Friday, September 25, 2026

NASA’s SpaceX Crew-14 in Preflight Training | International Space Station

NASA’s SpaceX Crew-14 in Preflight Training | International Space Station

NASA’s SpaceX Crew-14 crew members are pictured during preflight training at SpaceX’s facility in Hawthorne, California. From left are mission specialist Arutyun Kiviryan of Roscosmos (Russia), pilot Chris Birch and commander Kayla Barron, both of NASA, and mission specialist Makoto Suwa of Japan Aerospace Exploration Agency (JAXA).
The official emblem for NASA's SpaceX Crew-14 mission to the International Space Station

Four crew members from three space agencies will launch to the International Space Station (ISS) no earlier than spring 2027 for a long-duration science expedition as part of NASA’s SpaceX Crew-14 mission.

NASA astronauts Kayla Barron and Chris Birch will serve as spacecraft commander and pilot, with Japan Aerospace Exploration Agency (JAXA) astronaut Makoto Suwa, and Roscosmos cosmonaut Arutyun Kiviryan of Russia as mission specialists. After docking, Crew-14 will join the space station’s Expedition 75/76.

This mission is the 14th commercial crew rotation with SpaceX under NASA’s Low Earth Orbit Program. The crew will conduct scientific investigations and technology demonstrations to help prepare humans for future exploration missions to the Moon and Mars and to benefit people on Earth.

This will be Barron’s second flight to the space station. She was selected as a NASA astronaut in 2017. Barron earned a bachelor’s degree in systems engineering from the U.S. Naval Academy in Annapolis, Maryland and a master’s degree in nuclear engineering from the University of Cambridge in England. A commander in the U.S. Navy, Barron earned her submarine warfare officer qualification, deploying three times aboard the USS Maine. She first launched to the space station in 2021 aboard NASA’s SpaceX Crew-3 mission, spending a total of 177 days in space across space station Expeditions 66/67. She completed two spacewalks and served as lead robotics operator for another. Most recently, Barron supported the development of new technologies and operational concepts for NASA’s Artemis program.

Barron's biography: https://www.nasa.gov/humans-in-space/astronauts/kayla-barron/

Selected as a NASA astronaut in 2021, Birch graduated from the University of Arizona in Tucson with degrees in mathematics and biochemistry and molecular biophysics. She earned a doctorate in biological engineering from the Massachusetts Institute of Technology, and later taught bioengineering at the University of California, Riverside, and scientific writing and communication at the California Institute of Technology in Pasadena. Birch competed as a decorated track cyclist on the U.S. National Team and was named to the Olympic Long Team for the 2020 Tokyo Games. She has served as a capsule communicator, supporting crews aboard the space station and during the Artemis II mission. Birch was crew lead for Expedition 72, working with flight control teams to help manage daily operations, and served as a crew representative for NASA’s Orion Program, supporting Artemis II mission development and operations. This will be her first spaceflight.

The Crew-14 mission also is the first spaceflight assignment for Suwa. Before JAXA selected him as an astronaut candidate in 2023, Suwa spent nearly a decade with the World Bank Group. Previously, he served in Rwanda as a Japan Overseas Cooperation Volunteer before joining the United Nations World Meteorological Organization. Suwa holds a doctorate in geosciences from Princeton University and completed basic training to become certified as an astronaut in 2024.

Suwa's biography: https://humans-in-space.jaxa.jp/en/astronaut/suwa-makoto/

This mission will be Kiviryan’s first trip to the space station. He graduated from Saint Petersburg Suvorov Military School in 2010 and later studied at the Baltic State Technical University. He graduated in 2015 as an engineer specializing in rocket science and completed training in the operation of computer-controlled machines. Kiviryan was selected for the Gagarin Research and Test Cosmonaut Training Center Cosmonaut Corps in 2021 and has served as a test cosmonaut since 2023.

For more than 25 years, people have lived and worked continuously aboard the International Space Station, advancing scientific knowledge and making research breakthroughs that are not possible on Earth. The space station helps NASA understand and overcome the challenges of human spaceflight, expand commercial opportunities in low Earth orbit, and build on the foundation for long-duration missions to the Moon, as part of the Artemis program, and to Mars.

Learn more about International Space Station research and operations at:
https://www.nasa.gov/station

NASA's SpaceX Crew-14 patch is a stellar tapestry of stewardship, continuity, and unity. Curved in the ancient silhouette of the ouroboros, the dragon creates a living cupola, framing the dynamic world below. It symbolizes the continuous passing of the baton between International Space Station (ISS) crews and the unbroken watch stood by the teams below. Divided by the orbital terminator, Earth is revealed in breathtaking contrast: one half rests in darkness, lit by city lights in glowing tribute to human ingenuity; the other basks in sunlight, highlighting Earth's natural beauty. The nations represented by the crew are united on a single canvas: while our origins are distinct, our destination in the cosmos is shared. Cradled within the dragon's protective form rest the Earth, the ISS, and all humanity. We stand the cosmic watch, safeguarding our home planet and each other, as we press ever onward into the infinite frontier.


Image Credits: SpaceX, NASA's Johnson Space Center
Image Dates: July 24, 2026 & July 15, 2026

#NASA #Space #Science #Astronomy #ISS #Earth #Astronauts #KaylaBarron #ChrisBirch #MakotoSuwa #JAXA #Japan #日本 #Cosmonauts #ArutyunKiviryan #Russia #Россия #Roscosmos #Роскосмос #HumanSpaceflight #Expedition75 #Expedition76 #InternationalCooperation #UnitedStates #STEM #Education

Fade through of galaxy cluster images | Hubble Space Telescope

Fade through of galaxy cluster images | Hubble Space Telescope

This video fades through NASA/European Space Agency Hubble Space Telescope images of six galaxy clusters. The clusters were observed in a study of how dark matter in clusters of galaxies behaves when the clusters collide. Seventy-two large cluster collisions were studied in total.

By finding that dark matter interacts even less than we thought, the team have successfully narrowed down the properties of dark matter.

The clusters shown here are, in order of appearance: MACS J0416.1–2403, MACS J0152.5-2852, MACS J0717.5+3745, Abell 370, Abell 2744 and ZwCl 1358+62


Credit: NASA, ESA, D. Harvey (École Polytechnique Fédérale de Lausanne, Switzerland), R. Massey (Durham University, UK), the Hubble SM4 ERO Team, ST-ECF, ESO, D. Coe (STScI), J. Merten (Heidelberg/Bologna), HST Frontier Fields, Harald Ebeling(University of Hawaii at Manoa), Jean-Paul Kneib (LAM)and Johan Richard (Caltech, USA)
Release Date: March 26, 2015

#NASA #ESA #Astronomy #Space #Science #Hubble #Galaxies #GalaxyClusters #MACSJ0717 #MACSJ0416 #MACSJ0152 #Abell370 #Abell2744 #ZwCl135862 #DarkMatter
#GravitationalLenses #Cosmos #Universe #EarlyUniverse #Cosmology #Astrophysics #HubbleSpaceTelescope #HST #NASAGoddard #STScI #UnitedStates #Europe #STEM #Education #HD #Video

Full Dome view: Galaxy Cluster MACS J0717 in Auriga | Hubble Space Telescope

Full Dome view: Galaxy Cluster MACS J0717 in Auriga | Hubble Space Telescope

This full dome video shows the galaxy cluster MACSJ0717.5+3745, observed by the NASA/European Space Agency Hubble Space Telescope as part of the Frontier Fields program. Using the effect of gravitational lensing caused by the mass of the cluster, this program allows astronomers to study some of the earliest galaxies in the Universe.

MACS J0717 is located about 5.4 billion light-years away from Earth, in the constellation of Auriga (The Charioteer). It is one of the most complex galaxy clusters known; rather than being a single cluster, it is actually the result of four galaxy clusters colliding.

Due to the huge mass of the cluster it is bending the light of background objects, acting as a magnifying lens. It is one of the most massive galaxy clusters known, and it is also the largest known gravitational lens. Of all of the galaxy clusters known and measured, MACS J0717 lenses the largest area of the sky.

Note: The full dome video display format is designed for projection systems in planetariums.


Video Credit: Hubble/T. Matsopoulos
Duration: 20 seconds
Release Date: Oct. 22, 2015

#NASA #ESA #Astronomy #Space #Science #Hubble #Galaxies #GalaxyClusters #InteractingClusters #MACSJ0717 #MACSJ071753745 #GravitationalLenses #AurigaConstellation #Cosmos #Universe #EarlyUniverse #Cosmology #Astrophysics #HubbleSpaceTelescope #HST #NASAGoddard #STScI #UnitedStates #Europe #STEM #Education #HD #Video

Distant Galaxy Cluster MACSJ0717.5+3745 in Auriga | Hubble Space Telescope

Distant Galaxy Cluster MACSJ0717.5+3745 in Auriga | Hubble Space Telescope

This image from the NASA/European Space Agency Hubble Space Telescope shows the galaxy cluster MACSJ0717.5+3745. This was one of six studied by the Hubble Frontier Fields program that together have produced one of the deepest images of gravitational lensing made to date.

MACS J0717 is located about 5.4 billion light-years away from Earth, in the constellation of Auriga (The Charioteer). It is one of the most complex galaxy clusters known; rather than being a single cluster, it is actually the result of four galaxy clusters colliding.

Due to the huge mass of the cluster it is bending the light of background objects, acting as a magnifying lens. It is one of the most massive galaxy clusters known, and it is also the largest known gravitational lens. Of all of the galaxy clusters known and measured, MACS J0717 lenses the largest area of the sky.


Credit: NASA, ESA and the HST Frontier Fields team (STScI)
Release Date: Oct. 22, 2015


#NASA #ESA #Astronomy #Space #Science #Hubble #Galaxies #GalaxyClusters #InteractingClusters #MACSJ0717 #MACSJ071753745 #GravitationalLenses #AurigaConstellation #Cosmos #Universe #EarlyUniverse #Cosmology #Astrophysics #HubbleSpaceTelescope #HST #NASAGoddard #STScI #UnitedStates #Europe #STEM #Education

'Disco Lights' from Distant Galaxy Cluster MACS J0717 in Auriga | Hubble

'Disco Lights' from Distant Galaxy Cluster MACS J0717 in Auriga | Hubble 

One of the Frontier Fields targets is shown in this image: MACS J0717.5+3745, or MACS J0717 for short. MACS J0717 is located about 5.4 billion light-years away from Earth, in the constellation of Auriga (The Charioteer). It is one of the most complex galaxy clusters known; rather than being a single cluster, it is actually the result of four galaxy clusters colliding.

Disco is a genre of dance music and a subculture that emerged in the late 1960s from the United States' urban nightlife scene. Its sound is typified by four-on-the-floor beats, syncopated basslines, string sections, brass and horns, electric pianos, synthesizers, and electric rhythm guitars. 

Disco lights are specialized fixtures that add rhythmic light shows to entertainment venues. They originated in the discotheques of the 1970s and have evolved into a fully-fledged tool in event production. Disco lights are sound-activated, remote-controlled, and can feature effect modes such as strobe, rotating, and color-fade effects

In October 2013 Hubble kicked off the Frontier Fields program, a three-year series of observations aiming to produce the deepest ever views of the Universe. The project’s targets comprise six massive galaxy clusters, enormous collections of hundreds or even thousands of galaxies. These structures are the largest gravitationally-bound objects in the cosmos.

This image is a combination of observations from the NASA/European Space Agency Hubble Space Telescope (showing the galaxies and stars), the NASA Chandra X-ray Observatory (diffuse emission in blue), and the U.S. National Radio Astronomy Observatory (NRAO) Jansky Very Large Array (diffuse emission in pink). The Hubble data were collected as part of the Frontier Fields program mentioned above.

Together, the three datasets produce a unique new view of MACS J0717. The Hubble data reveal galaxies within the cluster and far behind it, and the Chandra observations show bright pockets of scorching gas—heated to millions of degrees. The data collected by the Jansky Very Large Array trace the radio emission within the cluster, enormous shock waves—similar to sonic booms—that were triggered by the violent merger.


Credits: NASA, ESA, CXC, NRAO/AUI/NSF, STScI, and R. van Weeren (Harvard-Smithsonian Center for Astrophysics)
Acknowledgment: NASA, ESA, and J. Lotz (STScI), and the HFF team
Release Date: March 14, 2016


#NASA #ESA #Astronomy #Space #Science #Hubble #Galaxies #GalaxyClusters #InteractingClusters #MACSJ0717 #MACSJ071753745 #AurigaConstellation #Cosmos #Universe #EarlyUniverse #Cosmology #Astrophysics #HubbleSpaceTelescope #HST #SpaceTelescopes #NASAChandra #XrayAstronomy #NRAO #VLA #RadioAstronomy #NASAGoddard #STScI #UnitedStates #Europe #STEM #Education

Thursday, September 24, 2026

ESO 576-69 in Virgo: The messy result of a galactic collision | Hubble

ESO 576-69 in Virgo: The messy result of a galactic collision | Hubble


This image from the NASA/European Space Agency Hubble Space Telescope captures an ongoing cosmic collision between two galaxies—a spiral galaxy is in the process of colliding with a lenticular galaxy. The collision looks almost as if it is popping out of the screen in 3D with parts of the spiral arms clearly embracing the lenticular galaxy’s bulge. A lenticular, meaning "lens-shaped," galaxy occupies an intermediate position between elliptical and spiral galaxies in the Hubble Classification scheme.

The image also reveals further evidence of the collision. There is a bright stream of stars coming out from the merging galaxies, extending out towards the right of the image. The bright spot in the middle of the plume, known as ESO 576-69, is what makes this image unique. This spot is believed to be the nucleus of the former spiral galaxy that was ejected from the system during the collision and is now being shredded by tidal forces to produce the visible stellar stream.


Credit: ESA/Hubble & NASA
Acknowledgement: Luca Limatola
Release Date: May 27, 2013

#NASA #ESA #Astronomy #Space #Science #Hubble #Galaxies #ESO57669 #InteractingGalaxies #SpiralGalaxies #LenticularGalaxy #AGN #VirgoConstellation #Cosmos #Universe #HubbleSpaceTelescope #HST #NASAGoddard #STScI #UnitedStates #Europe #STEM #Education

SpaceX Starship Launch Rehearsal: Pre-orbital Flight#14 | Starbase Texas

SpaceX Starship Launch Rehearsal: Pre-orbital Flight#14 | Starbase Texas




SpaceX is preparing to go to orbit with Starship on Test Flight 14.

Follow updates and watch the event here → https://www.spacex.com/launches/starship-flight-14

The upcoming flight is planned to be the first to send Starship into orbit around Earth. Flight tests until this point have intentionally flown passively safe suborbital trajectories to maximize public safety while allowing for maximum learning. By going to orbit, the next phase of developing Starship to be fully and rapidly reusable can begin.

This will also mark the first time we plan to deploy Starlink V3 satellites into the constellation, delivering a payload that will dramatically expand connectivity speeds and reliability around the world.

Starship’s initial orbital mission is expected to fly at an altitude approximately 275 km above Earth and complete approximately six orbits around the planet over the course of a nearly 10-hour flight, with splashdown targeted in the Pacific Ocean to the west of Chile.

A live webcast of the flight will begin about 30 minutes before liftoff. Coverage is planned to continue through splashdown with the potential for hours of live views from Starship as it orbits Earth. As is the case with all developmental testing, the schedule is dynamic and likely to change, so be sure to stay tuned for updates.

The booster’s primary test objective on Flight 14 will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of Mexico. There have been several modifications to hardware and software to address issues seen on the previous flight.

After stage separation and flip on Flight 13, the Super Heavy booster was able to use all 33 engines on its boostback burn for the first time. In the terminal phase of the burn, the three center engines showed signs of ice clogging that triggered an early end to the maneuver. The booster went on to attempt a landing burn, with 8 of the 13 planned engines reigniting before the booster made a hard splashdown in the Gulf. The Super Heavy on this upcoming flight has hardware modifications to improve filtering to the engines and software changes to enhance relight reliability.

The Starship upper stage’s primary objectives include the first orbital insertion maneuver, the deployment of 26 Starlink V3 satellites, a deorbit burn using a single Raptor engine while in space, and a controlled reentry, descent, and splashdown in the Pacific Ocean. Starship will only execute a burn to enter orbit after the flight control team has ensured there is sufficient redundancy on hardware critical to doing the subsequent deorbit burn at the end of the mission.

Starship will deliver 26 Starlink V3 satellites to orbit for the first time. They aim to greatly expand the network's capacity and user speeds. Each Starlink V3 satellite will add 1 Tbps of capacity to the constellation, for a total of 26 Tbps of capacity added on this mission alone. That’s ~10x the capacity compared to a single launch of V2 mini Starlink satellites on Falcon 9.

After deploying from Starship, the Starlink V3 satellites will unfold their antennas and deploy their solar arrays and make initial contact with the ground and the rest of the Starlink constellation via radio frequency and laser links. The satellites will then begin raising their orbits with their onboard thrusters. Following their on-orbit checkouts, the satellites should begin serving customers as soon as a few weeks after launch.

Three of the satellites have been modified with a suite of cameras to scan Starship’s heatshield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heatshield readiness for return to launch site on future missions.

Several upgrades and experiments related to Starship’s heatshield will also be tested, with some improvements derived directly from data gathered from the Flight 13 Starship as it floated in the Indian Ocean. They include additional retention mechanisms added to tiles in areas deemed to be at highest risk of falling off during ascent, addressing recently discovered areas that offer flow paths behind tiles for plasma, and flying multiple areas with a curved tile design that has shown the ability to reduce heating in the gaps between tiles. And finally, two tiles recovered from Ship 40 are planned to be reflown on Ship 41, marking the first tile reuse for Starship.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.


Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Image Credit: SpaceX
Release Date: Sept. 24, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest14 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education

SpaceX Starship Launch Rehearsal: Pre-orbital Flight#14 | Starbase Texas

SpaceX Starship Launch Rehearsal: Pre-orbital Flight#14 | Starbase Texas


SpaceX is preparing to go to orbit with Starship on Test Flight 14.

Follow updates and watch the event here → https://www.spacex.com/launches/starship-flight-14

The upcoming flight is planned to be the first to send Starship into orbit around Earth. Flight tests until this point have intentionally flown passively safe suborbital trajectories to maximize public safety while allowing for maximum learning. By going to orbit, the next phase of developing Starship to be fully and rapidly reusable can begin.

This will also mark the first time we plan to deploy Starlink V3 satellites into the constellation, delivering a payload that will dramatically expand connectivity speeds and reliability around the world.

Starship’s initial orbital mission is expected to fly at an altitude approximately 275 km above Earth and complete approximately six orbits around the planet over the course of a nearly 10-hour flight, with splashdown targeted in the Pacific Ocean to the west of Chile.

A live webcast of the flight will begin about 30 minutes before liftoff. Coverage is planned to continue through splashdown with the potential for hours of live views from Starship as it orbits Earth. As is the case with all developmental testing, the schedule is dynamic and likely to change, so be sure to stay tuned for updates.

The booster’s primary test objective on Flight 14 will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of Mexico. There have been several modifications to hardware and software to address issues seen on the previous flight.

After stage separation and flip on Flight 13, the Super Heavy booster was able to use all 33 engines on its boostback burn for the first time. In the terminal phase of the burn, the three center engines showed signs of ice clogging that triggered an early end to the maneuver. The booster went on to attempt a landing burn, with 8 of the 13 planned engines reigniting before the booster made a hard splashdown in the Gulf. The Super Heavy on this upcoming flight has hardware modifications to improve filtering to the engines and software changes to enhance relight reliability.

The Starship upper stage’s primary objectives include the first orbital insertion maneuver, the deployment of 26 Starlink V3 satellites, a deorbit burn using a single Raptor engine while in space, and a controlled reentry, descent, and splashdown in the Pacific Ocean. Starship will only execute a burn to enter orbit after the flight control team has ensured there is sufficient redundancy on hardware critical to doing the subsequent deorbit burn at the end of the mission.

Starship will deliver 26 Starlink V3 satellites to orbit for the first time. They aim to greatly expand the network's capacity and user speeds. Each Starlink V3 satellite will add 1 Tbps of capacity to the constellation, for a total of 26 Tbps of capacity added on this mission alone. That’s ~10x the capacity compared to a single launch of V2 mini Starlink satellites on Falcon 9.

After deploying from Starship, the Starlink V3 satellites will unfold their antennas and deploy their solar arrays and make initial contact with the ground and the rest of the Starlink constellation via radio frequency and laser links. The satellites will then begin raising their orbits with their onboard thrusters. Following their on-orbit checkouts, the satellites should begin serving customers as soon as a few weeks after launch.

Three of the satellites have been modified with a suite of cameras to scan Starship’s heatshield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heatshield readiness for return to launch site on future missions.

Several upgrades and experiments related to Starship’s heatshield will also be tested, with some improvements derived directly from data gathered from the Flight 13 Starship as it floated in the Indian Ocean. They include additional retention mechanisms added to tiles in areas deemed to be at highest risk of falling off during ascent, addressing recently discovered areas that offer flow paths behind tiles for plasma, and flying multiple areas with a curved tile design that has shown the ability to reduce heating in the gaps between tiles. And finally, two tiles recovered from Ship 40 are planned to be reflown on Ship 41, marking the first tile reuse for Starship.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.


Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Video Credit: SpaceX
Duration: 14 seconds
Release Date: Sept. 24, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest14 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education #HD #Video

The Remnants of Five Supernovae in Auriga

The Remnants of Five Supernovae in Auriga

The 'ghosts' of five supernovas haunt this extraordinary image. It was acquired at Oukaïmeden Observatory in Morocco with approximately 200 hours of observations and shows a large patch of the sky, equivalent to the area of one thousand full moons tiled together, in the constellation of Auriga (the Charioteer). From left to right, the five supernova remnants visible across the field are G181.1+9.5, G182.4+4.3, G179.0+2.6, G180.0−1.7 (Sh2-240, the Spaghetti Nebula), and G178.2−4.2. 

As each explosion expanded into space, it created a growing shell of shocked gas and delicate filamentary structures shown in red (hydrogen) and blue (oxygen), respectively. These ancient stellar explosions happened independently. They are at a range of distances up to about several thousands of light-years away from Earth and have estimated ages up to tens of thousands of years old. Early humans may have witnessed them as bright new stars, fading over weeks or months.


Image Credit & Copyright: Stephane Vetter, Yann Sainty
Yann's website: 
https://app.astrobin.com/u/yann_sainty
Text: Cecilia Chirenti (NASA GSFC, UMCP, CRESST II)
Release Date: Sept. 24, 2026

#NASA #Space #Science #Astronomy #Stars #Supernovae #Nebulae #Sh2240 #Messier37 #TadpoleNebula #AurigaConstellation #MilkyWayGalaxy #Cosmos #Universe #Astrophotography #StephaneVetter #YannSainty #Astrophotographers #OukaïmedenObservatory #Morocco #NASAGoddard #UMCP #CRESSTII #UnitedStates #STEM #Education #APoD

Space Food at NASA

Space Food at NASA

Through initiatives such as the NASA's Deep Space Food Challenge, the agency seeks to advance the future of astronaut meals on the Moon, Mars, and beyond. Explore how teams at NASA's Ames Research Center, Kennedy Space Center, and Johnson Space Center work together to research and implement space food systems. 


Learn more about NASA’s Artemis program:

Video Credit: National Aeronautics and Space Administration (NASA)
Duration: 6 minutes
Release Date: Sept. 24, 2026

#NASA #Space #Science #Planets #Earth #Moon #ArtemisProgram #Astronauts #SpaceFood #DeepSpaceFoodChallenge #HumanSpaceflight #SolarSystem #LunarExploration #Mars #MarsExploration #NASAAmes #NASAJohnson #NASAKennedy #UnitedStates #STEM #Education #HD #Video

China Long March 8A Y11 Rocket Launch of GuoWang Constellation Satellites

China Long March 8A Y11 Rocket Launch of GuoWang Constellation Satellites




A Long March-8A Y11 carrier rocket lifted off at 9:32 p.m. Beijing Time on September 23, 2026, from the Hainan commercial spacecraft launch site, sending the 26th group of low-orbit Internet satellites (SatNet LEO Group 26) into their designated orbit. Nine more GuoWang connectivity constellation spacecraft are in Earth orbit through this China Academy of Launch Vehicle Technology mission.

The spacecraft group was manufactured at the state-owned China Academy of Space Technology (CAST). With today’s mission, 213 GuoWang spacecraft are in their operational orbits. This year, it is planned that 3101 satellites will be deployed, followed by 900 in 2027, and 3,600 every year beginning in 2028 to sustain and grow the constellation. In the 2030s, up to 13,000 satellites could be in operational orbits.

The GuoWang constellation is operated by China Satellite Network Group, a state-owned enterprise and backed by the Chinese government. China Satellite Network Group plans to provide worldwide connectivity services; for now, China-focused services are the immediate priority.

GuoWang satellites launched atop of the Long March 8A and the Long March 12 use the mega-constellations’ small satellite platform, weighing about 695 kilograms each. A large satellite platform, around thirty percent bigger and weighing up to 1,000 kilograms, is launched via the Long March 5B and Long March 6A. Both platforms utilize electric propulsion systems to maneuver in orbit, powered by two solar panels.

This mission was the 11th launch of a Long March 8A vehicle, the 18th launch of the Long March 8 series, and the 669th launch of the Long March launch vehicle series. This was also the 69th launch from China in 2026.


Image Credit: China Aerospace Science and Technology Corporation (CASC), SpaceLens
Text Credit: Jack C.
Date: Sept. 23, 2026

#NASA #Space #Science #Earth #Satellites #SatelliteConstellations #SatNetLEOGroup24 #GuoWangConstellation #国网 #ChinaSatelliteNetworkGroup #China #中国 #RocketLaunches #LongMarch8 #长征八号运载火箭 #LongMarch8AY11 #MediumLiftRockets #CAST #CALT #CASC #SpaceTechnology #Spaceports #Wenchang #Hainan #STEM #Education

China Long March 8A Y11 Rocket Launch of GuoWang Constellation Satellites

China Long March 8A Y11 Rocket Launch of GuoWang Constellation Satellites

A Long March-8A Y11 carrier rocket lifted off at 9:32 p.m. Beijing Time on September 23, 2026, from the Hainan commercial spacecraft launch site, sending the 26th group of low-orbit Internet satellites (SatNet LEO Group 26) into their designated orbit. Nine more GuoWang connectivity constellation spacecraft are in Earth orbit through this China Academy of Launch Vehicle Technology mission.

The spacecraft group was manufactured at the state-owned China Academy of Space Technology (CAST). With today’s mission, 213 GuoWang spacecraft are in their operational orbits. This year, it is planned that 3101 satellites will be deployed, followed by 900 in 2027, and 3,600 every year beginning in 2028 to sustain and grow the constellation. In the 2030s, up to 13,000 satellites could be in operational orbits.

The GuoWang constellation is operated by China Satellite Network Group, a state-owned enterprise and backed by the Chinese government. China Satellite Network Group plans to provide worldwide connectivity services; for now, China-focused services are the immediate priority.

GuoWang satellites launched atop of the Long March 8A and the Long March 12 use the mega-constellations’ small satellite platform, weighing about 695 kilograms each. A large satellite platform, around thirty percent bigger and weighing up to 1,000 kilograms, is launched via the Long March 5B and Long March 6A. Both platforms utilize electric propulsion systems to maneuver in orbit, powered by two solar panels.

This mission was the 11th launch of a Long March 8A vehicle, the 18th launch of the Long March 8 series, and the 669th launch of the Long March launch vehicle series. This was also the 69th launch from China in 2026.


Video Credit: China Aerospace Science and Technology Corporation (CASC) 
Text Credit: Jack C.
Duration: 26 seconds
Date: Sept. 23, 2026

#NASA #Space #Science #Earth #Satellites #SatelliteConstellations #SatNetLEOGroup24 #GuoWangConstellation #国网 #ChinaSatelliteNetworkGroup #China #中国 #RocketLaunches #LongMarch8 #长征八号运载火箭 #LongMarch8AY11 #MediumLiftRockets #CAST #CALT #CASC #SpaceTechnology #Spaceports #Wenchang #Hainan #STEM #Education #HD #Video

Northern Lights over Four Mile Lake in Alberta, Canada

Northern Lights over Four Mile Lake in Alberta, Canada

Photographer John David McKinnon: "A geomagnetic substorm takes flight over Four Mile Lake in Northern Alberta, Canada. Even a tinge of the red Aurora came out to play. Beauty, eh!"

Known as the northern lights (aurora borealis) or southern lights (aurora australis), auroras are colorful, dynamic, and often visually delicate displays of an intricate dance of particles and magnetism between the Sun and Earth called space weather. When energetic particles from space collide with atoms and molecules in the atmosphere, they can cause the colorful glow that we call auroras.

Learn more about auroras: 
https://science.nasa.gov/sun/auroras/

Alberta is a province in Canada. It is a part of Western Canada and is one of the three prairie provinces. Alberta is bordered by British Columbia to its west, Saskatchewan to its east, the Northwest Territories to its north, and the U.S. state of Montana to its south.

Canada is a country in North America. Its ten provinces and three territories extend from the Atlantic Ocean to the Pacific Ocean and northward into the Arctic Ocean, making it the second-largest country by total area with the longest coastline of any country. Its border with the United States is the longest international land border.

Image Credit: John David McKinnon
Location: Four Mile Lake, Alberta, Canada
Release Date: Sept. 24, 2026

#NASA #Astronomy #Space #Science #Stars #Sun #SolarSystem #Planets #Earth #Aurorae #AuroraBorealis #NorthernLights #MagneticFields #Magnetosphere #SolarWind #Photography #JohnDavidMcKinnon #Photographer #CitizenScience #FourMileLake #Alberta #Canada #NorthAmerica #STEM #Education

Pikachu in the Cupola | International Space Station

Pikachu in the Cupola | International Space Station

A special Astronaut Pikachu plush toy traveled to the International Space Station to join the European Space Agency (ESA) astronaut Sophie Adenot as part of a partnership between ESA and The Pokémon Company International.

In this image, Astronaut Pikachu floats inside the Cupola, the European-built observation module that offers spectacular views of Earth and is a favorite spot for astronauts living and working on the Station to watch our home planet pass by below. The European Space Agency-built seven-windowed cupola is the International Space Station's "window to the world".

The International Space Station orbits Earth around 400 km above it, circling the planet every 90 minutes and treating its crew to around 16 sunrises and sunsets each day—a beautiful sight that has now been shared with Pikachu. Since 2000, astronauts have lived and worked continuously aboard the Station, carrying out science research using the unique microgravity conditions in orbit.

Sophie has spent more than 200 days in space as part of her εpsilon mission, conducting scientific research and completing three spacewalks over the summer to help maintain the orbiting laboratory.

ESA and Pokémon are teaming up to inspire the next generation of explorers. Whether through science or imagination, discovery begins with curiosity.

Pokémon is a Japanese media franchise consisting of video games, animated series and films, a trading card game, and other related media. The franchise takes place in a shared universe where humans co-exist with special creatures, a large variety of species endowed with special powers.

Learn more here: https://bit.ly/4rO47Rv

Follow Sophie’s mission on the εpsilon page: https://www.esa.int/Science_Exploration/Human_and_Robotic_Exploration/epsilon 


Expedition 75 Crew
Station Commander: Jessica Meir
Roscosmos (Russia) Flight Engineers:
Andrey Fedyaev,
Anna Kikina, Pyotr Dubrov
European Space Agency Flight Engineer: Sophie Adenot
NASA Flight Engineers: Jack Hathaway, Anil Menon

An international partnership of space agencies provides and operates the elements of the International Space Station (ISS). The principals are the space agencies of the United States, Russia, Europe, Japan, and Canada.


Credits: ESA/NASA – S. Adenot
Release Date: Sept. 23, 2026

#NASA #Space #Science #Astronomy #ISS #Earth #Cupola #Pikachu #ピカチュウ #Pokemon #ポケモン #Japan #日本 #Children #Toys #Astronauts #SophieAdenot #France #CNES #Cosmonauts #Russia #Россия #Roscosmos #Роскосмос #HumanSpaceflight #Expedition75 #InternationalCooperation #UnitedStates #STEM #Education

Wednesday, September 23, 2026

SpaceX Starship at Sunrise: Pre-orbital Flight#14 | Starbase Texas

SpaceX Starship at Sunrise: Pre-orbital Flight#14 | Starbase Texas


SpaceX is preparing to go to orbit with Starship on Test Flight 14.

Follow updates and watch the event here → https://www.spacex.com/launches/starship-flight-14

The upcoming flight is planned to be the first to send Starship into orbit around Earth. Flight tests until this point have intentionally flown passively safe suborbital trajectories to maximize public safety while allowing for maximum learning. By going to orbit, the next phase of developing Starship to be fully and rapidly reusable can begin.

This will also mark the first time we plan to deploy Starlink V3 satellites into the constellation, delivering a payload that will dramatically expand connectivity speeds and reliability around the world.

Starship’s initial orbital mission is expected to fly at an altitude approximately 275 km above Earth and complete approximately six orbits around the planet over the course of a nearly 10-hour flight, with splashdown targeted in the Pacific Ocean to the west of Chile.

A live webcast of the flight will begin about 30 minutes before liftoff. Coverage is planned to continue through splashdown with the potential for hours of live views from Starship as it orbits Earth. As is the case with all developmental testing, the schedule is dynamic and likely to change, so be sure to stay tuned for updates.

The booster’s primary test objective on Flight 14 will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of Mexico. There have been several modifications to hardware and software to address issues seen on the previous flight.

After stage separation and flip on Flight 13, the Super Heavy booster was able to use all 33 engines on its boostback burn for the first time. In the terminal phase of the burn, the three center engines showed signs of ice clogging that triggered an early end to the maneuver. The booster went on to attempt a landing burn, with 8 of the 13 planned engines reigniting before the booster made a hard splashdown in the Gulf. The Super Heavy on this upcoming flight has hardware modifications to improve filtering to the engines and software changes to enhance relight reliability.

The Starship upper stage’s primary objectives include the first orbital insertion maneuver, the deployment of 26 Starlink V3 satellites, a deorbit burn using a single Raptor engine while in space, and a controlled reentry, descent, and splashdown in the Pacific Ocean. Starship will only execute a burn to enter orbit after the flight control team has ensured there is sufficient redundancy on hardware critical to doing the subsequent deorbit burn at the end of the mission.

Starship will deliver 26 Starlink V3 satellites to orbit for the first time. They aim to greatly expand the network's capacity and user speeds. Each Starlink V3 satellite will add 1 Tbps of capacity to the constellation, for a total of 26 Tbps of capacity added on this mission alone. That’s ~10x the capacity compared to a single launch of V2 mini Starlink satellites on Falcon 9.

After deploying from Starship, the Starlink V3 satellites will unfold their antennas and deploy their solar arrays and make initial contact with the ground and the rest of the Starlink constellation via radio frequency and laser links. The satellites will then begin raising their orbits with their onboard thrusters. Following their on-orbit checkouts, the satellites should begin serving customers as soon as a few weeks after launch.

Three of the satellites have been modified with a suite of cameras to scan Starship’s heatshield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heatshield readiness for return to launch site on future missions.

Several upgrades and experiments related to Starship’s heatshield will also be tested, with some improvements derived directly from data gathered from the Flight 13 Starship as it floated in the Indian Ocean. They include additional retention mechanisms added to tiles in areas deemed to be at highest risk of falling off during ascent, addressing recently discovered areas that offer flow paths behind tiles for plasma, and flying multiple areas with a curved tile design that has shown the ability to reduce heating in the gaps between tiles. And finally, two tiles recovered from Ship 40 are planned to be reflown on Ship 41, marking the first tile reuse for Starship.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.


Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Credit: SpaceX
Release Date: Sept. 23, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest14 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education

SpaceX Starship Stacking at Launch Pad: Pre-orbital Flight#14 | Starbase Texas

SpaceX Starship Stacking at Launch Pad: Pre-orbital Flight#14 | Starbase Texas

SpaceX is preparing to go to orbit with Starship on Test Flight 14.

Follow updates and watch the event here → https://www.spacex.com/launches/starship-flight-14

The upcoming flight is planned to be the first to send Starship into orbit around Earth. Flight tests until this point have intentionally flown passively safe suborbital trajectories to maximize public safety while allowing for maximum learning. By going to orbit, the next phase of developing Starship to be fully and rapidly reusable can begin.

This will also mark the first time we plan to deploy Starlink V3 satellites into the constellation, delivering a payload that will dramatically expand connectivity speeds and reliability around the world.

Starship’s initial orbital mission is expected to fly at an altitude approximately 275 km above Earth and complete approximately six orbits around the planet over the course of a nearly 10-hour flight, with splashdown targeted in the Pacific Ocean to the west of Chile.

A live webcast of the flight will begin about 30 minutes before liftoff. Coverage is planned to continue through splashdown with the potential for hours of live views from Starship as it orbits Earth. As is the case with all developmental testing, the schedule is dynamic and likely to change, so be sure to stay tuned for updates.

The booster’s primary test objective on Flight 14 will be executing a successful launch, ascent, stage separation, boostback burn, and landing burn at an offshore landing point in the Gulf of Mexico. There have been several modifications to hardware and software to address issues seen on the previous flight.

After stage separation and flip on Flight 13, the Super Heavy booster was able to use all 33 engines on its boostback burn for the first time. In the terminal phase of the burn, the three center engines showed signs of ice clogging that triggered an early end to the maneuver. The booster went on to attempt a landing burn, with 8 of the 13 planned engines reigniting before the booster made a hard splashdown in the Gulf. The Super Heavy on this upcoming flight has hardware modifications to improve filtering to the engines and software changes to enhance relight reliability.

The Starship upper stage’s primary objectives include the first orbital insertion maneuver, the deployment of 26 Starlink V3 satellites, a deorbit burn using a single Raptor engine while in space, and a controlled reentry, descent, and splashdown in the Pacific Ocean. Starship will only execute a burn to enter orbit after the flight control team has ensured there is sufficient redundancy on hardware critical to doing the subsequent deorbit burn at the end of the mission.

Starship will deliver 26 Starlink V3 satellites to orbit for the first time. They aim to greatly expand the network's capacity and user speeds. Each Starlink V3 satellite will add 1 Tbps of capacity to the constellation, for a total of 26 Tbps of capacity added on this mission alone. That’s ~10x the capacity compared to a single launch of V2 mini Starlink satellites on Falcon 9.

After deploying from Starship, the Starlink V3 satellites will unfold their antennas and deploy their solar arrays and make initial contact with the ground and the rest of the Starlink constellation via radio frequency and laser links. The satellites will then begin raising their orbits with their onboard thrusters. Following their on-orbit checkouts, the satellites should begin serving customers as soon as a few weeks after launch.

Three of the satellites have been modified with a suite of cameras to scan Starship’s heatshield and transmit imagery down to operators to continue testing methods of analyzing Starship’s heatshield readiness for return to launch site on future missions.

Several upgrades and experiments related to Starship’s heatshield will also be tested, with some improvements derived directly from data gathered from the Flight 13 Starship as it floated in the Indian Ocean. They include additional retention mechanisms added to tiles in areas deemed to be at highest risk of falling off during ascent, addressing recently discovered areas that offer flow paths behind tiles for plasma, and flying multiple areas with a curved tile design that has shown the ability to reduce heating in the gaps between tiles. And finally, two tiles recovered from Ship 40 are planned to be reflown on Ship 41, marking the first tile reuse for Starship.

NASA plans to use a lunar lander version of Starship to deliver astronauts and cargo to the Moon during the Artemis IV mission and beyond through the Human Landing System (HLS) Program.


Download the Free Starship User Guide (PDF):
https://www.spacex.com/media/starship_users_guide_v1.pdf

Video Credit: SpaceX
Duration: 17 seconds
Release Date: Sept. 23, 2026

#NASA #SpaceX #Space #Earth #Mars #Moon #MoonToMars #ArtemisProgram #ArtemisIII #ArtemisIV #Starship #StarshipV3 #FlightTest14 #ReusableSpacecraft #SuperHeavy #SuperHeavyV3 #ElonMusk #Engineering #SpaceTechnology #HumanSpaceflight #CommercialSpace #SpaceExploration #StarbaseTexas #UnitedStates #STEM #Education #HD #Video