Connect with us

Defense & Military

Raytheon Delivers First Next Generation Jammer Pods to RAAF

Raytheon delivers first Next Generation Jammer Mid-Band pods to the Royal Australian Air Force, enhancing electronic attack capabilities on EA-18G Growlers.

Published

on

This article is based on an official press release from Raytheon (RTX).

Raytheon Delivers First Next Generation Jammer Pods to the Royal Australian Air Force

Raytheon, an RTX business, has officially announced the delivery of its first Next Generation Jammer Mid-Band (NGJ-MB) pods to the Royal Australian Air Force (RAAF). According to a company press release issued on April 20, 2026, this initial delivery of shipsets was completed ahead of schedule in September 2025, with subsequent deliveries planned to continue throughout 2026.

The NGJ-MB program, officially designated as the AN/ALQ-249, represents a major cooperative development and production effort between the U.S. Department of Defense and the Australian Department of Defence. The system is an advanced airborne electronic attack platform designed to disrupt and degrade enemy radar and communication systems, allowing allied aircrews to operate safely in contested environments.

To ensure the RAAF maintains operational and mission readiness, Raytheon noted in its release that it is providing on-site deployment and maintenance support directly in Australia.

Upgrading the Electronic Attack Arsenal

Transitioning from Legacy Systems

The introduction of the NGJ-MB marks a generational leap in electronic warfare. Based on supplementary research data, the NGJ program was initiated to replace the aging AN/ALQ-99 Tactical Jamming System, which has been in active service since 1972. The legacy ALQ-99 system has increasingly faced reliability issues and interference challenges with modern Active Electronically Scanned Array (AESA) Radar-Systems.

In contrast, the new NGJ-MB utilizes its own AESA technology radiating in the mid-band frequency range. Furthermore, research indicates that the system features a fully digital, Software-defined architecture, enabling rapid updates to counter emerging electromagnetic threats.

“This Delivery marks a significant milestone in our collaborative efforts with the U.S. Navy and RAAF on NGJ. This advanced technology will greatly enhance RAAF’s electronic warfare capabilities, safeguarding vital assets on its aircraft and more effectively neutralizing adversary technologies across a wide range of missions.”

Barbara Borgonovi, President of Naval Power at Raytheon, via the official press release

Integration with the EA-18G Growler

The NGJ-MB pods are designed to be externally mounted on the EA-18G Growler electronic attack aircraft. According to defense research reports, the RAAF currently operates a fleet of 11 EA-18G Growlers assigned to No. 6 Squadron, stationed at RAAF Base Amberley in Queensland. The integration of these advanced jamming pods is a core component of Australia’s broader “Project AIR 5349 Phase 6,” a $6 billion initiative aimed at comprehensively upgrading the RAAF’s Growler fleet to match current U.S. capabilities.

Program Milestones and Combat-Proven Technology

Recent Deployments and Contracts

The NGJ-MB system arrives in Australia with a proven operational track record. According to defense research, the U.S. Navy officially declared Initial Operational Capability (IOC) for the system in December 2024. Shortly thereafter, the jammer saw its first combat deployment in 2024 with the U.S. Navy’s Electronic Attack Squadron 133 (VAQ-133) aboard the USS Abraham Lincoln Carrier Strike Group, where it was utilized during operations against Iran-backed Houthis in Yemen.

Following these successful deployments, Raytheon secured a $580 million follow-on production contract from the U.S. Navy in May 2025. This contract, which runs through 2028, covers additional NGJ-MB systems for both U.S. and RAAF operations.

“Next Generation Jammer Mid-Band improves our fleet’s warfighting advantage in the electromagnetic spectrum. This system provides enhanced capabilities to deny, distract and disorient adversaries’ radars…”

Rear Adm. John Lemmon, Program Executive Officer for Tactical Aircraft Programs (U.S. Navy), via defense research reports

Progress on the Low-Band Increment

The NGJ program is an evolutionary acquisition divided into multiple spectrum increments. While Raytheon is delivering the Mid-Band pods, progress is also underway for the Low-Band variant (NGJ-LB). Research data shows that in August 2024, the U.S. Navy awarded L3Harris a $587.4 million contract for the engineering and Manufacturing development of the NGJ-LB system, which is also being developed cooperatively with Australia.

AirPro News analysis

At AirPro News, we view the accelerated delivery of the NGJ-MB to the RAAF as a critical indicator of deepening defense interoperability between the United States and Australia. As the strategic focus shifts heavily toward the Indo-Pacific region, spectrum dominance is becoming just as vital as traditional air superiority. The transition to software-defined electronic attack systems like the NGJ-MB highlights a broader defense industry trend: the necessity for agile, easily upgradable platforms that can adapt to rapidly evolving surface-to-air missile systems and advanced adversary radars. By equipping its EA-18G Growlers with this technology, the RAAF is significantly enhancing the survivability of allied 4th and 5th-generation fighters in highly contested airspaces.

Frequently Asked Questions (FAQ)

What is the Next Generation Jammer Mid-Band (NGJ-MB)?
The NGJ-MB (AN/ALQ-249) is an advanced airborne electronic attack system developed by Raytheon. It uses active electronically scanned arrays to disrupt and degrade enemy radar and communications.

Which aircraft will carry the NGJ-MB for Australia?
The Royal Australian Air Force will mount the NGJ-MB pods on its fleet of 11 EA-18G Growler electronic attack aircraft, based at RAAF Base Amberley.

What system is the NGJ replacing?
The NGJ program is designed to replace the legacy AN/ALQ-99 Tactical Jamming System, which has been in service since 1972.


Sources: Raytheon Press Release

Photo Credit: RTX

Continue Reading
Click to comment

Leave a Reply

Defense & Military

2026 Northrop Grumman Technology Accelerator Cohort Named

Eight startups including Whisper Aero and Zulu Pods selected for Northrop Grumman’s 2026 accelerator from 300+ applicants.

Published

on

This is original reporting and analysis by AirPro News.

Eight aerospace and defense startups, including Whisper Aero and Zulu Pods, Inc., have been selected from a pool of over 300 applicants for the 2026 Northrop Grumman Technology Accelerator. The 11-week virtual program, powered by FedTech, provides emerging deep-tech companies a direct pathway to collaborate with a major prime contractor on next-generation aircraft propulsion, advanced materials, and defense technologies.

The accelerator is designed to integrate external technology innovation into the supply chain and product lines of Northrop Grumman Corporation. Selected companies receive mentorship from Northrop Grumman experts, participate in technology integration strategy sessions, and gain access to venture capitalists and Department of Defense (DOD) connections to pursue funded pilots and strategic partnerships. Applications for the 2026 cohort closed on July 1, 2026.

2026 cohort and technological focus

The 2026 cohort represents a diverse cross-section of aerospace innovation, focusing on sectors such as artificial intelligence, quantum technology, and advanced manufacturing. Whisper Aero announced its selection on August 17, 2026, publishing the full list of participating companies:

  • Whisper Aero
  • Zulu Pods, Inc.
  • Coronal Technologies
  • ICOMAT
  • InfinitForm
  • Kilsar
  • PanOptimization
  • Raven Space Systems

Participants are targeting specific legacy challenges within aerospace manufacturing and design. In an August 12, 2026 statement, Zulu Pods outlined its objective for the program.

“We’re here to replace legacy fluid delivery with something lighter, faster, and built to scale.”

Whisper Aero emphasized the rapid development timeline the accelerator enables for early-stage aerospace hardware.

“We’re proud to work directly with Northrop Grumman Corporation and FedTech on next-generation propulsion that future aircraft will run on. As one of eight companies selected out of over 300, we’re grateful for the opportunity to manufacture and demonstrate capability rapidly.”

Integration into defense supply chains

The Northrop Grumman Technology Accelerator functions as a bridge between agile startups and the heavily regulated defense procurement environment. By partnering with FedTech, Northrop Grumman can evaluate unproven but high-potential technologies without absorbing the initial research and development costs typically associated with internal incubation.

AirPro News analysis

We view the structure of the 2026 cohort as a clear indicator of where prime contractors are identifying supply chain vulnerabilities and technological gaps. The inclusion of companies focused on fluid delivery systems, advanced materials, and next-generation propulsion suggests Northrop Grumman is prioritizing component-level innovations that can be rapidly scaled and integrated into existing platforms. For startups like Whisper Aero and Zulu Pods, the 11-week program offers critical exposure to DOD acquisition pathways, which often present insurmountable barriers to entry for independent firms lacking prime contractor sponsorship.

Sources: Whisper Aero

Photo Credit: Whisper Aero

Continue Reading

Defense & Military

Lockheed Martin Targets 2028 Quantum Navigation Fielding

Lockheed Martin leads DIU quantum sensor program with Q-CTRL and AOSense, targeting GPS-independent navigation by 2028.

Published

on

Lockheed Martin is advancing quantum sensing technology from laboratory environments to operational aerospace and defense platforms, targeting a 2028 federal timeline for fielding GPS-independent Navigation systems.

In a feature article published on August 17, 2026, the defense manufacturer detailed its role as the prime contractor for the Defense Innovation Unit (DIU) Transition of Quantum Sensors program. Working alongside quantum industry specialists Q-CTRL and AOSense, Lockheed Martin is developing a Quantum Inertial Navigation System (QuINS) designed to operate in contested environments where traditional satellite navigation signals are degraded or denied.

Engineering for Contested Environments

The QuINS architecture utilizes individual atoms to detect motion and orientation with unprecedented precision. This technology provides a critical alternative to the Global Positioning System (GPS), which remains vulnerable to jamming and spoofing tactics in modern electronic warfare.

Transitioning these highly sensitive instruments from controlled laboratories to the harsh conditions of military aviation and ground platforms requires strict management of size, weight, and power (SWaP) constraints. The hardware must withstand the extreme vibration, temperature fluctuations, and electromagnetic interference inherent to aerospace operations.

“It takes a lot of clever engineering to package the complicated quantum system into a device that can be used in the real world, outside of a lab,” said Gwen Leifer, Senior Quantum Systems Engineer and Lead for Quantum Workforce Development at Lockheed Martin. “But once you do, you have a device that may be more precise, uses less power or works in ways conventional sensors cannot.”

Strategic Partnerships and Federal Timelines

Lockheed Martin plans to conduct multiple platform demonstrations of the technology throughout 2026 and beyond, aligning with a federal target to field operational quantum capabilities by 2028. The company began applying quantum science to engineering challenges in 2008 and officially designated it a priority technology area in 2021, alongside hypersonics, autonomy, and directed energy.

The current DIU initiative builds on parallel defense sector investments. In August 2025, the Defense Advanced Research Projects Agency (DARPA) awarded Q-CTRL $24.4 million under the Robust Quantum Sensors (RoQS) program to develop next-generation navigation sensors, with Lockheed Martin serving as a subcontractor. Prior to that contract, Lockheed Martin Ventures participated in Q-CTRL’s Series B funding round in October 2024.

Lockheed Martin positions itself as the integration specialist bridging the gap between theoretical physics and deployable military hardware. Tom Loftus, Quantum Sensing and Position, Navigation, and Timing Lead, noted that the engineering teams focus on solving the practical hardware problems that stand between a laboratory prototype and useful equipment.

“In our work with our partner companies, we’re the engineers in the room,” stated Dani Couger, Quantum Technologies Lead at Lockheed Martin. “We know how to take something fragile, integrate it with complex systems and make it thrive in real environments.”

AirPro News analysis

While quantum computing often dominates public attention with promises of future cryptographic breakthroughs, quantum sensing represents the immediate, deployable edge of the technology. For the aerospace sector, the vulnerability of GPS is a recognized single point of failure in both military and commercial aviation. The push for alternative Position, Navigation, and Timing (PNT) solutions has accelerated as electronic warfare capabilities proliferate globally.

We view Lockheed Martin’s timeline for platform demonstrations in 2026 as a clear indicator that quantum inertial navigation is moving out of the experimental phase. By acting as the prime integrator for specialized firms like Q-CTRL and AOSense, the aerospace giant is leveraging commercial sector agility while applying its own expertise in ruggedizing hardware for flight. If the 2028 federal fielding target is met, quantum sensors could fundamentally alter how aircraft navigate in electronically contested airspace, providing a resilient backup that cannot be jammed from the ground.

Sources: Lockheed Martin, Q-CTRL

Photo Credit: Lockheed Martin

Continue Reading

Defense & Military

E-2D Advanced Hawkeye Block II Critical Design Review Complete

Northrop Grumman and the U.S. Navy complete Block II critical design review, advancing the E-2D upgrade into integration and testing.

Published

on

Northrop Grumman Corporation and the U.S. Navy have successfully completed the government-led critical design review for the E-2D Advanced Hawkeye Block II upgrade, transitioning the modernization program from the design phase into integration and testing.

The milestone, completed in May 2026 and publicly announced by the manufacturers on August 18, marks the most extensive platform overhaul in the history of the E-2D program. The Block II configuration is designed to future-proof the aircraft against emerging aerial threats by introducing an open mission systems architecture, a modernized cockpit, and significantly increased computing capacity.

Modernizing the airborne command node

The E-2D Advanced Hawkeye serves as the primary airborne command and control node for U.S. Navy carrier strike groups. To maintain this capability in increasingly complex electromagnetic environments, the Block II upgrade focuses heavily on digital infrastructure rather than aerodynamic changes.

According to a U.S. Navy statement, integrating an open mission systems architecture resolves current and future parts obsolescence while enabling rapid, non-proprietary technology insertion. This approach allows the military to upgrade software and hardware subsystems independently of the primary airframe manufacturer.

“Completing the Block II critical design review reflects the dedication and expertise of our team and partners. This upgrade strengthens the E-2D’s suite of capabilities, enhancing situational awareness, reducing crew workload and paving the way for future technology.”

Janice Zilch, vice president and program manager for the E-2D Advanced Hawkeye at Northrop Grumman, noted in a press release that the company continues to deliver unmatched capability at speed to the U.S. Navy and international partners.

Production timeline and fleet integration

The transition out of the design phase aligns with recent procurement actions. On July 22, 2026, the U.S. Department of Defense awarded Northrop Grumman a not-to-exceed $1.196 billion undefinitized contract for the production and delivery of three E-2D Advanced Hawkeye Block II aircraft.

Manufacturing will take place primarily in Melbourne and St. Augustine, Florida, as well as Liverpool, New York. The manufacturer noted that the broader E-2D program supports approximately 4,000 jobs across 411 companies in 40 U.S. states.

The Block II enhancements will be integrated directly into the active production line for new airframes, while the existing fleet will undergo retrofitting. Flight testing for the upgraded aircraft is scheduled to begin in fiscal year 2029, with the first overhauled Block II aircraft targeted for delivery by 2030.

AirPro News analysis

The shift toward an open mission systems architecture is a defining characteristic of modern military aviation procurement. By decoupling the mission systems from the proprietary hardware of the original equipment manufacturer (OEM), the U.S. Navy is positioning the E-2D to adapt to electronic warfare and sensor threats much faster than traditional upgrade cycles allow. We view the successful critical design review as a strong indicator that the Navy intends to keep the E-2D as the central node of its carrier strike group network well into the 2040s, rather than seeking a clean-sheet replacement in the near term.

Sources: Northrop Grumman

Photo Credit: Northrop Grumman

Continue Reading
Every coffee directly supports the work behind the headlines.

Support AirPro News!

Advertisement

Follow Us

newsletter

Latest

Categories

Tags

Every coffee directly supports the work behind the headlines.

Support AirPro News!

Popular News