Regulations & Safety
Thales to Upgrade Slovenian Airspace with New Radar System by 2027
Thales partners with Slovenia Control to install advanced co-mounted radar system enhancing air traffic surveillance and cybersecurity by mid-2027.

This article is based on an official press release from Thales Group.
On May 27, 2026, French aerospace and defense technology company Thales announced a major contracts with Slovenia Control, the national Air Navigation Services Provider (ANSP) for Slovenia. According to the official press release, the agreement covers the delivery and installation of a co-mounted primary and secondary surveillance radar system designed to modernize the country’s air traffic management capabilities.
The new infrastructure, slated for deployment by mid-2027, aims to provide continuous, redundant 24/7 surveillance of Slovenian airspace. As European flight volumes continue to climb past pre-pandemic levels, ANSPs are increasingly tasked with upgrading legacy systems to handle denser, more complex traffic flows safely.
We note that this upgrade aligns with the latest EUROCONTROL and International Civil Aviation Organization (ICAO) recommendations, ensuring Slovenia remains fully compliant with European Mode S Station (EMS) standards while bolstering its defenses against modern cyber threats.
Upgrading Slovenia’s Airspace Infrastructure
Building on a 30-Year Partnership
Thales and Slovenia Control have collaborated for nearly three decades. The press release highlights that Thales has previously supplied the ANSP with various Air Traffic Management (ATM) solutions, including Automatic Dependent Surveillance–Broadcast (ADS-B) systems, Instrument Landing Systems (ILS), and an upgraded Air Traffic Services Message Handling System (AMHS). Additionally, Thales previously won a tender to deliver and install a wide area multilateration (WAM) system at Ljubljana Joze Pucnik Airport.
For this latest project, the new radar system will be mounted on a newly constructed 30-meter tower. To ensure uninterrupted and reliable operation during severe weather conditions, the equipment will be enclosed within a protective radome.
Next-Generation Radar-Systems
STAR NG and RSM NG Capabilities
The contract specifies a “co-mounted” configuration, integrating two distinct but complementary radar technologies on the same physical structure to track both cooperative (transponder-equipped) and non-cooperative aircraft.
The primary surveillance radar, the STAR NG, is an S-Band system tailored for Approach Control. It offers a surveillance range of up to 80 nautical miles and detects physical objects without relying on aircraft transponders. Notably, the STAR NG features advanced clutter reduction technology to filter out interference from wind farms and 4G mobile communication networks. It is also capable of detecting small, slow-moving targets such as Unmanned Aerial Vehicles (UAVs) and Drones.
Operating alongside it is the RSM NG, a digital secondary surveillance radar described by Thales as a “Meta Sensor.” This system communicates with aircraft transponders to gather identity, altitude, and speed data. It combines Monopulse Secondary Surveillance Radar (MSSR) architecture with fully integrated, redundant ADS-B. According to the provided technical specifications, the RSM NG can track up to 2,000 aircraft per scan and conduct simultaneous Mode S interrogations.
Cybersecurity at the Forefront
With critical aviation infrastructure increasingly targeted by digital threats, both radar systems are engineered to be “cybersecure by design.” The RSM NG utilizes a cybersecurity framework based on National Institute of Standards and Technology (NIST) standards. It incorporates a virtual machine designed to preserve the radar’s operational behavior while actively protecting the system against jamming, spoofing, and unauthorized cyber intrusions.
“We are honoured that Slovenia Control has once again placed its trust in Thales with the order of this new co-mounted air traffic control radar. This contract reflects not only our commitment to delivering advanced radar surveillance solutions, but also the strength of our long-standing Partnerships in ensuring safe and efficient air operations across Europe.”
, Lionel de Castellane, Vice President of Thales’ Air Traffic Control radars segment, via company press release.
“We are pleased to take this important step forward together with our partner Thales, with whom we share a common goal: safe, efficient and modern air traffic management. This cooperation further strengthens our commitment to continuously enhancing the safety and performance of air navigation services in Slovenia and beyond.”
, Rok Marolt, CEO of Slovenia Control, Ltd., via company press release.
Industry Context: The Pressure on European Skies
The necessity of this infrastructure upgrade is underscored by current European air traffic trends. According to EUROCONTROL’s Spring 2026 forecast cited in the provided research data, European air traffic fully recovered to pre-pandemic levels in 2025, recording 11.05 million flights.
Despite geopolitical disruptions, traffic within the European Civil Aviation Conference (ECAC) area is projected to grow by an additional 2.7% in 2026, reaching approximately 11.3 million flights. This rising volume places immense strain on the European airspace network. In May 2026, EUROCONTROL reported that Air Traffic Control (ATC) capacity and staffing issues accounted for 44% of all en-route delays across Europe.
AirPro News analysis
As the skies become more crowded, structural capacity limits are being severely tested. ANSPs like Slovenia Control are effectively forced to invest in high-precision, automated, and redundant surveillance technologies. Systems like the STAR NG and RSM NG combination are critical for safely reducing aircraft separation distances and managing complex traffic flows efficiently. Furthermore, the specific capability to filter out modern airspace “noise”, such as drone proliferation, wind farms, and 4G interference, demonstrates how technological leaps are required just to maintain baseline safety in an increasingly congested and digitized airspace.
Frequently Asked Questions
What is a co-mounted radar system?
A co-mounted radar system integrates two different types of radar, typically a primary radar (which bounces radio waves off physical objects) and a secondary radar (which communicates with aircraft transponders), onto the same physical tower or structure. This provides comprehensive tracking of both cooperative and non-cooperative aircraft.
When will the new radar system in Slovenia be operational?
According to the Thales press release, the new radar system is scheduled to be delivered and installed by mid-2027.
Why is cybersecurity important for air traffic control radars?
Modern air traffic control relies heavily on digital data and automated systems. Protecting these systems from jamming, spoofing (broadcasting fake aircraft signals), and cyber intrusions is critical to preventing airspace disruptions and ensuring passenger safety.
Sources: Thales Group Press Release
Photo Credit: Thales Group
Regulations & Safety
FAA Announces $481 Million Airport Infrastructure Grants
The FAA distributed 191 grants totaling $481M across 36 states to modernize runways, taxiways, and terminals.

The Federal Aviation Administration (FAA) announced a $481 million infrastructure funding package on September 3, 2026, distributing 191 grants across 36 states and two U.S. territories to modernize runways, taxiways, and passenger terminals.
The Airport Infrastructure Grants (AIG) program allocations, announced by U.S. Transportation Secretary Sean P. Duffy and FAA Administrator Bryan Bedford, are timed ahead of the Labor Day travel period. The funding targets both major commercial hubs and general aviation facilities to accommodate increasing passenger volumes and enhance operational safety.
Targeting high-volume and regional infrastructure
Hartsfield-Jackson Atlanta International Airport (ATL) secured the largest single allocation, receiving $100 million. The FAA stated these funds will support runway, taxiway, and terminal reconstruction, alongside improvements to the runway safety area.
San Diego International Airport (SAN) received $30.3 million for terminal construction, while Louisville Muhammad Ali International Airport (SDF) was awarded $32.5 million for terminal reconstruction. Milwaukee Mitchell International Airport (MKE) secured $14.2 million for taxiway construction and rehabilitation, and El Paso International Airport (ELP) received $8.7 million to rehabilitate its apron.
General aviation also received targeted funding, including a combined $2.5 million for airports in Wisconsin to rebuild terminals, rehabilitate runways and taxiways, and reconstruct snow-removal-equipment buildings.
“From our regional hubs to some of America’s busiest airports, we are investing in critical infrastructure that will provide American families with a more seamless, efficient travel experience for years to come,” Duffy said in the press release.
Bedford added that the grants are designed to help airports meet current traveler demands while preparing for future capacity requirements.
Modernization efforts amid workforce tensions
The infrastructure grants follow another recent FAA milestone. On September 1, 2026, Duffy announced the agency had installed its 100th Surface Awareness Initiative (SAI) system. This deployment reaches nearly half of the 220 airports scheduled to receive the aircraft and vehicle surveillance technology, which is designed to reduce runway incursions.
While the agency highlights infrastructure and technology investments, FAA leadership faces concurrent pressure regarding workforce compensation. On September 4, 2026, U.S. Senators Tammy Duckworth (D-IL) and Dick Durbin (D-IL) issued a public letter demanding Bedford release a congressionally approved pay raise for air traffic controllers.
The senators allege Bedford has withheld a 2.8 percent portion of a 3.8 percent pay increase for four months to leverage workforce utilization.
AirPro News analysis
We note a distinct contrast between the FAA’s well-publicized capital expenditures and its ongoing labor management challenges. The $481 million AIG distribution and the SAI rollout demonstrate steady progress on the hardware and concrete side of the National Airspace System. However, the public intervention by Senators Duckworth and Durbin highlights a persistent friction point regarding the human capital required to operate that infrastructure. Upgraded taxiways and new terminals at facilities like ATL and SAN will yield limited capacity improvements if the air traffic control workforce remains strained by compensation disputes and staffing shortages.
Sources: Federal Aviation Administration
Photo Credit: Hartsfield-Jackson Atlanta Airport
Regulations & Safety
NTSB Releases Preliminary Report on Carlisle Airport Midair Collision
NTSB preliminary report details a fatal midair collision between a Cessna 150H and a PA State Police helicopter at Carlisle Airport.

This is a developing story. Information may change as official details are released.
This is original reporting and analysis by AirPro News.
The National Transportation Safety Board (NTSB) has released its preliminary report on an August 19, 2026, midair collision at Carlisle Airports (N94) in Pennsylvania that resulted in the death of a civilian pilot and injuries to two state troopers. The collision involved a Cessna 150H and a hovering Pennsylvania State Police (PSP) Bell 407GX Helicopters during mixed-aircraft operations at the non-towered airfield.
Released on September 2, 2026, the preliminary investigation record outlines the sequence of events leading up to the 6:52 p.m. local time collision. The NTSB report confirms that both aircraft were in communication via the Common Traffic Advisory Frequency (CTAF) prior to the event. The exact cause of the collision remains under Investigation by the NTSB and the Federal Aviation Administration (FAA).
Flight path and collision sequence
According to the NTSB preliminary report and statements from the PSP, the Bell 407GX helicopter was conducting a training exercise. The helicopter crossed the runway threshold at an altitude of 50 feet before descending into a hover taxi. At the same time, the Cessna 150H was approaching the airport to land.
Radio communications detailed in the report indicate that the helicopter crew instructed the Cessna pilot to extend his downwind leg. The Cessna pilot acknowledged the instruction, stating his intention to land after the helicopter. However, as the helicopter hovered off the runway, the Cessna veered off its intended landing path to the north side of the runway. The fixed-wing aircraft subsequently collided with the rear of the hovering helicopter, striking its tail and main rotors.
Casualties and ongoing investigation
The collision resulted in one confirmed fatality. The pilot of the Cessna 150H, identified by his employer Penn State Health as 57-year-old Dr. Paul William Sokoloski, sustained fatal injuries. The two occupants of the PSP helicopter, identified as Corporal Bryce Corman and Trooper Jason Mills, sustained injuries in the collision.
NTSB aviation Accident investigator Aaron McCarter is leading the inquiry. While surveillance video captured the collision, the NTSB has not yet determined why the Cessna deviated from its landing path. A final report detailing the probable cause is not expected for several months.
AirPro News analysis
We note that mixed-aircraft operations at non-towered airports inherently require precise communication and situational awareness, particularly when fixed-wing aircraft and rotorcraft share the same traffic pattern. While some aviation commentators have speculated that rotor wash or wake turbulence from the hovering Bell 407GX may have contributed to the Cessna 150H veering off course, this remains entirely unverified. The NTSB has explicitly stated that it is too early to attribute the Cessna’s flight path deviation to any specific factor. Investigators will likely examine environmental conditions, aircraft performance data, and pilot actions as they work toward a final probable cause determination.
Sources: National Transportation Safety Board
Photo Credit: NTSB
Regulations & Safety
NTSB: Thermal Plugs Caused AA Flight 3023 Tire Failure
NTSB determines melted thermal relief plugs caused tire failure on American Airlines 737-8 at Denver, triggering emergency evacuation.

The National Transportation Safety Board (NTSB) has determined that melted thermal relief plugs caused the left main landing gear tires to fail on an American Airlines Boeing 737-8 during a July 2025 takeoff roll at Denver International Airport (DEN), prompting a high-speed rejected takeoff and emergency evacuation.
The final aviation investigation report, published on August 26, 2026, officially closes the inquiry into American Airlines Flight 3023. The document details the mechanical sequence that led to the tire failure while highlighting significant passenger noncompliance during the subsequent evacuation, as travelers ignored crew commands and retrieved carry-on baggage.
Mechanical sequence and rejected takeoff
The incident occurred on July 26, 2025, involving a Boeing 737-8, registration N306SW, equipped with CFM International LEAP-1B28 engines. According to the NTSB, the flight experienced an approximate 25-minute delay while awaiting departure at runway 34L.
During the subsequent takeoff roll, as the aircraft reached an indicated airspeed between 90 and 100 knots, the captain reported hearing a loud pop accompanied by a noticeable bump. The flight crew initiated a rejected takeoff at speeds above 80 knots.
The NTSB determined the probable cause of the incident was the melting of thermal relief plugs in the left main landing gear. This melting released tire pressure and caused the tires and wheels to fail during the takeoff roll. The agency noted that this failure resulted in abnormal airplane handling characteristics, which prompted the flight crew to reject the takeoff. Debris from the fractured wheels caused minor damage to the aircraft, including a three-inch dent on the lower skin of the left wing.
Emergency evacuation and passenger behavior
Following the rejected takeoff, the flight crew initially instructed the cabin to remain seated. Between 30 and 45 seconds later, after identifying smoke and fire originating from the left main landing gear, the crew ordered an emergency evacuation.
The aircraft carried 175 occupants, comprising 169 passengers and six crew members. The NTSB final report confirms that zero injuries occurred during the event. This official casualty figure supersedes preliminary media reports from July 2025 that had indicated minor injuries and hospital evaluations.
The investigation report draws specific attention to passenger behavior during the emergency egress. The NTSB stated that the cabin crew described the evacuation as rapid but hindered by significant passenger confusion and noncompliance. Despite flight attendants repeatedly commanding passengers to leave their belongings behind, multiple individuals retrieved their carry-on baggage. The NTSB concluded that this noncompliance directly slowed the flow of egress from the aircraft.
AirPro News analysis
The NTSB findings regarding American Airlines Flight 3023 add to a well-documented and growing safety concern within the commercial aviation sector. Passenger retrieval of carry-on baggage during emergency evacuations is a recurring issue that compromises the 90-second evacuation standard mandated by the Federal Aviation Administration (FAA).
When passengers stop to open overhead bins and carry luggage down escape slides, they not only slow the egress rate for those behind them but also introduce the risk of puncturing the evacuation slides or injuring fellow passengers. We continue to see official accident reports cite passenger noncompliance as a negative factor in evacuation efficiency. This recurring behavioral pattern has prompted safety advocates and lawmakers to question whether current FAA evacuation certification tests, which rely on compliant participants, accurately reflect real-world human behavior during an emergency.
Sources: National Transportation Safety Board
Photo Credit: National Transportation Safety Board
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