of excellence for F414 engine sustainment, guaranteeing sovereign support capabilities for the Royal Canadian Air Force (RCAF) if the Gripen E is acquired.
Industrial offsets and the Gripen E campaign
The MOU represents a calculated component of a broader industrial offset campaign by Saab AB and its suppliers to secure a portion of Canada’s fighter procurement contract. The Canadian government is currently reviewing its fighter jet strategy. While Ottawa previously committed to purchasing a fleet of 88 Lockheed Martin F-35A Lightning II Military-Aircraft, the government is evaluating a potential mixed fleet that could include domestically built Gripen E fighters.
To strengthen the Gripen’s bid, Saab has been securing agreements with Canadian aerospace firms to promise domestic job creation and technology transfer. This engine sustainment agreement follows a similar MOU signed on July 17, 2026, between Saab and Canadian aviation training firm CAE Inc. to cooperate on advanced fighter pilot Training.
Engine sustainment and domestic capabilities
The F414 engine family has accumulated more than 5 million flight hours globally. The new agreement builds on a 60-year working relationship between GE Aerospace and Magellan Aerospace Corporation.
Paul Ferraro, Vice President of Defense Engines & Services at GE Aerospace, stated that the agreement spans both military and commercial engines and will ensure the RCAF has in-country access to sustainment services to maintain F414 readiness.
Haydn Martin, Vice President of Business Development, Marketing, and Contracts at Magellan Aerospace Corporation, emphasized the operational benefits of the proposed partnership.
“Should the Saab JAS 39 Gripen E aircraft be selected, Magellan Aerospace will be ready to provide world-class engine maintenance, repair and overhaul services that enhance operational readiness for the Royal Canadian Air Force while maintaining highly skilled Canadian jobs, developing advanced technical expertise, and strengthening Canada’s long-term defence industrial capacity,” Martin said.
AirPro News analysis
We view this MOU as a clear signal that the competition for Canada’s fighter fleet remains highly active despite the initial F-35A selection. By lining up domestic heavyweights like Magellan and CAE, Saab is directly addressing Ottawa’s stringent Industrial and Technological Benefits (ITB) policy requirements. If the Government of Canada opts for a mixed fleet, establishing sovereign MRO capabilities for the F414 engine will be a critical factor in mitigating supply chain risks and ensuring RCAF operational independence. Until a formal procurement decision is finalized, these agreements remain strategic positioning rather than guaranteed Contracts.
Sources: GE Aerospace
Photo Credit: GE Aerospace
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