Defense & Military
Netherlands Joins US Collaborative Combat Aircraft Program as First European Partner
The Netherlands becomes the first European nation to join the USAF’s Collaborative Combat Aircraft program, enhancing unmanned air systems and defense cooperation.

Netherlands Joins US Initiative on Unmanned Air Systems, Becoming First European Partner
In a significant move for transatlantic defense cooperation, the Netherlands has officially become the first European nation to join the United States Air Force’s (USAF) Collaborative Combat Aircraft (CCA) program. This strategic partnership, formalized on October 16, 2025, signals a major step forward in the evolution of air power, focusing on the integration of unmanned autonomous aircraft with manned fighter jets. The decision places the Netherlands at the forefront of developing next-generation aerial warfare capabilities, aiming to create a more potent and resilient air force for future challenges.
The agreement was solidified when Dutch State Secretary for Defence, Gijs Tuinman, signed a letter of intent at the Netherlands embassy in Washington D.C. This wasn’t merely a procurement deal; it represents a deep-seated commitment to long-term industrial and technological cooperation. The CCA initiative is designed to develop “loyal wingmen”, advanced UAV, that will fly alongside fighters like the F-35, acting as force multipliers. These autonomous platforms are intended to expand sensor range, carry additional munitions, and undertake high-risk missions, thereby enhancing the effectiveness and survivability of human pilots.
This collaboration aligns directly with the Netherlands’ Defence Strategy for Industry and Innovation, which was launched in April 2025. By embedding Dutch knowledge institutes and companies within the American research and development framework, the partnership aims to bolster the nation’s defense industrial base. It reflects a broader shift in military doctrine, where the future of air dominance is seen not just in the quality of individual aircraft, but in a networked “system-of-systems” that leverages the power of human-machine teaming.
The New Frontier: Deconstructing the CCA Initiative
The Collaborative Combat Aircraft program is a cornerstone of the USAF’s Next Generation Air Dominance (NGAD) strategy. It moves beyond traditional drone operations to envision a future where autonomous platforms are integral members of a combat team. These aren’t remotely piloted aircraft in the conventional sense; they are designed with a high degree of autonomy, enabled by AI and machine learning, to operate in complex and contested environments with minimal input from a human pilot.
What are Collaborative Combat Aircraft?
At its core, the CCA concept is about augmenting the capabilities of manned fighter aircraft. We can think of them as loyal wingmen that extend the pilot’s reach and tactical options. Their primary functions are to increase the combat mass of an air fleet, provide supplementary sensor data from different vantage points, and engage targets or perform electronic warfare tasks. This allows the manned fighter, such as the F-35, to maintain a more strategic, command-and-control role while the CCAs press into more dangerous areas.
This approach offers several distinct advantages. By offloading high-risk tasks to unmanned platforms, the program aims to significantly improve pilot survivability. Furthermore, CCAs are designed to be produced faster and at a lower cost than their manned counterparts. This “affordable mass” is critical in potential conflicts where the sheer number of assets can be as important as their individual sophistication. The USAF has stated a goal of fielding at least 1,000 of these unmanned aircraft to work in concert with its advanced fighter fleet.
The technological leap lies in the human-machine teaming aspect. Pilots will not be “flying” the CCAs with a joystick and screen; instead, they will be directing them through high-level commands, tasking them to perform specific missions like surveillance, escort, or attack. This requires a robust and secure data link, as well as advanced AI that can interpret commands and execute complex behaviors in a dynamic battlespace, all while collaborating with other manned and unmanned systems.
The U.S. Air Force is leaning into a new chapter of aerial warfare. It means collaborative combat aircraft, it means human-machine teaming.
The Key Players and Progress
The CCA program has moved from concept to reality with remarkable speed. In April 2024, the USAF selected two industry leaders, Anduril and General Atomics Aeronautical Systems (GA-ASI), to design, build, and test production-representative prototypes. These aircraft have received official designations, highlighting their formal integration into the Air Force’s development pipeline: the YFQ-42A from General Atomics and the YFQ-44A from Anduril.
The rapid progress was underscored by U.S. Air Force Chief of Staff Gen. David W. Allvin, who noted that prototypes that were “only on paper less than a couple of years ago” would be ready to fly. This accelerated timeline demonstrates a clear sense of urgency and a commitment to fielding this transformative capability quickly. The designation of these prototypes with the “YFQ” prefix is historically significant, as it marks the first time an unmanned collaborative aircraft has been given a fighter-series classification.
The current development phase represents “Increment 1” of the CCA program, with a final production decision expected in fiscal year 2026. However, the USAF is already planning for future increments. This iterative approach will allow for the integration of new technologies and capabilities over time. By joining the program at this relatively early stage, the Netherlands is positioned not only to acquire the technology but also to help shape its future development and ensure its interoperability with NATO systems.
More Than Just Drones: A Strategic Dutch Investment
The Netherlands’ decision to join the CCA program is a multi-faceted strategic investment that extends far beyond the acquisition of new military hardware. It is a calculated move to enhance national security, stimulate economic and technological growth, and solidify its role as a key innovator within the transatlantic alliance. This partnership is about co-development and future-proofing the nation’s defense capabilities in an era of rapid technological change.
Strengthening the Royal Netherlands Air Force
For the Royal Netherlands Air Force, the integration of CCAs with its F-35 fleet promises a substantial leap in combat effectiveness. The F-35 is already a powerful sensor and data-fusion platform, but pairing it with autonomous wingmen will amplify its strengths exponentially. CCAs can fly ahead to scout, use their own sensors to build a more comprehensive picture of the battlespace, and carry a wider variety of weapons, freeing the F-35 to orchestrate the engagement from a safer distance.
This new operational paradigm directly addresses the challenges of modern anti-access/area denial (A2/AD) environments, where penetrating enemy airspace is increasingly perilous. By sending unmanned systems into the most heavily defended zones, the air force can achieve its objectives while minimizing risk to its most valuable asset: its pilots. The cost-benefit analysis is also compelling; the ability to generate a larger, more distributed, and more expendable force provides tactical flexibility that would be prohibitively expensive to achieve with manned aircraft alone.
Beyond direct combat roles, this partnership ensures that the Netherlands remains at the cutting edge of air power doctrine. As human-machine teaming becomes the new standard, early adoption and integration provide invaluable experience for pilots, tacticians, and support personnel. It allows the air force to develop the tactics, techniques, and procedures necessary to maximize the potential of this new “system-of-systems” approach to warfare.
Fostering Industrial and Technological Growth
A central pillar of this agreement is the long-term benefit to the Dutch defense and technology sectors. The letter of intent is the first step toward integrating Dutch companies and research institutions into the CCA’s vast R&D ecosystem. This collaboration is a key objective of the Netherlands’ Defence Strategy for Industry and Innovation, aiming to create a self-sustaining cycle of innovation, production, and expertise within the country.
The Partnerships is not limited to the high-end CCA program. In a parallel initiative, the Netherlands Defence organization is working with General Atomics to co-develop smaller unmanned systems for Intelligence, Surveillance, and Reconnaissance (ISR) missions. Critically, this agreement includes provisions for production by a Dutch company, VDL, with the first systems expected to be in service by the following year. This provides a tangible, near-term example of the industrial benefits the government aims to secure.
By participating in the development of these advanced systems, the Dutch industrial base gains access to cutting-edge technologies in areas like artificial intelligence, autonomous systems, advanced manufacturing, and secure communications. This knowledge transfer can spur innovation across multiple sectors, enhancing the Netherlands’ competitiveness on the global stage and ensuring a greater degree of technological sovereignty in critical defense areas.
Conclusion: Charting a New Course in Air Power
The Netherlands’ entry into the U.S. Collaborative Combat Aircraft program is a landmark event. It marks a decisive step into the future of aerial warfare, one defined by the seamless integration of human and machine capabilities. As the first European partner, the Netherlands has secured a unique position to influence and benefit from one of the most ambitious military technology programs of our time. This is more than an alliance; it is a forward-looking Investments in national security, industrial strength, and technological leadership.
Looking ahead, this partnership will likely serve as a model for future transatlantic defense cooperation. As autonomous systems become more prevalent, interoperability and shared development will be crucial for maintaining a cohesive and effective NATO force. The lessons learned from integrating Dutch industry and military doctrine into the CCA program will inform how other allies approach the coming revolution in air power, ensuring that the alliance as a whole is prepared for the complex security challenges of tomorrow.
FAQ
Question: What is the Collaborative Combat Aircraft (CCA) program?
Answer: The CCA program is a U.S. Air Force initiative to develop autonomous, unmanned aircraft designed to fly alongside manned fighter jets like the F-35. These “loyal wingmen” act as force multipliers by carrying extra sensors and weapons and performing high-risk missions.
Question: Why did the Netherlands join the CCA program?
Answer: The Netherlands joined to enhance the capabilities of its F-35 fleet, strengthen its domestic defense industry through technological cooperation, and take a leading role in the future of unmanned aerial systems and human-machine teaming in air combat.
Question: Who are the main companies developing the CCAs for the U.S. Air Force?
Answer: For the first phase of the program, the U.S. Air Force selected Anduril and General Atomics Aeronautical Systems (GA-ASI) to design, manufacture, and test production-representative aircraft.
Sources
Photo Credit: Netherlands Ministry of Defence
Defense & Military
Sikorsky and Safran Sign Propulsion Deal at Farnborough 2026
Sikorsky and Safran Helicopter Engines formalize a strategic propulsion agreement at Farnborough 2026, backed by a 40-year partnership.

Sikorsky and Safran Helicopter Engines signed a strategic collaboration agreement on July 22, 2026, at the Farnborough International Airshow to jointly develop power and propulsion technologies for next-generation vertical lift platforms.
Announced in a Lockheed Martin press release, the agreement builds upon a 40-year relationship between the two aerospace manufacturers. The partnership aims to accelerate design cycles, shorten proposal turnaround times, and deliver higher-performance propulsion solutions for both commercial and defense rotorcraft markets worldwide.
Deepening a four-decade propulsion partnership
The formal agreement extends a long-standing industrial relationship centered on the Sikorsky S-76 medium helicopter. Safran has delivered more than 1,230 engines for the S-76 program, accumulating nearly 10 million flight hours across the global fleet.
Cédric Goubet, President of Safran Helicopter Engines, noted the shared history between the companies and emphasized the potential for future integration.
“As the world leader in helicopter propulsion and pioneer of hybrid-electric propulsion, our products and services would provide an unrivalled competitive advantage for Sikorsky’s future helicopters,” Goubet stated.
European expansion and next-generation platforms
The propulsion agreement aligns with Sikorsky’s broader strategy to expand its industrial footprint in Europe. On July 20, 2026, Lockheed Martin confirmed that Sikorsky is actively pursuing the establishment of a Next Generation Rotorcraft (NGRC) production line in Europe to deepen its partnership with North Atlantic Treaty Organization (NATO) allies.
Rich Benton, Vice President and General Manager of Sikorsky, framed the Safran partnership as a critical component of this international strategy. Benton stated that collaborating across the industry from the initial design phase empowers customers with faster decision-making and confidence in the final aircraft’s performance and safety.
The push for advanced propulsion coincides with Sikorsky’s ongoing development of autonomous and uncrewed platforms. Also on July 22, 2026, the manufacturer announced the completion of initial ground and flight testing for its Nomad 100 uncrewed aerial system (UAS), developed for the Defense Advanced Research Projects Agency (DARPA) EVADE program.
AirPro News analysis
We view the formalization of the Sikorsky and Safran partnership as a strategic positioning move for the NATO NGRC program. By aligning with a major European propulsion provider, Sikorsky strengthens its industrial base across the Atlantic, which is often a prerequisite for winning major European defense contracts. Safran’s ongoing research into hybrid-electric aviation also provides Sikorsky with a ready pathway to integrate advanced, fuel-efficient powerplants into future uncrewed and crewed vertical lift designs without bearing the entire research and development cost internally.
Sources: Lockheed Martin
Photo Credit: Lockheed Martin
Defense & Military
BAE Systems Unveils Brontanax UK Autonomous Combat Aircraft
BAE Systems and the UK MoD unveiled Brontanax, the UK’s first uncrewed CCA, at Farnborough 2026.

BAE Systems and the United Kingdom Ministry of Defence (MoD) unveiled Brontanax, the nation’s first uncrewed autonomous Collaborative Combat Aircraft (CCA), at the Farnborough International Airshow on July 22, 2026. The five-metric-ton aircraft is designed to operate alongside crewed fighter jets, providing electronic warfare and precision strike capabilities to the fleet.
According to a BAE Systems press release, the platform serves as the manufacturers offering for the UK government’s £300 million Storm Fighter program. The initiative aims to establish the Royal Air Force (RAF) as Europe’s first sixth-generation air force by integrating uncrewed systems with existing crewed fighters like the Eurofighter Typhoon and the Lockheed Martin F-35 Lightning II.
The Storm Fighter program and development timeline
Development of the Brontanax platform began internally at BAE Systems in 2022. The manufacturer has invested approximately £300 million to date to fund the project. The UK government formalized its financial backing on July 1, 2026, through its Defence Investment Plan, committing an initial £300 million to the sovereign autonomous combat air initiative.
UK Defence Secretary Wes Streeting highlighted the strategic importance of the platform during the unveiling event at Farnborough, noting the government’s intent to adopt the aircraft as an operational concept demonstrator.
“The unveiling of Brontanax, the UK’s first uncrewed autonomous Collaborative Combat Aircraft, is a testament to the extraordinary talent and innovation across our sovereign defence industry. Built at BAE Systems in Warton by British engineers, backed by British businesses large and small, this aircraft demonstrates that the UK has the skills, the technology and the determination to lead the world in combat air power.”
The prototype is scheduled for its first power-up in the third quarter of 2026. Ground trials are slated to begin in the first half of 2027, followed by flight trials in UK airspace in the second half of the year. The RAF plans to bring the aircraft into service before 2030.
Industrial footprint and supply chain realities
The Brontanax program currently involves more than 500 BAE Systems employees and engages over 75 UK companies and small-to-medium enterprises. The aircraft was designed and built at the BAE Systems facility in Warton, Lancashire.
While marketed as a sovereign British aircraft, the initial iterations of the drone utilize a US-made Williams International engine. BAE Systems and the RAF intend to transition to a British powerplant developed by Rolls-Royce for future production models.
Air Chief Marshal Sir Harv Smyth, Chief of the Air Staff, stated that the RAF is working closely with the manufacturer to meet the aggressive development schedule, confirming that a prototype is expected to fly next year.
AirPro News analysis
The unveiling of Brontanax signals the United Kingdom’s formal entry into the highly competitive CCA market. We are seeing a global surge in the development of these uncrewed systems, with aerospace manufacturers including Airbus, Boeing, Anduril, and General Atomics competing for contracts across multiple allied nations.
The primary driver behind this shift is combat mass. Traditional crewed fighters are highly capable but expensive to procure and operate. A large CCA is estimated to cost approximately 25 percent of a traditional crewed fighter. By pairing uncrewed systems with crewed jets, air forces can significantly expand their tactical footprint, sensor networks, and weapons capacity without a proportional increase in procurement budgets or pilot training requirements. The transition from the Williams International engine to a Rolls-Royce powerplant will be a critical milestone to watch as the UK attempts to secure a fully sovereign supply-chain for the Storm Fighter program.
Sources: BAE Systems Press Release
Photo Credit: BAE Systems
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
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