Space & Satellites
Stratolaunch Acquires Boeing 777-200ER as Third Carrier Aircraft
Stratolaunch adds a Boeing 777-200ER to its fleet, boosting hypersonic flight test capacity by 35% with modifications due in 2027.

Stratolaunch has acquired a Boeing 777-200ER to serve as its third carrier aircraft, increasing the company’s hypersonic flight test capacity by 35 percent to meet growing defense and commercial demand.
In a press release issued on September 30, 2026, the Mojave, California-based company confirmed the aircraft will undergo extensive modifications to launch its autonomous, reusable Talon-A hypersonic test vehicles. The fleet expansion aims to address the critical bottleneck in flight-test throughput for high-speed aerospace systems.
Expanding the carrier fleet for Talon-A
The addition of the Boeing 777-200ER marks a significant operational scale-up for Stratolaunch. The company utilizes carrier aircraft to transport the Talon-A test vehicles to high altitudes before air-launching them, effectively using the carrier as a reusable first stage. This method allows for flexible launch locations and rapid turnaround times compared to traditional ground-based rocket launches.
Prior to this acquisition, the Stratolaunch fleet consisted of two primary carrier aircraft. The first is “Roc,” a custom-built, twin-fuselage aircraft that holds the record for the largest wingspan of any flying aircraft. The second is “Spirit of Mojave,” a modified Boeing 747-400. The integration of the Boeing 777-200ER will provide a proven, widely supported commercial airframe to the lineup.
Stratolaunch expects to complete the necessary engineering modifications to the Boeing 777-200ER by 2027. These modifications will enable the aircraft to carry and release the Talon-A vehicles from its fuselage.
“Adding the reliability of a Boeing 777 aircraft to our fleet enhances our flight flexibility and strengthens our long-term capacity as we work to provide the nation and our customers with the test cadence needed to accelerate hypersonic innovation. We look forward to operationalizing the aircraft and expanding our capability to serve customers at the scale and speed required to address hypersonic national security needs.”
Zachary Krevor, President and CEO of Stratolaunch, stated that the company is building the operational scale required to make routine hypersonic testing a reality for customers globally.
Scaling operations to meet defense testing bottlenecks
The US defense sector has increasingly prioritized hypersonic testing capacity over the past several years. The Department of Defense has identified flight-test throughput as a critical limitation in fielding operational hypersonic capabilities. This backlog has driven substantial demand for commercial testbeds like the Talon-A, which can simulate hypersonic flight conditions for various payloads and materials without requiring scarce government launch infrastructure.
Stratolaunch has secured significant government backing to provide these services. In February 2026, the company announced a $90.8 million contract award under the Department of War Test Resource Management Center (TRMC) Multi-Service Advanced Capability Hypersonics Test Bed (MACH-TB) program. The contract funds the use of the Talon-A platform to accelerate the testing and evaluation of hypersonic technologies.
The company has demonstrated consistent technical progress leading up to the fleet expansion. In July 2026, Stratolaunch announced it had surpassed 10 successful hypersonic flights with its Talon-A platform, validating the reusability and aerodynamic performance of the vehicle.
Financial momentum and potential public offering
Stratolaunch operates as a non-traditional defense contractor and has undergone significant corporate evolution since its founding in 2011 by Microsoft co-founder Paul Allen and Scaled Composites founder Burt Rutan. Following Allen’s death, the company was acquired by Cerberus Capital Management in 2019, which pivoted the firm’s focus from space launch to hypersonic flight testing.
The acquisition of the Boeing 777-200ER follows a period of aggressive financial structuring. In January 2026, Stratolaunch completed a major capital raise, bringing in Elliott Investment Management as a new partner alongside Cerberus Capital Management. According to statements released at the time, the capital was specifically earmarked to expand hypersonic production and flight capabilities.
According to reporting by Briefs Finance in September 2026, Stratolaunch is currently considering a US initial public offering (IPO). The outlet reported that the company could raise up to $500 million, targeting a valuation between $2 billion and $3 billion. Stratolaunch has not officially confirmed the IPO plans.
AirPro News analysis
The acquisition of a conventional, widely available airframe like the Boeing 777-200ER signals a strategic shift for Stratolaunch from bespoke engineering to scalable, repeatable operations. While the custom-built Roc remains an engineering marvel and a highly capable heavy-lift platform, maintaining and operating a one-of-a-kind aircraft presents unique supply chain and maintenance challenges. By integrating a Boeing 777-200ER, Stratolaunch gains access to a global supply chain of spare parts, certified maintenance personnel, and established operational procedures.
As the US government seeks to clear the backlog of hypersonic testing, Stratolaunch is positioning itself not just as a niche aerospace developer, but as a high-cadence utility provider for national security programs. The timing of this fleet expansion also aligns closely with the reported IPO preparations. Demonstrating tangible physical growth and a 35 percent increase in flight capacity provides a compelling narrative of scale and revenue potential to public market investors.
Photo Credit: Stratolaunch
Space & Satellites
NASA and Boeing Revise Starliner Schedule for 2026 and 2028
NASA and Boeing target an uncrewed Starliner flight in late 2026 and a crewed mission in 2028 after the 2024 mishap.

The National Aeronautics and Space Administration (NASA) and The Boeing Company have established a revised flight schedule for the CST-100 Starliner spacecraft, targeting an uncrewed test flight in late 2026 and a crewed mission in 2028 while initiating a transition to a new launch vehicle.
Announced in a press release on September 28, 2026, the updated development plan outlines Boeing’s recovery path following the 2024 Crew Flight Test mishap. The strategy includes hardware modifications to the spacecraft, a re-designation of upcoming flights, and the certification of the United Launch Alliance (ULA) Vulcan Centaur rocket for future human spaceflight missions.
Revised flight schedule and hardware modifications
NASA and Boeing are targeting a launch window of December 2026 or January 2027 for the uncrewed Starliner-1 mission to the International Space Station (ISS). This flight will serve to validate recent thermal modifications and gather performance data before astronauts are placed back on board.
Historically, Starliner-1 was intended to be the first operational crewed mission following the initial test flights. The re-designation reflects the uncrewed nature of the next flight following the 2024 anomalies.
NASA Administrator Jared Isaacman stated that the agency is starting with an uncrewed mission to validate spacecraft improvements and gather necessary flight data.
“From there, we will use what we learn, continue implementing the corrective actions identified by our Program Investigation Team, and complete the testing and certification required for crewed flight,” Isaacman said.
Following the uncrewed test, the agencies are targeting 2028 for the crewed Starliner-2 mission. NASA astronaut Warren “Woody” Hoburg has been assigned as the commander for this flight.
Addressing the 2024 Crew Flight Test anomalies
The revised schedule follows the 2024 Crew Flight Test, which was classified as a Type A mishap. During that mission, the spacecraft experienced significant technical issues with its service module reaction control thrusters.
The official investigation concluded that the thrusters operated outside their engineering qualification due to a combination of thermal environment factors and design features, resulting in a loss of control during the flight. The spacecraft ultimately returned to Earth uncrewed. Astronauts Butch Wilmore and Suni Williams remained safely on the ISS, though their stay was extended by nine months due to the propulsion failures.
In February 2026, the NASA Program Investigation Team released 61 recommendations to address the technical issues. To meet these requirements, Boeing has implemented thermal modifications to the service module and an additional thruster valve design modification to address poppet seal extrusion. The spacecraft will also receive new crew module thrusters, updated batteries, and minor modifications to the parachute system.
Transitioning to the Vulcan Centaur launch vehicle
A critical component of the updated Starliner program is the transition to a new launch vehicle. The spacecraft currently relies on the ULA Atlas V rocket, which is out of production. ULA, a joint venture between Lockheed Martin and Boeing, has only six Atlas V rockets remaining in its inventory. All six are allocated to Boeing for Starliner missions.
To ensure the spacecraft has a launch vehicle for missions beyond the initial contract, NASA, Boeing, and ULA will work to certify the new Vulcan Centaur rocket for human spaceflight. The Vulcan Centaur is currently undergoing its own certification processes to replace the Atlas V.
Maintaining redundancy in low Earth orbit
The recovery of the Starliner program remains a priority for NASA as it seeks to maintain two independent commercial crew transportation providers. Currently, Space Exploration Technologies Corp. (SpaceX) and its Crew Dragon spacecraft serve as the only operational U.S. vehicle capable of ferrying astronauts to the ISS.
To support this goal, NASA and Boeing have modified the Starliner contract to add resources for human spaceflight certification and restore the fifth and sixth Starliner missions, which were previously made options.
According to reporting by Spaceflight Now, Dana Weigel, NASA Manager of the Low Earth Orbit Program, emphasized the necessity of this redundancy. “It’s always been the Commercial Crew Program’s goal to have two crew transportation providers to ensure commercial access to low Earth orbit,” Weigel said.
Weigel also noted in the NASA release that the next flight is a critical step toward full system certification. She stated that the agency will test the propulsion system through targeted demonstration objectives and disciplined operational controls, prioritizing the safety of the space station crew and the public.
AirPro News analysis
The decision to insert an uncrewed flight before resuming crewed operations underscores the severity of the 2024 anomalies and the extensive engineering work required to satisfy the 61 recommendations from the Program Investigation Team. The re-designation of the flights, shifting Starliner-1 from an operational crewed mission to an uncrewed test, reflects a necessary reset of the program’s baseline.
Tying the Starliner program’s long-term viability to the human-rating certification of the Vulcan Centaur introduces parallel development risks. If Vulcan certification encounters delays, Boeing’s ability to fulfill its commercial crew obligations beyond the remaining six Atlas V rockets could be constrained. This scenario would leave NASA reliant on a single provider as the ISS approaches its planned 2030 retirement and the agency looks toward future commercial space stations.
Photo Credit: NASA
Space & Satellites
Firefly Aerospace and Starcloud Plan Lunar AI Computing Mission
Firefly Aerospace and Starcloud agree to deploy an AI computing payload to lunar orbit by 2028 on the Elytra vehicle.

Firefly Aerospace and space data center startup Starcloud have signed a commercial agreement to deploy an artificial intelligence computing payload to lunar orbit as early as 2028. The mission will utilize Firefly’s Elytra orbital vehicle to host Starcloud’s SC-1L system, aiming to process massive volumes of data locally and transmit actionable insights back to Earth.
Announced in a September 30, 2026, press release, the collaboration seeks to validate the core capabilities required for a future lunar data center. By performing high-power computing in deep space, the companies intend to mitigate the severe bandwidth constraints that currently limit lunar data downlinks.
Validating lunar computing infrastructure
The integration of Starcloud’s SC-1L payload onto the Elytra vehicle represents a shift in how space missions handle data. Traditionally, spacecraft transmit raw data back to Earth for processing, a method constrained by limited deep-space network bandwidth. By pairing the SC-1L computing payload with Firefly’s Elytra vehicle and its Solux vision system, the mission will demonstrate how data can be captured, processed, and delivered directly from lunar orbit.
According to Firefly Aerospace, the Elytra vehicle is designed to remain in lunar orbit for five years to enable customer payload and imaging operations.
“We’re proud to collaborate with innovative customers like Starcloud and collectively take another step toward establishing the infrastructure that will power a permanent human and robotic presence at the Moon,” said Ray Allensworth, Vice President of Spacecraft at Firefly Aerospace.
Starcloud Cofounder and Chief Technology Officer Ezra Feilden noted that the company successfully validated its ability to run and train artificial intelligence models on enterprise-grade graphics processing units in low Earth orbit (LEO) before targeting the Moon.
“Space is the future of data centers, and the Moon is the next frontier for that vision,” Feilden said in the release. He added that the Elytra mission will demonstrate high-power computing and prove the ability to process massive volumes of data right where it is generated.
The push for space-based data centers
The agreement highlights a growing commercial sector focused on moving data infrastructure off-planet. Founded in January 2024 and headquartered in Redmond, Washington, Starcloud designs and deploys data centers in space to leverage the vacuum environment for cooling and continuous solar energy for power. This approach is designed to bypass the massive terrestrial energy and land constraints currently facing the artificial intelligence industry.
Starcloud has rapidly accumulated capital to fund this architecture. According to reporting by GeekWire, the company raised a $250 million Series A extension in August 2026, bringing its post-money valuation to $2.3 billion. The funding round included participation from NVIDIA, Cisco Investments, and Benchmark.
The company previously demonstrated its hardware in November 2025 by launching Starcloud-1, a satellite equipped with an NVIDIA H100 GPU, to validate artificial intelligence computing in LEO.
Firefly Aerospace has also been integrating advanced computing into its platforms. In April 2026, the Cedar Park, Texas-based manufacturer announced a collaboration with NVIDIA to embed the Jetson edge artificial intelligence platform on its Elytra spacecraft. That system is designed to process data for Firefly’s Ocula lunar imaging service, reducing the need to downlink raw image files.
Firefly’s expanding lunar campaign
The Starcloud payload will fly on Firefly’s third lunar mission, which is targeted for launch no earlier than 2028. The mission will also carry the company’s Blue Ghost lunar lander to the Moon’s Gruithuisen Domes under the National Aeronautics and Space Administration (NASA) Commercial Lunar Payload Services (CLPS) initiative.
Firefly, a publicly traded company (Nasdaq: FLY), has steadily built its lunar flight heritage. The company successfully landed its Blue Ghost Mission 1 on the Moon in March 2025. Its subsequent flight, Blue Ghost Mission 2, is targeted for no earlier than 2027 and will deploy the first Elytra vehicle to lunar orbit.
The Elytra vehicle serves as a transfer stage, communications relay, and payload host. It is equipped with the Solux vision system, formerly known as Sol3, which enables autonomous navigation and landing in environments without global navigation satellite system coverage.
AirPro News analysis
The agreement between Firefly Aerospace and Starcloud illustrates a critical transition in lunar exploration architecture. As government and commercial entities plan permanent lunar outposts, the communications bottleneck between the Moon and Earth has emerged as a primary operational constraint. By moving the computing power to the data source, operators can transmit only the processed outputs, drastically reducing bandwidth requirements.
Furthermore, Starcloud’s $2.3 billion valuation and its backing by major terrestrial hardware providers like NVIDIA suggest that space-based data centers are no longer viewed purely as aerospace research projects. We are seeing the terrestrial cloud computing industry recognize orbital infrastructure as a viable solution to Earth-bound power and thermal limitations. If the 2028 Elytra mission successfully demonstrates enterprise-grade computing in the high-radiation environment of lunar orbit, it could catalyze a new market for commercial deep-space data hosting.
Photo Credit: Firefly Aerospace
Space & Satellites
SpaceX Starship Reaches Orbit on 14th Test Flight
SpaceX Starship achieved its first orbital insertion on Flight 14, deploying 26 Starlink V3 satellites from 275 km altitude.

This article summarizes reporting by Reuters by Joey Roulette, with additional information from SpaceX, Forbes, and Space.com.
Space Exploration Technologies Corp. (SpaceX) successfully launched its Starship vehicle on its 14th test flight on September 28, 2026, marking the heavy-lift rocket’s first successful insertion into Earth orbit and its first operational payload deployment.
Lifting off from the company’s Starbase facility near Brownsville, Texas, at 12:46 UTC (7:46 a.m. local time), the 40-story vehicle carried 26 Starlink V3 satellites. According to official statements from SpaceX, reaching orbit represents a critical transition for the program from passively safe suborbital developmental testing to operational spaceflight.
Orbital profile and payload deployment
The flight plan called for Starship to reach an altitude of 275 kilometers and complete six Earth orbits. Following a 10-hour orbital voyage, the upper stage was scheduled to splash down in the Pacific Ocean west of Chile.
During the ascent phase, the Super Heavy booster experienced a premature shutdown of a single Raptor engine, according to reporting by Forbes. The vehicle’s flight computer compensated for the loss of thrust, allowing Starship to successfully reach its target orbit without compromising the primary mission objectives.
The mission also served as the inaugural deployment of the company’s next-generation communications satellites. SpaceX noted that deploying the V3 satellites will deliver a payload designed to “dramatically expand connectivity speeds and reliability around the world.”
Regulatory approval and Artemis program implications
Prior to Flight 14, the Federal Aviation Administration (FAA) issued modified launch licensing to permit the orbital attempt. SpaceX had previously restricted Starship to suborbital trajectories to maximize public safety while gathering flight data.
The successful orbital insertion serves as a prerequisite for future lunar missions. The National Aeronautics and Space Administration (NASA) has contracted Starship as the initial crewed lander for the Artemis program, which targets establishing a base near the lunar south pole.
In a press release, SpaceX stated that achieving orbit allows the next phase of developing the vehicle “to be fully and rapidly reusable” to begin.
AirPro News analysis
We view the transition from suborbital testing to orbital payload delivery as a fundamental shift in Starship’s commercial viability. The successful deployment of Starlink V3 satellites demonstrates that the vehicle can now generate internal revenue and build out SpaceX’s proprietary infrastructure while continuing its development toward human spaceflight. The engine anomaly, while minor in the context of a successful orbital insertion, highlights the ongoing reliability challenges inherent in the 33-engine Super Heavy booster design. Consistent engine performance will be a primary focus for regulators before crewed Artemis missions can proceed.
Sources: SpaceX
Photo Credit: SpaceX
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