Defense & Military
L3Harris AERIS X AEW&C Aircraft Advances Allied Defense Capabilities
L3Harris launches AERIS X AEW&C aircraft with advanced radar and high-altitude performance, securing major international contracts.

This article is based on an official press release and editorial content from L3Harris Technologies.
As global Air-Forces reassess their airborne surveillance fleets, a significant shift is underway from traditional, large-platform aircraft to smaller, highly missionized business jets. Leading this transition is L3Harris Technologies, which has officially positioned its AERIS X Airborne Early Warning and Control (AEW&C) aircraft as a next-generation solution for allied homeland defense. According to a recent company editorial release, the platform is designed to replace aging and expensive legacy surveillance aircraft with a more agile, cost-effective alternative.
The AERIS X platform is marketed as an immediate solution for the current decade, addressing urgent capability gaps exposed by modern conflicts. With the proliferation of drones, low-observable threats, and advanced missile systems, militaries are increasingly demanding persistent, survivable airborne intelligence, surveillance, and reconnaissance (ISR) capabilities. By utilizing a “military off-the-shelf” (MOTS) approach, L3Harris aims to bypass the decade-long development timelines typically associated with new defense programs.
The platform has already demonstrated substantial market viability. In late 2025, South Korea selected the AERIS X in a major defense procurement deal, and as of April 2026, L3Harris confirmed it has secured a second, undisclosed international customer, giving the program significant export momentum.
The AERIS X Platform and Technical Capabilities
High-Altitude Performance and Advanced Radar
According to L3Harris, the AERIS X is built upon the Bombardier Global 6500 business jet airframe. This platform selection allows the aircraft to operate at altitudes up to 41,000 feet. Operating at this high altitude is critical for AEW&C missions, as it maximizes the radar horizon, extends overall coverage, and increases the aircraft’s survivability in contested airspace.
The core of the AERIS X’s surveillance capability is its conformal dual-band Active Electronically Scanned Array (AESA) Radar-Systems, developed in partnership with Israel Aerospace Industries’ (IAI) ELTA Systems. The company states that this advanced radar system delivers true 360-degree, gap-free surveillance, effectively eliminating the fore and aft blind spots that plague older designs. Furthermore, the system reportedly offers a 30 percent extended detection range and features high resistance to modern electronic jamming techniques.
Open Architecture and Interoperability
A key selling point highlighted in the L3Harris release is the aircraft’s future-proof design. The conformal sensor integration preserves the Bombardier Global 6500’s outer mold line (OML). Utilizing a Modular Open Systems Approach (MOSA), the architecture allows allied air forces to integrate new sensors and software upgrades affordably over the platform’s lifecycle, without requiring extensive structural modifications or costly recertification processes.
“Allies are prioritizing platforms that can integrate new sensors and capabilities without extensive aircraft modifications. That’s the definition of future-proofing.”
To serve as a critical node in multi-domain operations, the AERIS X is equipped with advanced tactical datalinks, including Link 16, Link 22, JREAP-C, and SATURN. These systems ensure seamless interoperability with fifth-generation fighters like the F-35, as well as future Collaborative Combat Aircraft (CCA).
Market Traction and Strategic Partnerships
South Korea and Beyond
L3Harris has successfully leveraged the AERIS X to capture significant international defense contracts. In October 2025, the Republic of Korea selected an L3Harris-led consortium, which includes Bombardier, IAI ELTA Systems, and Korean Air, to provide its next-generation AEW&C fleet. The program, valued at over $2.26 billion, serves as a major endorsement of the platform’s maturity in a highly demanding regional threat environment.
“L3Harris is ready to deliver an advanced aircraft fleet that will strengthen mission effectiveness for a key American ally in the Indo-Pacific region. We look forward to collaborating with the Republic of Korea to develop, test, integrate and sustain this vital capability for years to come.”
Building on this success, L3Harris announced in April 2026 that it had secured a second order for the AERIS X from an unnamed international customer. The company emphasizes a tailored approach to these Partnerships, offering technology transfer and local sustainment to ensure allied nations maintain sovereign control over their defense assets.
NATO and European Expansion
Beyond the Indo-Pacific, L3Harris is actively pitching the AERIS X to European allies. The company is positioning the aircraft for NATO’s Allied Future Surveillance and Control Capability (AFSC) Program. Additionally, L3Harris is targeting nations such as Canada and Poland, emphasizing that interoperability with existing NATO and F-35 fleets is an essential requirement for modern defense.
“The operational lessons from current conflicts are unambiguous. Seeing everything and seeing it earlier aren’t nice-to-have features anymore – they’re requirements when defending your homeland.”
AirPro News analysis
The “David vs. Goliath” Shift in Military Aviation
We are observing a fundamental “David vs. Goliath” shift in military aviation procurement. For decades, airborne early warning was dominated by massive, commercial airliner-sized airframes like the Boeing E-3 Sentry. However, the crippling lifecycle costs, low mission availability rates, and sheer size of these legacy platforms have made them increasingly difficult to sustain. The pivot toward smaller, highly advanced business jets like the AERIS X reflects a broader industry trend prioritizing technological agility and speed of deployment over sheer airframe size.
The threat landscape has evolved rapidly. The rise of drone swarms, low-observable cruise missiles, and hypersonic weapons in recent global conflicts has forced militaries to demand 360-degree, jam-resistant radar coverage that can be deployed today, rather than waiting for next-generation development cycles to mature in the 2030s. By utilizing a commercial business jet base, defense contractors can deliver these capabilities much faster.
Economically, this shift makes sense for allied nations. Countries are currently investing billions of dollars into fifth-generation fighter fleets like the F-35. Platforms like the AERIS X are being marketed as the necessary, cost-effective “quarterback” in the sky required to maximize those fighter investments, networking disparate assets into a cohesive, multi-domain fighting force.
Frequently Asked Questions
What is the AERIS X?
The AERIS X is a next-generation Airborne Early Warning and Control (AEW&C) aircraft developed by L3Harris Technologies. It is designed to provide persistent airspace awareness, battle management, and networked command functions for allied militaries.
What aircraft is the AERIS X based on?
The platform is built on the Bombardier Global 6500 business jet, which allows it to operate at high altitudes up to 41,000 feet, maximizing its radar horizon and survivability.
Who has purchased the AERIS X?
In October 2025, South Korea selected the AERIS X in a $2.26 billion deal. In April 2026, L3Harris confirmed a second, undisclosed international customer has also ordered the aircraft.
Sources: L3Harris Technologies
Photo Credit: L3Harris Technologies
Defense & Military
USAF Awards GE Aerospace and Kratos EMD Contract for F143-ZZ-100
The U.S. Air Force selects GE Aerospace and Kratos to develop the F143-ZZ-100 turbofan as a second-source engine for the JASSM program.

The United States Air-Forces (USAF) has awarded an Engineering, Manufacturing and Development (EMD) contract to GE Aerospace and Kratos Defense & Security Solutions to advance a new 800-pound thrust class turbofan engine as a second-source propulsion system for the Joint Air-to-Surface Standoff Missile (JASSM).
Concurrently, the military officially designated the engine, previously known as the GEK800, as the F143-ZZ-100. According to an August 17, 2026, press release from the partner companies, the contract supports a broader Department of Defense (DoD) initiative to reindustrialize the domestic manufacturing base and ensure high-performance jet engines can be mass-produced for cruise missiles, uncrewed aerial vehicles (UAVs), and collaborative combat aircraft (CCA).
Development and testing milestones
GE Aerospace and Kratos began collaborating on the engine in 2023, supported by internal investments and funding from the Air Force Research Laboratory (AFRL). The propulsion system successfully completed altitude testing in 2025 at Purdue University’s Maurice J. Zucrow Laboratories in Indiana. During the testing phase, the engine completed more than 50 successful ground starts.
“The F143 designation and EMD award are a testament to the strong performance and capability of the GEK800 engine and the strength of our partnership with Kratos. This reflects years of disciplined engineering to deliver propulsion systems that meet the evolving, mission-critical requirements of our military customers.”
The statement was provided by Amy Gowder, President and CEO of GE Aerospace Defense & Systems.
Diversifying the cruise missile supply chain
The JASSM program has historically relied on a single engine supplier, utilizing the Williams International F107-WR-105 turbofan engine. In December 2024, the Pentagon awarded Williams International a $253.7 million contract to expand production of the F107-WR-105 to support higher output for JASSM and other missile programs.
The introduction of the F143-ZZ-100 breaks this single-source reliance, providing the USAF with a secondary supplier capable of producing engines in large quantities. Eric DeMarco, President and CEO of Kratos Defense & Security Solutions, highlighted the strategic focus of the partnership.
“Kratos has been working with our outstanding partner GE Aerospace and the United States Air Force to support the Department of War in reindustrializing U.S. manufacturing capacity and capability in the area of low cost, rapidly manufacturable, in large quantities, jet engines for drones, cruise missiles and other systems. Kratos and GE Aerospace are making significant investments with our government partners, to support U.S. National Security priorities.”
AirPro News analysis
We view the F143-ZZ-100 EMD contract as a direct response to the industrial base constraints exposed during recent global conflicts. The U.S. military has recognized that relying on a single supplier for critical munitions components creates an unacceptable bottleneck. By funding a second-source engine for the JASSM program, the DoD is prioritizing supply chain resilience and mass manufacturability. The rhetorical use of the archaic term “Department of War” by Kratos leadership underscores the defense industry’s current pivot toward wartime production footing, focusing on scale and speed over bespoke, low-volume manufacturing.
Sources: GE Aerospace
Photo Credit: Lockheed Martin
Defense & Military
U.S. Army Grounds Apache Training Flights After Fatal Texas Crash
The U.S. Army halted AH-64 Apache training flights after a fatal AH-64E crash near Fort Hood, Texas, killed two pilots on August 12, 2026.

This is a developing story. Information may change as official details are released.
The U.S. Army ordered a temporary stand-down of all Boeing AH-64 Apache training flight operations on August 14, 2026, following a fatal accident during a maintenance test flight in Texas that resulted in the deaths of two pilots.
The directive halts training missions across the fleet while safety investigators examine the circumstances of the August 12, 2026, crash. According to U.S. Army Public Affairs, the grounding does not affect ongoing combat missions currently being flown by Apache units.
Accident details and crew identification
The accident occurred when a Boeing AH-64E Apache crashed in a field in Salado, Texas, located approximately 30 miles from Fort Hood. The aircraft was conducting a maintenance test flight at the time of the event.
On August 14, 2026, the Army publicly identified the two pilots killed in the crash as Chief Warrant Officer 2 Deontre T. Huey and Warrant Officer Seth L. Olmstead. Military records indicate Huey entered the Army in 2014, while Olmstead joined in 2023.
Local emergency services responded to the site. Bell County Sheriff’s Office spokesperson Bill Coleman stated to CBS News that the impact sparked a localized wildfire, noting, “You could tell this was a violent crash.”
Investigation and operational response
The U.S. Army Combat Readiness Center is leading the official investigation into the accident. No official cause has been determined.
In a press release, U.S. Army Public Affairs stated, “The stand-down will remain in effect until we have a better understanding of the root cause of the accident.” The release also noted that the Army is profoundly saddened by the loss of the two soldiers.
Lt. Gen. Kevin D. Admiral, Commanding General of III Armored Corps and Fort Hood, issued a statement regarding the fatalities.
“Our hearts and deepest condolences are with the families of the Soldiers we lost Wednesday. The Army is a family, and a tragedy like this is felt throughout our formations and our community.”
The U.S. military has implemented similar aviation stand-downs in recent years following safety occurrences. Three years prior to this event, the Army grounded all aviation units for supplementary training after 12 soldiers died in separate accidents in Alaska and Kentucky.
AirPro News analysis
We observe that targeted operational pauses are a standard risk management tool within military aviation following fatal accidents. By isolating the stand-down to training flights, the Army maintains its combat readiness and forward-deployed capabilities while allowing the U.S. Army Combat Readiness Center time to conduct a preliminary review of fleet-wide maintenance and operational data. Because this accident occurred during a maintenance test flight, investigators will routinely examine recent maintenance actions, component histories, and technical directives associated with the AH-64E fleet.
Sources: U.S. Army Public Affairs
Photo Credit: US Army
Defense & Military
Lockheed Martin AI Predicts Aircraft Failures 72 Hours Ahead
Lockheed Martin deploys machine learning models to predict aircraft component failures 72 hours in advance, shifting to predictive military sustainment.

Lockheed Martin detailed a strategic shift toward artificial intelligence-driven military sustainment on August 13, 2026, deploying machine learning models capable of predicting aircraft component failures up to 72 hours in advance.
In a feature article published by the manufacturer, Nick Smythe, Vice President of Sustainment Campaigns at Lockheed Martin, outlined the transition from static, flight-hour-based maintenance schedules to dynamic, predictive logistics. The initiative aims to reduce the military logistics footprint and maintain operational readiness in contested environments by preempting hardware failures.
Transitioning to predictive maintenance
The core of the new sustainment strategy relies on deep-learning models that analyze continuous data streams from aircraft systems. By monitoring engine vibration, temperature, and fuel-flow data, the algorithms can identify degradation patterns and provide a 72-hour advance warning before a component fails. This predictive window allows operators to route replacement parts to forward operating bases preemptively, avoiding unscheduled downtime.
“By moving from a static ‘flight hour’ approach to a dynamic, AI driven forecast that leverages digital twins, the logistics pipeline becomes proactive,” Smythe stated.
The system utilizes tools like the Real-Time Logistics Command and Control (LogC2) Dashboard to process massive data streams and recommend actions. Smythe emphasized that the technology is intended to protect and empower human operators rather than replace them.
Decision advantage in contested environments
The integration of artificial intelligence (AI) into logistics is designed to accelerate command responses. Smythe noted that traditional advantages in military logistics are no longer sufficient against modern adversaries.
“The world is smaller, more interconnected, and increasingly contested. In these environments sheer mass and energy no longer guarantee success; decision making speed does,” Smythe wrote.
By processing data faster than human analysts, the AI models provide commanders with a decision advantage, allowing them to anticipate supply chain bottlenecks and maintenance requirements before they impact flight operations.
Broader defense industry integration
The sustainment announcement follows a series of AI-focused deployments by Lockheed Martin. On August 12, 2026, the company demonstrated NetSense, an AI-powered counter-Uncrewed Aircraft Systems (UAS) technology developed alongside Verizon, NVIDIA, and Astris AI. Earlier, on August 5, 2026, Lockheed Martin and the U.S. Navy showcased SensorMAX, a machine learning sonar system for antisubmarine warfare, during the RIMPAC 2026 exercise.
These technological shifts align with major defense contracts and broader military branch initiatives. On July 16, 2026, Lockheed Martin secured the Special Operations Forces Global Logistics Support Services (SOF GLSS II) contract, valued at up to $10.5 billion over 12 years. Concurrently, the U.S. Air Force Rapid Sustainment Office announced on August 11, 2026, that it is actively exploring AI tools to predict aircraft failures and strengthen its own sustainment networks.
AirPro News analysis
We view Lockheed Martin’s public emphasis on AI sustainment as a direct response to the U.S. Department of Defense’s mandate for contested logistics capabilities. The traditional model of stockpiling spare parts near the battlefield is highly vulnerable in modern peer-conflict scenarios. By utilizing digital twins and predictive algorithms, original equipment manufacturers (OEMs) are attempting to thin out the supply chain without sacrificing aircraft availability rates. The 72-hour predictive window for engine components represents a critical metric. If consistently achieved in field conditions, it would allow maintenance crews to replace degrading parts during scheduled downtime rather than managing aircraft on ground (AOG) emergencies.
Sources: Lockheed Martin
Photo Credit: Lockheed Martin
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