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KAI Unveils MAH-1 Helicopter and ALE Drone System at EDEX 2025

KAI presents the MAH-1 attack helicopter with ALE drone at EDEX 2025, targeting Middle East and African defense markets with advanced coastal strike capabilities.

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KAI Unveils Integrated MAH-1 Helicopter and ALE Drone System at EDEX 2025

At the Egypt Defence Expo (EDEX) 2025 in Cairo, Korea Aerospace Industries (KAI) officially presented a major evolution in its naval aviation portfolio: the MAH-1 Marine Attack Helicopter paired with an Air Launched Effect (ALE) drone. This unveiling marks the first time South Korea has publicly displayed a dedicated Manned-Unmanned Teaming (MUM-T) system specifically designed for amphibious operations.

According to reporting by Army Recognition, the system is engineered to bolster survivability and extend strike ranges in coastal environments. By debuting this technology in Egypt, KAI appears to be positioning itself as a competitive alternative in the Middle East and African defense markets, utilizing Cairo as a strategic entry point for regional sales.

The MAH-1 Marine Attack Helicopter

The centerpiece of the display was the MAH-1, an armed attack variant of the MUH-1 Marineon. The Marineon itself is a derivative of the KUH-1 Surion utility helicopter. Designed to provide close air support (CAS) and anti-armor capabilities for marine landings, the MAH-1 represents a significant step toward indigenous South Korean naval power.

Reports from the event indicate that the helicopter’s development is scheduled to conclude in late 2026, following a maiden flight that occurred in December 2024. The platform features a folding main rotor for shipboard storage and is treated with salt-resistant anti-corrosion coatings to withstand maritime conditions.

Key Specifications and Armament

Based on data displayed at the exhibition, the MAH-1 boasts a maximum takeoff weight of 8.7 tons and is powered by twin T700-701K turboshaft engines, each generating over 1,800 shaft horsepower. Its dimensions include a length of 19 meters and a width of 6.1 meters.

The aircraft is heavily armed for its support role. It features a chin-mounted 20mm three-barrel turret gun and is capable of carrying a variety of munitions, including Cheongeom (Taipers) anti-tank guided missiles, Mistral air-to-air missiles, and 2.75-inch rockets.

The “Loyal Wingman”: ALE Drone

Complementing the manned helicopter is the Air Launched Effect (ALE) drone, a compact unmanned system designed to launch directly from the MAH-1. This “loyal wingman” concept allows the helicopter crew to control the drone via bidirectional data links, extending their sensory reach while keeping the manned aircraft at a safer distance from threats.

According to the specifications provided at EDEX 2025, the ALE model displayed measures approximately 1.2 meters in length with a wingspan of 2.5 meters. It offers an endurance of roughly two hours and a top speed of around 200 km/h. The drone is intended for diverse roles, including Intelligence, Surveillance, and Reconnaissance (ISR), electronic warfare, and potentially loitering munition strikes.

“The drone operates ahead of the manned helicopter to detect threats, reducing risk to the crew.”

— Summary of KAI operational concept

This system is part of KAI’s broader “Adaptable Aerial Platform” (AAP) program, which envisions various sizes of air-launched drones compatible with different platforms, including the FA-50 light combat aircraft.

Strategic Market Implications

KAI’s decision to unveil this system in Cairo underscores a deliberate strategy to target the Middle East and Africa (MEA) region. Egypt is viewed as a critical hub for this expansion, with KAI leveraging existing defense ties, such as the sale of K9 Howitzers and ongoing discussions regarding the FA-50.

The marketing approach emphasizes industrial cooperation, with proposals for technology transfer and local assembly. This “win-win” model is designed to appeal to nations like Egypt that possess developing amphibious capabilities, such as Mistral-class carriers, but may face budget constraints or export restrictions when seeking top-tier Western platforms.

AirPro News Analysis

We observe that the introduction of the ALE represents a critical tactical shift for the MAH-1 platform. By allowing the helicopter to engage targets or gather intelligence “over the horizon,” the system mitigates the risk posed by coastal air defense systems, such as MANPADS, which are a primary threat during amphibious assaults.

Furthermore, this development highlights South Korea’s growing independence in defense technology. By localizing key components like the T700 engines and developing indigenous weapons like the Cheongeom missile, KAI is reducing reliance on foreign suppliers. This autonomy likely makes the platform more attractive to non-aligned nations seeking advanced capabilities without the geopolitical strings often attached to US or European exports.

Sources

Photo Credit: Korea Aerospace Industries

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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.

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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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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.

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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.

Sources: RTX / Pratt & Whitney (July 20, 2026)

Photo Credit: RTX

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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.

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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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