Space & Satellites
SpaceX Starship V3 Flight 12 Launch Set for May 2026
SpaceX plans Flight 12 of Starship V3 on May 21, 2026, featuring Raptor 3 engines, structural upgrades, and orbital refueling hardware from Starbase Texas.

This article is based on an official press release from SpaceX, supplemented by industry research reports.
SpaceX is set to launch its 12th integrated test flight (Flight 12) of the Starship system on May 21, 2026. This mission marks a major milestone for the aerospace company, as it debuts the third generation of its Starship and Super Heavy launch vehicle, collectively referred to as V3. Launching from the newly constructed Launch Pad 2 at Starbase, Texas, the V3 architecture incorporates years of flight testing to push the boundaries of rapid reusability and deep-space mission readiness.
Powered by the next-generation Raptor 3 engines, the V3 vehicles feature comprehensive structural, propulsion, and avionics overhauls. According to the official SpaceX update, these modifications are designed to increase payload capacity, streamline manufacturing, and introduce the foundational hardware required for orbital refueling.
Super Heavy V3: Structural and Propulsion Upgrades
The Super Heavy booster has undergone significant redesigns to improve its survivability during staging and reentry, while also simplifying its internal plumbing.
Grid Fins and Hot-Staging
SpaceX has reduced the number of grid fins on the Super Heavy booster from four to three. To compensate, each fin is now 50 percent larger and significantly stronger. The company notes that these fins feature a new catch point and have been re-clocked and lowered to reduce heat exposure during hot-staging. Furthermore, the grid fin shaft, actuator, and fixed structures have been relocated inside the booster’s main fuel tank for enhanced protection.
The staging process itself has also been revamped. SpaceX has eliminated the single-use protective interstage in favor of an integrated hot stage.
The forward dome of the booster fuel tank is now directly exposed to the Starship upper stage’s Raptor engines upon ignition.
According to the company, the booster is protected during this phase by its internal fuel tank pressure and a non-structural layer of steel. The actuators connecting the ship and booster now retract after separation to shield them from Raptor exhaust.
Fuel Delivery and Aft Section Simplifications
To feed the booster’s 33 Raptor engines, the cryogenic fuel transfer tube has been completely redesigned. SpaceX states that the new tube is roughly the size of a Falcon 9 first stage, a massive upgrade that allows all 33 engines to start up simultaneously and enables faster, more reliable flip maneuvers.
At the aft end, large individual engine shrouds have been eliminated. Propulsion and avionics systems are now tightly integrated, and shielding has been added between the engines and around the thrust vector control hardware on the inner 13 engines. Additionally, the booster now utilizes two physically separated quick-disconnect points for loading fuel and oxidizer, providing redundancy and reducing mechanical complexity compared to the previous single-connection design.
Starship V3: Preparing for Deep Space and Orbital Refueling
The Starship upper stage features a clean-sheet redesign of its propulsion systems, focusing heavily on long-duration spaceflight and satellite deployment efficiency.
Propulsion and Payload Deployment
The V3 upper stage boasts increased propellant tank volume and an improved reaction control system (RCS) for in-flight steering. SpaceX has also upgraded the aft flap actuation system, moving from two actuators per flap to a single actuator with three motors. This change reduces mass and cost while improving redundancy for return-to-launch-site operations.
For payload delivery, the Starlink PEZ Dispenser mechanism has been enhanced. New actuators and inverters have been installed to increase the deployment speed for each satellite.
The Path to Artemis and Ship-to-Ship Transfer
Crucially, Starship V3 is equipped with the hardware necessary for orbital refueling. According to the SpaceX release, four docking drogues have been added to the leeward side of the vehicle to enable docking with other Starships. This is paired with propellant feed connections specifically designed for ship-to-ship propellant transfer.
To support long-duration flights, the vehicle now includes 100 percent vacuum jacketing coverage of the header feed system, isolation valves for high-pressure gases, and a high-voltage electrically actuated cryogenic recirculation system to manage propellant during extended coasts in space.
Raptor 3 and Flight 12 Mission Profile
Both the Super Heavy booster and the Starship upper stage are powered by the new Raptor 3 engine, which industry research indicates is sleeker, lighter, and more powerful than its predecessors.
Engine Performance
According to industry data, the 33 sea-level Raptor 3 engines on the booster now produce 551,000 pounds of thrust each, up from 507,000 pounds. The vacuum-optimized engines on the upper stage produce 606,000 pounds of thrust. SpaceX achieved a mass reduction of approximately one ton per engine by internally integrating sensors and controllers, completely eliminating the need for external heat shields or shrouds.
Flight 12 Objectives
Flight 12 will be the first launch from Starbase’s Launch Pad 2, which features a redesigned launch mount and a top-deck flame deflector designed to eliminate concrete ablation. Because the V3 architecture is a significant redesign, industry reports indicate that SpaceX will not attempt to catch the Super Heavy booster with the launch tower on this flight. Instead, Booster 19 will target a controlled splashdown in the Gulf of Mexico, while Ship 39 will aim for a splashdown in the Indian Ocean.
The upper stage payload for Flight 12 includes 20 Starlink V3 mass simulators and two modified satellites designed to transmit data regarding the vehicle’s heat shield performance during reentry.
AirPro News analysis
The debut of Starship V3 carries immense strategic and financial weight for SpaceX. The integration of ship-to-ship propellant transfer hardware is a critical milestone for NASA’s Artemis program, which relies on a modified Starship to serve as the Human Landing System (HLS). Without orbital refueling, Starship cannot reach the Moon with meaningful payload mass. Flight 12 proves that SpaceX is actively testing the exact mechanisms NASA requires to return humans to the lunar surface.
Furthermore, this launch occurs against the backdrop of massive financial maneuvering. Industry research and recent financial reports indicate that SpaceX filed for an Initial Public Offering (IPO) on May 20, 2026, just one day prior to this launch. Analysts estimate the IPO could value the company between $1.75 trillion and $2 trillion. The success of the V3 architecture, with its focus on rapid reusability and increased payload capacity, is the technological linchpin required to justify such a historic valuation, as it directly enables the company’s future revenue streams from rapid Starlink deployment and commercial spaceflight.
Frequently Asked Questions
When is SpaceX Flight 12?
Flight 12 is scheduled to launch on May 21, 2026, from Launch Pad 2 at Starbase, Texas.
What are the main upgrades in Starship V3?
Key upgrades include the new Raptor 3 engines, a reduction to three larger grid fins on the booster, an integrated hot stage, massive internal plumbing redesigns, and the addition of docking drogues and cryogenic management systems for orbital refueling.
Will SpaceX attempt to catch the booster on Flight 12?
No. Due to the extensive redesigns of the V3 vehicles, SpaceX will attempt controlled splashdowns for both the booster (Gulf of Mexico) and the upper stage (Indian Ocean) rather than a tower catch.
Sources
Photo Credit: SpaceX
Commercial Space
Dawn Aerospace Aurora Spaceplane to Support Astral Materials
Dawn Aerospace will conduct up to 100 microgravity flights for Astral Materials using the Aurora spaceplane from Oklahoma starting 2028.

Astral Materials has selected Dawn Aerospace to conduct up to 100 microgravity test flights using the Aurora spaceplane to accelerate the development of next-generation semiconductor manufacturing hardware. The campaign, announced on September 1, 2026, will operate out of the Infinity One Oklahoma Spaceport in Burns Flat, Oklahoma.
In a press release issued on September 1, 2026, Dawn Aerospace detailed the agreement, which leverages the rapid reusability of the Aurora spaceplane to provide high-cadence microgravity testing. Astral Materials plans to use these flights to refine its microgravity furnace hardware. The system is designed to reduce gravity-driven defects, such as convection and sedimentation, during the growth of semiconductor crystals. These materials have potential applications in photonics, quantum computing, and high-power electronics.
Rapid iteration in suborbital flight
The Aurora spaceplane is designed to reach a top speed of Mach 3.7 and a maximum altitude of 100 kilometers, providing payloads with up to 127 seconds of microgravity per flight. According to the manufacturers, the vehicle supports a four-hour turnaround time between flights. This operational tempo allows researchers to conduct multiple tests within a single day.
Astral Materials Chief Technology Officer Jiya Janowitz highlighted the value of this cadence for hardware development, noting that payloads can be recovered in approximately 45 minutes.
“We can test an idea, recover it in around 45 minutes, make an adjustment on the ground and test it again later that same day. That kind of rapid iteration has never existed for microgravity manufacturing, and it fundamentally changes how quickly we can develop our technology.”
Astral Materials Chief Executive Officer Dr. Jessica Frick stated that the Aurora spaceplane provides a practical pathway to validate manufacturing systems before scaling to commercial production in orbit, where longer-duration microgravity is available.
Commercial operations and Oklahoma infrastructure
Commercial flight operations for the Astral Materials campaign are slated to begin in 2028 at the Infinity One Oklahoma Spaceport. The Oklahoma Space Industry Development Authority (OSIDA) welcomed the partnerships in an official social media statement on September 1, 2026, emphasizing the state’s focus on attracting high-cadence commercial spaceflight operations.
This agreement follows an April 16, 2026, announcement in which Dawn Aerospace and OSIDA launched the Suborbital Spaceplane Challenge. That initiative offered United States researchers up to 25 flights aboard the Aurora spaceplane to stimulate utilization of the Oklahoma facility.
Dawn Aerospace Chief Executive Officer Stefan Powell noted that routine access is required to transition microgravity manufacturing from a scientific curiosity to a viable industry, comparing the need for rapid experimentation to previous industrial revolutions.
AirPro News analysis
The partnership between Dawn Aerospace and Astral Materials highlights a critical gap in the current space manufacturing ecosystem. While orbital platforms like the International Space Station offer long-duration microgravity, the cost and lead times associated with orbital launches prohibit the rapid trial-and-error necessary for hardware development. Suborbital spaceplanes like Aurora serve as an essential stepping stone. By providing brief but frequent periods of microgravity, these vehicles allow companies to validate complex systems before committing to expensive orbital deployments.
We note a minor discrepancy in Dawn Aerospace’s published materials regarding the commencement of operations at the Oklahoma site. The main announcement targets 2028 for commercial flights, while the company’s boilerplate text references 2027. Regardless of the exact start date, establishing a reliable suborbital testbed will be vital for the commercial viability of in-space manufacturing applications.
Sources: Dawn Aerospace
Photo Credit: Dawn Aerospace
Space & Satellites
NASA X-59 Completes 25th Flight, Enters Acoustic Validation
NASA’s X-59 quiet supersonic aircraft finished initial envelope expansion and moves to acoustic validation for the Quesst mission.

The National Aeronautics and Space Administration (NASA) X-59 quiet supersonic experimental aircraft completed its 25th test flights on August 21, 2026, validating aerodynamic models and clearing the way for the program’s critical acoustic validation phase.
In a press release issued on September 4, 2026, the agency confirmed the milestone marks the conclusion of initial envelope expansion for the centerpiece of the Quesst mission. The X-59 is designed to cruise faster than the speed of sound while producing a muted sonic thump rather than a disruptive sonic boom. Data collected during the upcoming flight phases will be shared with U.S. and international regulators to inform new noise thresholds, which could eventually lead to the lifting of the ban on commercial supersonic flight over land.
Flight envelope expansion and performance
During the 72-minute test flight originating from NASA’s Armstrong Flight Research Center in Edwards, California, the X-59 reached a speed of Mach 1.2 and an altitude of 49,000 feet. The flight followed a rapid envelope expansion campaign over the summer. The aircraft achieved its first supersonic flight on June 5, 2026, and reached its target cruise conditions of Mach 1.4 (924 mph) and 55,000 feet on June 12, 2026.
NASA Test Pilot Nils Larson described the test flights as “exciting but uneventful,” noting that the aircraft “likes to fly fast.”
The initial 25 flights focused on proving the airworthiness and baseline performance of the unique airframe, which was built by prime contractor Lockheed Martin and powered by a General Electric GE-F414 engine.
“Through our ongoing flight tests with the X-59, we’ve gained invaluable insights into both the aircraft’s performance and the unique challenges of the aircraft design,” said Cathy Bahm, Project Manager for the NASA Low Boom Flight Demonstrator project. “Each test point has validated our models and predictions, and it has strengthened our confidence in the aircraft’s performance.”
Transitioning to acoustic validation
With baseline performance established, the Quesst mission will now shift focus to measuring the sound produced by the aircraft. During the acoustic validation phase scheduled for later this year, NASA will utilize ground- and air-based tools to measure the sonic thumps generated by the X-59 at supersonic cruise speeds.
The objective is to verify that the physical aircraft meets the low-boom design targets established by computer modeling.
“This is the phase we’ve been working toward,” said Larry Cliatt, Acoustic Validation Technical Lead for the NASA Quesst mission. “Building and flying a brand-new aircraft is an extraordinary accomplishment, but the next phase is where the real research begins.”
Cliatt noted that the acoustic validation campaign will be complex and demanding. The tools and methods used to design the X-59 will be put to the test, potentially forming the foundation for future commercial supersonic aircraft development.
AirPro News analysis
The successful completion of the X-59’s initial flight test phase marks a pivotal transition for the Quesst mission. We view the upcoming acoustic validation phase as the true test of the program’s value to the broader aerospace industry. While building a supersonic demonstrator is a significant engineering feat, the X-59 is fundamentally a data-gathering tool. If the acoustic measurements match NASA’s models, the agency will possess the empirical evidence required by the Federal Aviation Administration (FAA) and the International Civil Aviation Organization (ICAO) to establish noise-based certification standards. Establishing these standards is the mandatory first step toward opening overland routes to a new generation of commercial supersonic aircraft.
Sources: NASA Quesst Blog
Photo Credit: NASA
Space & Satellites
NASA Awards Blue Origin $700M Mars Telecommunications Contract
NASA selected Blue Origin to build the Mars Telecommunications Orbiter on its Blue Ring platform for up to $700 million.

The National Aeronautics and Space Administration (NASA) has awarded Blue Origin a firm-fixed-price contract valued at up to $700 million to develop the Mars Telecommunications Network (MTN). The agreement, finalized on September 1, 2026, tasks the aerospace manufacturer with delivering a dedicated Mars Telecommunications Orbiter (MTO) by December 31, 2028, to replace the agency’s aging interplanetary relay infrastructure.
In a press release issued on September 2, 2026, Blue Origin confirmed the orbiter will be built on its Blue Ring spacecraft platform. The new network is designed to provide continuous, high-speed communications for future robotic and crewed missions under NASA’s broader Moon to Mars exploration strategy. The Space Communications and Navigation (SCaN) program expects the MTO to become operational in Mars orbit by 2030.
Replacing legacy Mars infrastructure
NASA’s current communications relay at the Red Planet relies heavily on legacy spacecraft, specifically the Mars Odyssey launched in 2001 and the Mars Reconnaissance Orbiter launched in 2005. The MTN contract aims to establish a modern, high-bandwidth foundation for sustained exploration in the coming decades. NASA officials stated the award marks a milestone in the agency’s strategy to expand communications and navigation services beyond Earth and the moon.
The competition for the MTN contract, initiated via a request for proposal in May 2026, was restricted by the July 2025 budget-reconciliation package. Bidding was limited to the eight companies that participated in the 2024 and 2025 commercial Mars sample return studies. Funding for the project was authorized by Congress through the Working Families Tax Cut Act.
Blue Ring platform and technical specifications
Blue Origin will utilize its Blue Ring spacecraft architecture for the MTO. The platform features hybrid solar electric and chemical (SEP-Chem) propulsion, enabling it to deploy multiple payloads and establish infrastructure ahead of human arrival. The spacecraft can carry a payload exceeding 1,000 kilograms to Mars orbit.
Production of the MTO is underway at Blue Origin’s dedicated manufacturing facility in Huntsville, Alabama. The facility is currently sized to produce four Blue Ring vehicles per year. The MTO will also feature a 20-kilogram dedicated payload capacity available for science instruments or deployable cubesats.
“MTO is the backbone of America’s Mars exploration program for the next decade and beyond and will provide the reliable communications capacity that will keep future robotic and human missions connected to each other and to Earth,” said Tory Bruno, President of Blue National Security.
Bruno added that the contract award validates the company’s development of the Blue Ring platform, noting that the hardware is ready for this specific mission profile.
AirPro News analysis
We view this $700 million contract as a critical validation of Blue Origin’s Blue Ring spacecraft program and its broader pivot toward deep space infrastructure. By securing a foundational role in the Mars Telecommunications Network, Blue Origin positions itself as an essential utility provider for all future NASA Mars operations. The aggressive delivery timeline of December 31, 2028, will test the production capabilities of the Huntsville facility, but successfully deploying the MTO would cement the company’s status as a primary contractor for interplanetary logistics.
Sources: Blue Origin
Photo Credit: Blue Origin
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