Defense & Military
ENAER Unveils T-40 Newen Integrated Military Flight Trainer
ENAER introduces the T-40 Newen, an advanced integrated flight instruction system replacing the T-35 Pillan for modern military pilot training.

This article is based on an official press release from ENAER.
ENAER (Empresa Nacional de Aeronáutica de Chile), Chile’s state-owned aeronautical company, has officially detailed its next-generation military flight instruction system, the T-40 Newen. Designed as the advanced successor to the highly successful T-35 Pillan, the T-40 is positioned not just as an Military-Aircraft, but as a comprehensive Integrated Primary Instruction System. According to ENAER’s official documentation, the system is specifically engineered to prepare student pilots for the complexities of 4th and 5th-generation fighter aircraft.
The name “Newen,” which translates to “strength” or “energy” in the indigenous Mapudungun language, reflects the robust heritage of the Chilean aerospace sector. By combining a modernized, carbon-fiber-enhanced airframe with a state-of-the-art digital training ecosystem, ENAER aims to revolutionize how Air-Forces conduct primary flight training.
The Evolution from Pillan to Newen
A Legacy of 300,000 Hours
To understand the significance of the T-40 Newen, we must look at its predecessor. The T-35 Pillan has served as a classic basic trainer for over 30 years. ENAER reports that the legacy fleet has delivered over 300,000 hours of flight instruction, successfully training thousands of military pilots. Furthermore, the T-35 has been a major export success for Chile, utilized by air forces in eight countries across the Americas and Europe, including Spain, Panama, El Salvador, and Guatemala.
Aerodynamic and Structural Overhaul
As global air forces upgrade their frontline fleets to advanced fighters like the F-16 (which the Chilean Air Force operates) and the F-35, primary trainers relying on analog instruments are no longer sufficient. The T-40 Newen, previously referred to in defense circles as the “Pillan II” project, bridges this technological gap. While maintaining the recognized reliability and low operational costs of the original Pillan, the new aircraft features significant overhauls.
According to the Manufacturers‘ specifications, the T-40 incorporates extensive use of carbon fiber to reduce overall weight and increase structural fatigue life. The aerodynamic redesign includes a new wing equipped with removable winglets, optimizing efficiency and handling. Additionally, an upgraded engine provides a significantly improved power-to-weight ratio, while the cockpit is fully updated with modern digital interfaces to introduce students to glass-cockpit philosophies from day one.
A Comprehensive “System of Systems”
The most critical selling point of the T-40 Newen, as outlined in ENAER’s release, is that the aircraft itself is only one node within a broader, interconnected digital training network. The company has developed six peripheral subsystems to create a holistic Ground-Based Training System (GBTS).
“The T-40 Newen is not merely a new aircraft, but a comprehensive Integrated Primary Instruction System designed to prepare student pilots for 4th and 5th-generation fighter aircraft.”
Mixed-Reality and Mission Planning
At the core of this digital ecosystem is the Flight Simulator (SIM), an immersive mixed-reality environment featuring a physical flight deck and instructor station. This allows students to practice procedures and simulate planned missions before consuming aviation fuel.
Complementing the simulator is the Mission Planning Subsystem (MPS). ENAER notes that this multi-platform tool is powered by the industry-standard “Luciad” geospatial engine. Students utilize the MPS to generate flight plans on the ground and input them directly into the aircraft’s Avionics. Post-flight, the Mission Debriefing Subsystem (DBS) synchronously reproduces flight parameters, audio, and Head-Up Display (HUD) video in both 2D and 3D, enabling instructors to critique performance using exact data.
Real-Time Tracking and Maintenance Management
Operational safety and fleet management are also heavily integrated. The Flight Tracking (TRK) suite allows ground stations to monitor the real-time position of training aircraft anywhere within the national territory.
For ground crews, ENAER has introduced the Instruction for Operators and Maintainers (SOM) subsystem, a Computer-Based Training (CBT) program designed to ensure efficient aircraft maintenance. This is paired with the Technical Order Management (SOT) system, a digital document management platform that tracks, archives, and organizes all maintenance manuals and technical orders with strict version control.
The Economics of Modern Air Combat Training
AirPro News analysis
We observe that modern defense procurement has decisively shifted away from purchasing standalone aircraft. Air forces globally now demand integrated training systems to “download” training hours from expensive frontline fighters and advanced jet trainers to more cost-effective simulators and primary aircraft. The T-40 Newen perfectly aligns with this global trend.
Operating advanced jet trainers is prohibitively expensive for many nations. By pushing advanced avionics, mixed-reality training, and digital debriefing down to the primary, propeller-driven training phase, air forces can save millions in operational costs while arguably producing higher-quality pilots. Given the historical footprint of the T-35 in Latin America and Europe, ENAER is strategically positioning the T-40 Newen as a highly competitive, budget-friendly alternative to more expensive European or American primary trainers. This “system of systems” approach ensures that Chile remains a key defense exporter in the region.
Frequently Asked Questions (FAQ)
What does “Newen” mean?
In the indigenous Mapudungun language of the Mapuche people of Chile, “Newen” translates to “strength” or “energy.”
What aircraft is the T-40 Newen replacing?
The T-40 Newen is the advanced evolution and successor to the T-35 Pillan, which has been in service for over 30 years.
What makes the T-40 different from traditional primary trainers?
Unlike traditional analog trainers, the T-40 is an Integrated Primary Instruction System. It features a glass cockpit, carbon-fiber components, and connects to six digital subsystems, including mixed-reality simulators and geospatial mission planning tools.
Sources: ENAER Official Website
Photo Credit: ENAER
Defense & Military
L3Harris Completes First 35 Viper Shield Production Units
L3Harris reaches a production milestone for the AN/ALQ-254(V)1 Viper Shield, with 233 units on backlog for eight allied F-16 operators.

L3Harris Technologies has completed manufacturing the first 35 production units of its Viper Shield electronic warfare system, initiating a production ramp-up to fulfill a 233-unit backlog for international F-16 Fighting Falcon operators.
In a press release issued on September 3, 2026, the company announced the milestone at its Clifton, New Jersey, facility. The event also marked the assembly of the first external pod configuration utilizing production-standard hardware. The AN/ALQ-254(V)1 Viper Shield currently stands as the only F-16 electronic warfare suite in active production.
Fulfilling the international backlog
L3Harris is scaling operations to meet demand from eight allied nations that have collectively ordered 233 Viper Shield systems. These international operators have contributed to a $1 billion shared investment funding the development, laboratory testing, flight testing, and current production of the suite.
“The foreign investment is funding development, lab testing, flight testing and current production of Viper Shield systems, which presents the United States with a savings opportunity to avoid upfront costs,” said Chris Aebli, President, Communications & Spectrum Dominance, L3Harris.
Aebli noted that this shared investment means the U.S. Air-Forces and Air National Guard could benefit from joining the program without bearing the initial development burden.
Recent flight testing and fleet integration
The production milestone follows a series of recent technical and commercial validations for the Viper Shield program. On August 5, 2026, L3Harris reported the completion of two-ship flight testing at Edwards Air Force Base in California. During these tests, F-16C and F-16D models flew together with Viper Shield hardware to validate the digital architecture and real-time response capabilities in multi-aircraft scenarios.
Shortly after the Edwards Air Force Base tests, the government of Peru officially selected the Viper Shield system on August 18, 2026, for its incoming F-16 Block 70 fleet. The system is designed to be fully interoperable with the APG-83 Active Electronically Scanned Array (AESA) radar, a standard component of the Block 70/72 configuration and a common upgrade for legacy F-16 airframes.
AirPro News analysis
We note that L3Harris is leveraging international procurement to mature the Viper Shield system before heavily marketing it to domestic operators. By relying on foreign military sales to fund the $1 billion development and testing phase, the manufacturer has effectively de-risked the AN/ALQ-254(V)1 for the U.S. Air Force and Air National Guard. As legacy F-16 fleets undergo radar upgrades to the APG-83 AESA, the interoperability of the Viper Shield positions it as a logical bolt-on enhancement for operators looking to modernize their electronic warfare capabilities without funding a clean-sheet development program.
Sources: L3Harris Technologies
Photo Credit: L3Harris Technologies
Defense & Military
Hermeus Selects Anduril Lattice for Quarterhorse Mk 2
Hermeus partners with Anduril to integrate Lattice autonomy software into the Mach 3 Quarterhorse Mk 2, targeting autonomous flight in 2027.

Hermeus has selected Anduril Industries to integrate the Lattice for Mission Autonomy software into the Quarterhorse Mk 2 high-speed uncrewed aircraft, marking Anduril’s first commercial agreement to supply its autonomy solution for a third-party Group 5 platform.
Announced in a joint press release on September 3, 2026, the partnership aims to achieve the first autonomous flight of the Quarterhorse Mk 2 in 2027. The integration aligns with the United States Air Force (USAF) Collaborative Combat Aircraft (CCA) program’s push for modular systems, demonstrating that advanced hardware and software can be developed independently and combined for high-Mach environments.
Advancing high-Mach autonomous capabilities
The Quarterhorse program, supported by funding from the Pentagon’s Defense Innovation Unit (DIU), targets speeds of Mach 3. Hermeus has maintained an aggressive development timeline, flying its first aircraft in 2025 and reaching supersonic speeds with the Quarterhorse Mk 2.1 exactly 364 days later. The company is currently preparing to fly the Mk 2.2 variant, which was constructed in under a year.
Anduril’s Lattice Software will serve as the core mission planning and execution engine for the Mk 2. Operators will interface with the aircraft using Anduril’s Menace-T command, control, communications, and computing (C4) solution. This system is already utilized by USAF operators to generate sorties with semi-autonomous aircraft.
Speaking to Breaking Defense, Hermeus Chief Executive Officer Zach Shore explained the operational necessity of the Partnerships and the need for scalable command-and-control systems.
“We now need to automate a lot of those flight controls. I want to be able to push a button, have the aircraft spin up, have the aircraft auto takeoff, all those basic features that allow one person to manage multiple platforms,” Shore told the publication.
Validating modular architecture for the CCA program
The agreement serves as a practical application of the Autonomy Government Reference Architecture (A-GRA) standard. By separating the airframe development from the autonomy software, the partnership mirrors the acquisition strategy of the USAF CCA program.
Anduril noted in its September 3 press release that the Hermeus contract validates this focus on modularity. Establishing a common standard ensures cross-compatibility between disparate hardware and software systems, which the company states will accelerate the deployment of autonomous Military-Aircraft.
Brett Darcey, Anduril’s General Manager and Vice President for Mission Autonomy in Air Dominance and Strike, emphasized the maturity of the integration in comments to Breaking Defense.
“We really want to emphasize the fullness of the stack. This isn’t just a mission autonomy science project. This is really readying the Quarterhorse for [autonomous operations],” Darcey stated.
AirPro News analysis
We view this integration as a critical test case for the Pentagon’s broader uncrewed Aviation strategy. If Anduril’s Lattice can successfully manage a third-party airframe operating at Mach 3, it will prove that the A-GRA standard is viable for extreme flight envelopes, not just subsonic loyal wingman platforms. The 2027 flight test will be a major milestone for both companies, potentially opening the door for Anduril to market its autonomy stack to other aerospace Manufacturers while allowing Hermeus to focus entirely on its high-speed propulsion and aerodynamic challenges.
Sources: Anduril Industries
Photo Credit: Anduril Industries
Defense & Military
MAFFS Surpasses One Million Gallons in 2026 Fire Season
Military MAFFS crews delivered over 1.07M gallons of fire retardant by Aug 31, 2026, exceeding the totals of the previous two years.

Military-Aircraft aircrews operating the Modular Airborne Fire Fighting System (MAFFS) surpassed one million gallons of fire retardant delivered across the western United States on August 28, 2026, underscoring the severity of a wildfire season that has already eclipsed the total aerial firefighting volumes of the previous two years.
According to an official release from the U.S. National Guard on September 2, 2026, the running total of retardant dropped by MAFFS-equipped Lockheed C-130 Hercules aircraft reached 1,070,017 gallons by August 31. The program provides critical surge capacity for the U.S. Forest Service (USFS) and the National Interagency Fire Center (NIFC) when commercial and federal contract airtankers are fully committed to existing incidents.
Surge capacity in a demanding fire season
The 2026 season ranks among the busiest of the past decade for military aerial firefighting units. The current volume of 1,070,017 gallons significantly exceeds the 410,810 gallons delivered in all of 2025 and the 871,205 gallons dropped in 2024.
While 2026 has seen elevated activity, the busiest MAFFS season of the past decade remains 2021, which saw 2,583,204 gallons delivered, followed by 1,350,298 gallons in 2020. With weeks potentially remaining in the current fire season, the final 2026 figures are expected to climb further.
Col. Jason Little, Commander of the MAFFS Air Expeditionary Group, emphasized the program’s role in supporting civilian agencies during periods of high demand.
“We serve as a surge capability, and our responsibility is to be as prepared and effective as possible when called upon,” Little stated. “We do our best to integrate seamlessly with the federal and state agencies committed to wildland firefighting.”
Multi-unit military coordination
The MAFFS mission requires coordination across multiple military branches and state lines. Operations for the 2026 season are being coordinated from Reno, Nevada, drawing on resources from across the western United States.
The effort comprises crews from the 146th Airlift Wing of the California Air National Guard, the 152nd Airlift Wing of the Nevada Air National Guard, the 153rd Airlift Wing of the Wyoming Air National Guard, and the 302nd Airlift Wing of the Air Force Reserve Command based in Colorado. These units operate C-130 aircraft fitted with specialized MAFFS roll-on/roll-off equipment, allowing standard tactical airlifters to function temporarily as heavy airtankers.
AirPro News analysis
The rapid accumulation of MAFFS flight hours and retardant drops in 2026 highlights a growing reliance on military surge capabilities to manage domestic natural disasters. As commercial airtanker fleets face high utilization rates early in the fire season, the strategic value of the MAFFS program becomes increasingly apparent. We note that the year-over-year volatility in retardant volumes, fluctuating from just over 410,000 gallons in 2025 to over a million before September in 2026, presents ongoing readiness and funding challenges for the participating Air National Guard and Air Force Reserve units. These squadrons must balance unpredictable domestic support missions with their primary military readiness and global airlift requirements.
Sources: U.S. National Guard
Photo Credit: Senior Master Sgt. Paula Macomber
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