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GE Aerospace Completes Assembly Readiness Review for XA102 Engine

GE Aerospace finishes Assembly Readiness Review for the XA102 adaptive cycle engine, advancing the USAF NGAP program with digital engineering.

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This article is based on an official press release from GE Aerospace.

GE Aerospace has successfully completed the Assembly Readiness Review (ARR) for its XA102 adaptive cycle engine. This milestone serves as a critical step forward in the U.S. Air Force’s Next Generation Adaptive Propulsion (NGAP) program, moving the advanced engine closer to a full system demonstration.

According to the official press release, the ARR validates that the XA102 engine’s design, manufacturing processes, and supply chain are progressing on schedule. With this review complete, the company anticipates being awarded the next phase of the program later this year.

The advancement of the XA102 engine represents a significant leap in military aircraft technology. The NGAP program aims to equip the Air Force’s future fighter fleet with the enhanced range, survivability, and thermal management capabilities necessary to operate in highly contested combat environments.

Digital-First Engineering and Manufacturing

A central component of GE Aerospace’s recent milestone is its reliance on a comprehensive digital engine model. In its press release, the company noted that it has transitioned away from traditional two-dimensional drawings in favor of a model-based definition approach.

This digital framework seamlessly integrates model-based manufacturing with model-based inspection. By utilizing this advanced methodology, GE Aerospace states that it can achieve improved accuracy and significantly accelerate production timelines. Furthermore, the company confirmed that all demonstrations associated with the model-based engine for the first phase of the NGAP program have been successfully completed.

Leadership Perspectives

Company leadership emphasized the importance of this digital integration in meeting the rigorous demands of modern military procurement and delivering reliable technology to the armed forces.

“With the completion of the Assembly Readiness Review, we are demonstrating the maturity of our XA102 engine design and the strength of our digital-first approach to developing next-generation propulsion systems. Our use of a fully integrated digital engine model, which spans design, manufacturing, and inspection, positions us to deliver advanced capability faster and with greater precision for the warfighter.”

— Dr. Steve “Doogie” Russell, vice president and general manager of Edison Works at GE Aerospace

The Next Generation Adaptive Propulsion (NGAP) Program

The U.S. Air Force’s NGAP program is designed to advance the technologies and manufacturing capabilities required to maintain air superiority in future conflicts. As combat environments become increasingly contested, the need for revolutionary propulsion systems grows paramount.

The technologies being developed under NGAP, including the XA102, are expected to provide next-generation fighter aircraft with critical upgrades. According to GE Aerospace, these improvements include extended range, heightened survivability, and advanced thermal management systems capable of supporting next-generation weapons and sensors.

Building on the XA100 Legacy

The development of the XA102 builds upon the foundation laid by its predecessor, the XA100, and leverages GE Aerospace’s more than 100 years of partnership with the U.S. military. The company highlighted that the XA100 engines have already completed multiple successful rounds of testing, which served to mature adaptive engine technologies. The XA102 represents the next evolution in this lineage, focusing on delivering enhanced capabilities while maintaining strict standards for affordability and sustainability.

AirPro News analysis

We note that the successful completion of the ARR for the XA102 engine underscores a broader aerospace industry shift toward digital engineering in defense contracting. By proving that a fully integrated digital engine model can meet the stringent requirements of the U.S. Air Force’s NGAP program, GE Aerospace is setting a precedent for future rapid-prototyping and production. The emphasis on thermal management is particularly notable; future fighter aircraft will require immense cooling capabilities to support directed energy weapons and advanced electronic warfare suites, making adaptive cycle engines a foundational requirement rather than an optional upgrade.

Frequently Asked Questions

What is the XA102 engine?
The XA102 is an advanced adaptive cycle engine being developed by GE Aerospace for the U.S. Air Force’s Next Generation Adaptive Propulsion (NGAP) program.

What does the Assembly Readiness Review (ARR) signify?
The completion of the ARR validates that the engine’s design, manufacturing processes, and supply chain are mature and on schedule for the next phase of development.

How does digital engineering benefit the XA102 program?
By replacing traditional two-dimensional drawings with a fully integrated digital engine model, GE Aerospace can combine model-based manufacturing and inspection to improve accuracy and accelerate production timelines.

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Photo Credit: GE Aerospace

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Military Technology

Saab Unveils A3-001 Supersonic Stealth Drone Concept

Saab revealed the A3-001 uncrewed combat air system concept at Malmen Air Base, targeting mid-2030s operations alongside the Gripen E.

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Saab AB unveiled a full-scale concept model of a supersonic, low-observable uncrewed combat air system, designated the A3-001, during the Jubilee Air Show at Malmen Air Base in Linköping, Sweden, on August 22, 2026.

The presentation, which coincided with the 100th anniversary of the Swedish Air Force, outlines the manufacturers vision for a high-end autonomous platform designed to operate alongside crewed fighters like the Saab Gripen E. According to a company press release, the A3-001 is intended for high-risk missions in heavily defended airspace, including electronic warfare, suppression of enemy air defenses (SEAD), and precision strikes.

Pathway to the A3-001 concept

While the A3-001 represents a future operational vision targeted for the mid-2030s, Saab is currently developing two uncrewed technology demonstrators, designated A1 and A2, under its Autonomous Collaborative Platform (ACP) roadmap. These initial demonstrators are funded by the Swedish Ministry of Defence.

Reporting by The War Zone indicates that the A1 demonstrator is expected to make its first flight within approximately 15 months. The A1 will be powered by a General Electric (GE) F414 engine, which is the same powerplant utilized in the Gripen E and F models.

“We are currently in an intensive development phase where, together with Sweden, we are exploring technologies that will lay the foundation for the next generation of combat air systems,” said Peter Nilsson, Head of Business Unit Advanced Programs at Saab AB. “As part of this work, we intend to fly uncrewed demonstrators with fighter-like characteristics before 2030 as we support Sweden in considering their future options.”

Strategic positioning and future combat systems

The A3-001 concept falls under Sweden’s broader Koncept för Framtida Stridsflygplan (KFS), or Concept for Future Combat Aircraft project. The War Zone notes that the A3-001 is positioned as a higher-end, larger, and faster platform compared to the Collaborative Combat Aircraft (CCA) currently under development for the United States Air Forces.

Saab intends for the A3-001 to leverage the company’s existing sensor and command infrastructure. Nilsson stated that the A3 system is a concept for what could follow the demonstrator phase should the Swedish government decide to proceed with development.

“Saab is well positioned to develop the next generation of combat air systems building on Gripen and GlobalEye, combined with our long experience in advanced aerospace systems,” Nilsson said.

AirPro News analysis

We view Saab’s decision to power the near-term A1 demonstrator with the GE F414 engine as a pragmatic approach to reducing developmental risk. By utilizing the same propulsion system as the Gripen E, Saab ensures immediate logistical and maintenance commonality, which is critical for testing manned-unmanned teaming concepts. It is necessary to distinguish between the funded A1 and A2 demonstrators and the A3-001 mock-up showcased on August 22, 2026. The A3-001 remains a company-funded concept illustrating potential future capabilities rather than an active acquisition program. Its realization will depend entirely on future procurement decisions by the Swedish Armed Forces following the data gathered from the A1 and A2 flight test campaigns.

Sources: Saab AB

Photo Credit: Saab AB

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Defense & Military

Shield AI X-BAT Named Official Aircraft of Army-Navy Game

Shield AI’s X-BAT VTOL jet is the Official Autonomous Aircraft of the 127th Army-Navy Game on December 12, 2026.

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Defense technology company Shield AI announced on August 20, 2026, that its X-BAT vertical takeoff and landing (eVTOL) aircraft has been selected as the Official Autonomous Aircraft of the 127th Army-Navy Game. The sponsorship places the company’s artificial intelligence-piloted jet in front of a core military audience during the historic rivalry matchup scheduled for December 12, 2026, at MetLife Stadium in East Rutherford, New Jersey.

In a press release issued by the company, Shield AI confirmed it will also serve as an Associate Sponsor for the event, which is presented by USAA. The partnership highlights the increasing visibility of autonomous aviation technology within the defense sector and provides a high-profile platform to showcase the expeditionary capabilities of the X-BAT platform to military personnel and veterans.

Showcasing autonomous aviation capabilities

Founded in 2015, Shield AI develops the Hivemind autonomy software designed to operate aircraft in contested environments. The X-BAT is an AI-piloted VTOL fighter jet engineered for expeditionary and maritime operations without requiring traditional runways. According to the manufacturer, the aircraft features a range exceeding 2,000 nautical miles at full mission payload.

The company has been actively expanding the public profile of its autonomous systems over the past year. Shield AI recently demonstrated autonomous strike and teaming capabilities on an interceptor system during a full-mission flight exercise with Destinus. The Army-Navy Game sponsorship serves as a continuation of this public positioning strategy for its Hivemind-powered aircraft.

Service academy connections and leadership response

The sponsorship holds specific ties to the participating academies and the broader veteran community. Shield AI reports that 15 percent of its workforce consists of military veterans, including dozens of service academy graduates. Brandon Tseng, the president and co-founder of Shield AI, is a 2008 graduate of the United States Naval Academy.

“There’s no game like Army-Navy. I started Shield AI because I deeply believed in the mission of our Armed Forces and that technology could be better leveraged to help accomplish that mission,” Tseng stated in the release. “With 15% of our workforce made up of veterans and dozens of service academy graduates on our team, supporting this game and Army and Navy athletics is a natural extension of who we are.”

Athletics directors from both institutions emphasized the alignment between the technology developer and the military academies. Tom Theodorakis, Director of Athletics at Army West Point, noted that the partnership highlights the growing role that advanced technology plays in keeping future forces safe.

“Founded by one of our own, Shield AI embodies the exact same values the Army-Navy Game has celebrated for generations,” added Michael Kelly, Director of Athletics at the U.S. Naval Academy. “This partnership brings together organizations united by a shared mission to support those who defend our nation.”

AirPro News analysis

We view this sponsorship as a strategic branding maneuver by Shield AI to solidify its position among future military leaders and defense stakeholders. By aligning the X-BAT with the Army-Navy Game, the company directly targets the demographic that will eventually procure, deploy, and operate autonomous systems in the field. The emphasis on runway-independent VTOL capabilities and a 2,000-nautical-mile range directly addresses current Department of Defense requirements for distributed maritime operations and agile combat employment. As autonomous combat aircraft transition from developmental programs to operational assets, high-visibility public engagements like this indicate a shift toward normalizing AI-piloted platforms within the broader military culture.

Sources: Shield AI

Photo Credit: Shield AI

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Defense & Military

Air Force Funds Wireless Power Beaming for Perched Drones

AFWERX awards Reach Power and UNL a Phase I STTR contract to develop wireless power beaming for persistent sUAS ISR missions.

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The Department of the Air Force has awarded a Small Business Technology Transfer (STTR) Phase I contract to Redwood City, California-based Reach Power and the University of Nebraska-Lincoln to develop wireless power-beaming technology for small UAV systems. Announced on August 4, 2026, the research aims to eliminate the operational burden of battery swaps by allowing drones to recharge while “perched” in fixed positions.

According to press releases from Reach Power and the university’s NIMBUS Lab, the joint effort will evaluate how perched drones can function as persistent, reconfigurable nodes for communications and Intelligence, Surveillance, and Reconnaissance (ISR) missions. The contract is managed through AFWERX, the innovation arm of the Air Force Research Laboratory (AFRL).

Overcoming battery limitations in contested environments

Small Unmanned Aircraft Systems (sUAS) face strict endurance limits dictated by onboard battery capacity. The STTR project pairs Reach Power’s wireless power-beaming expertise with the NIMBUS Lab’s research capabilities in autonomous systems, communications, and field robotics to bypass these hardware constraints.

Reach Power Founder and CEO Chris Davlantes stated that persistent autonomy requires persistent power. He noted the technology could help military personnel maintain connectivity and situational awareness in contested environments where traditional infrastructure is unavailable. Dr. Brittany Duncan, director of the NIMBUS Lab, added that the project will specifically evaluate how perched drones can serve as persistent mission nodes for both communications and sensing.

Expanding military applications for wireless power

The AFWERX contract follows a series of recent military research awards for Reach Power. On May 21, 2026, the company announced a Phase I Small Business Innovation Research (SBIR) contract after winning the U.S. Army xTechSearch 9 competition, which focused on achieving perpetual flight for Army drones using power beaming systems.

On June 9, 2026, Reach Power and defense contractor Gambit secured Operational Energy Capability Improvement Fund (OECIF) backing to integrate wireless power with artificial intelligence-enabled autonomy for drone swarms. The Department of the Air Force has utilized the Open Topic SBIR/STTR program since 2018 to fund such dual-use technologies, aiming to accelerate the transition of commercial innovations into military applications.

AirPro News analysis

We view the Department of the Air Force’s investment in wireless power beaming as a necessary step toward true autonomous persistence for sUAS platforms. Current battery technology restricts small drones to flight times that often fall short of extended ISR requirements, forcing operators to manage complex recovery and recharging cycles. By shifting the focus to “perched” operations, the military can leverage the low power draw of stationary sensors while utilizing wireless beaming to keep the systems active indefinitely. If successfully matured, this capability could fundamentally alter how tactical communications networks are deployed, allowing commanders to establish ad-hoc, self-sustaining sensor grids in austere environments.

Sources: University of Nebraska-Lincoln

Photo Credit: University of Nebraska-Lincoln

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