Fans pose for a photo with an astronaut in the NASA Experience Zone at an NFL game between the Pittsburgh Steelers and the Atlanta Falcons at Acrisure Stadium, Sunday, Sept. 13, 2026, in Pittsburgh, Pennsylvania.
NASA’s engagement at NFL games is part of the agency’s Inspiration Tour, aimed at strengthening connections between NASA and its partners and showcasing innovation in air and space in the lead up to the MAX POWER aerospace technology expo and air show at the agency’s Kennedy Space Center in early November.
Preparations for Next Moonwalk Simulations Underway (and Underwater)
The members of NASA’s 2025 Astronaut Candidate Class pose with rock samples collected during their geology training at the Rio Grande del Norte National Monument, New Mexico, in May 2026.
NASA/Helen Arase Vargas
Did you spend part of your summer camping, hiking, at the pool, or in an aircraft? So did NASA’s 2025 Astronaut Candidate Class.
The 10 candidates have been working their way through a comprehensive and rigorous training program since the agency introduced them to the public on Sept. 22, 2025, from NASA’s Johnson Space Center in Houston. They are approximately halfway through the nearly two-year training program, which will equip them for missions to low Earth orbit, the Moon, and ultimately, Mars.
Geology Studies
Since the astronaut candidates can one day be assigned to a future Artemis mission to the lunar surface, geology courses are an important part of their training. In May, candidates completed classroom trainings at Johnson before venturing to the Rio Grande del Norte National Monument in New Mexico for additional classroom instruction and training in the field. Several candidates also joined NASA astronauts and Artemis mission support teams for geology field training in Iceland in July. They practiced geologic observations, sampling with tools, navigation, and teamwork, all skills and processes that translate directly to Artemis lunar missions.
NASA astronaut candidates study rock samples during a geology classroom training at NASA’s Johnson Space Center in Houston.
NASA/Helen Arase Vargas
NASA astronaut candidates Anna Menon, left, and Imelda Muller study a rock sample during a geology classroom training at NASA’s Johnson Space Center in Houston.
NASA astronaut candidates hiked through Rio Grande del Norte National Monument, New Mexico, during geology field training.
NASA/Helen Arase Vargas
JAXA (Japan Aerospace Exploration Agency) astronaut Akihiko Hoshide and NASA astronaut candidates Cameron Jones and Yuri Kubo participated in geology field training in Iceland, alongside NASA astronauts, Artemis mission support teams, and geology instructors.
NASA/James Blair
Flight Training
Whether learning to become a pilot or sharpening their existing piloting skills, astronaut candidates train in aircraft to build confidence, coordination, adaptability, and resilience in high-stakes environments. This summer, that training included flights on NASA’s WB-57s – a trio of long-range, high-altitude airplanes that have flown research missions since the 1960s. The class also began flying NASA’s T-38 supersonic jets.
NASA astronaut candidate Lauren Edgar prepares for flight training in one of NASA’s T-38 jets.
NASA astronaut candidate Rebecca Lawler, right, rides out to one of NASA’s WB-57 aircraft ahead of flight training at Ellington Field.
NASA/Josh Valcarcel
NASA astronaut candidate Adam Fuhrmann completes preflight checks of a WB-57 aircraft at Ellington Field.
NASA/Josh Valcarcel
NASA astronaut candidate Adam Furhmann sits inside the cockpit of a WB-57 aircraft as he prepares for flight training.
NASA/Josh Valcarcel
Altitude Chamber Runs
Candidates have also spent time in one of Johnson’s altitude chambers as part of their flight training. These unique facilities allow NASA to simulate physical pressure levels ranging from those at sea level to near vacuum. After donning flight suits and helmets, candidates enter the chamber to familiarize themselves with the conditions they will face on high-altitude flights and in space, and to practice different protocols and interventions designed to keep them safe.
April 8, 2025
NASA astronaut candidates Adam Fuhrmann and Rebecca Lawler prepare to conduct altitude chamber runs as part of their flight training.
NASA astronaut candidate Adam Fuhrmann sits inside the altitude chamber at NASA’s Sonny Carter Training Facility in Houston.
NASA/James Blair
A NASA team member observes astronaut candidate Adam Fuhrmann as he completes an altitude chamber run.
NASA/James Blair
Water Survival Training
Candidates continued survival training to prepare for the unlikely event of landing in remote environments after a mission. Water survival exercises in Johnson’s Neutral Buoyancy Laboratory, or NBL, simulate these scenarios while also building teamwork and decision-making skills.
Some components of astronaut candidates’ water survival training are completed during simulated storms inside of the Neutral Buoyancy Laboratory.
NASA/Morgan Gridley
A NASA astronaut candidate practices being lifted out of the water during survival training in the Neutral Buoyancy Laboratory.
NASA/Robert Markowitz
NASA astronaut candidate Rebecca Lawler floats in a raft during water survival training at the Neutral Buoyancy Laboratory.
NASA/Robert Markowitz
On top of these exercises, candidates are completing intensive Russian language classes and cross-cultural training to prepare for missions spanning countries and continents. They are learning to operate spacecraft systems used in human spaceflight missions, conducting spacewalk training at the NBL, and training inside other mockups of space vehicles. They are also learning emergency procedures, maintenance, and repair of spacecraft.
The class is on track to graduate in 2027, when they will join NASA’s active astronaut corps and await their first flight assignments. Whether they go on to contribute to research taking place aboard the International Space Station or venture to the Moon to prepare for future Mars missions, the graduates will have the operational expertise, scientific knowledge, and technical background necessary to advance NASA’s deep space exploration goals and sustain a long-term human presence beyond low Earth orbit.
Autumn color sweeps across the low-growing shrubs and tundra vegetation of Nunavut, Canada, in this image pair captured by the OLI (Operational Land Imager) on Landsat 9. NASA Earth Observatory images by Michala Garrison.
As North America rode out a summer of remarkable heat, fall foliage and cool, crisp weather still seemed like distant, alien concepts across much of the continent in early September 2026. But fall comes early in the tundra and subarctic ecosystems of Nunavut, in far northern Canada.
Vivid signs of the season were already sweeping across the landscape on September 6 when the OLI (Operational Land Imager) on Landsat 9 captured this image (right) of the Coppermine River winding through low-growing shrubs and tundra vegetation upriver of Kugluktuk, a community at the river’s mouth. The other image (left) shows the same area on July 27, 2026, when vegetation was still green.
The region is known for willow and birch shrubs, blueberries, bearberries, and other low-growing tundra plants that turn shades of red, orange, and yellow each fall. A NASA and South Dakota State University analysis of seven years of satellite data found that foliage in the region begins to change in early September and peaks in mid-month, making this one of the first places on the North American continent to change color. But blink and you might miss it: the analysis also showed that far northerly regions tend to have shorter periods of peak color—sometimes a week or less—compared to many lower-latitude areas.
In the fall, leaves change colors as they lose chlorophyll, the molecule that plants use to synthesize food. Chlorophyll makes plants appear green because it absorbs the red and blue light from sunlight as it strikes leaf surfaces. However, chlorophyll is not a stable compound, and plants must continuously synthesize it, a process that requires ample sunlight and warm temperatures. As temperatures drop and days shorten in autumn, levels of chlorophyll fall as well.
As concentrations of chlorophyll decline, the green fades from leaves, presenting an opportunity for other pigments—carotenoids and anthocyanins—to take the stage. Carotenoids absorb blue-green and blue light, so in the absence of chlorophyll, they cause leaves to appear yellow. Anthocyanins absorb blue, blue-green, and green light, so light reflecting off the pigments appears red.
Citizen scientists have an opportunity to help NASA scientists track fall color and contribute to long-term environmental databases with the GLOBE North American Phenology Campaign. Participants observe and record leaf color changes during the spring and fall, helping scientists understand plant responses to climate and environmental changes.
NASA Earth Observatory images by Michala Garrison, using Landsat data from the U.S. Geological Survey.Story by Adam Voiland.
Discover the cosmos! Each day a different image or photograph of our fascinating universe is featured, along with a brief explanation written by a professional astronomer.
Comet NEOWISE Rising Over the Adriatic Sea
Explanation: This sight was worth getting out of bed early. Just over four years ago, Comet C/2020 F3 (NEOWISE) rose before dawn to the delight of northern sky enthusiasts awake that early. Up before sunrise on July 8th, the featured photographer was able to capture in dramatic fashion one of the few comets visible to the unaided eye this century, an inner-Solar System intruder that has become known as the Great Comet of 2020. The resulting video detailed Comet NEOWISE from Italy rising over the Adriatic Sea. The featured time-lapse video combines over 240 images taken over 30 minutes. The comet was seen rising through a foreground of bright and undulating noctilucent clouds, and before a background of distant stars. Comet NEOWISE remained unexpectedly bright for over a month, with its ion and dust tails found to emanate from a nucleus spanning about five kilometers across.
How do scientists studying space with data from a telescope hundreds of thousands of miles away know that what they are seeing is real? A new NASA project, Artifact InSPECtor, invites you to find out – and by doing so, to help missions like Euclid and NASA’s new Nancy Grace Roman Space Telescope answer fundamental questions about our universe.
“It’s really cool that we can help teach computers new skills,” said nine-year-old Maeve F. after trying out Artifact InSPECtor. Participants of all ages, including those as young as Maeve, can visit the project to learn how they can contribute to science by training artificial intelligence to remove errors in telescope data.
Here’s how it works.
The Euclid space telescope, a powerful observatory built by ESA (European Space Agency) with critical contributions from NASA, is collecting light from millions of distant galaxies across the universe. It will soon be joined by NASA’s Nancy Grace Roman Space Telescope, a complementary observatory that will capture a similar number of galaxies after it begins science operations, but at different distances and densities across the sky. Together, these telescopes promise to help scientists answer questions about the expansion of the universe and dark energy – the mysterious force causing this expansion.
To collect data to answer these questions, each telescope uses a special instrument called a spectrograph that works like a prism: it splits the light from each galaxy, even very distant ones, into a rainbow of colors. By studying these rainbow patterns, called spectra, scientists can figure out how far away each galaxy is, what kinds of stars it contains, and even information about the supermassive black holes at their centers.
But before that can happen, there’s a problem to solve.
Telescope data contains many “artifacts” – the general name scientists use for signals that come from things other than real astronomical objects like galaxies or stars. Artifacts can be created by light glinting off the telescope’s housing, cosmic rays striking the detector, quirks in the camera or electronics, or other sources. It’s a bit like when a smudge on your phone’s camera lens shows up in a photo, or when a glare from the Sun blocks part of your picture.
To find and remove these artifacts, astronomers have created artificial intelligence (AI) tools that learn to recognize them, similar to how your phone recognizes faces in photos. But recognizing artifacts in data from relatively new instruments is challenging work for the AI, which doesn’t always distinguish them accurately
That’s where you come in! As a volunteer with Artifact InSPECtor, you’ll look at real space telescope data from Euclid and, starting in early 2027, the Nancy Grace Roman Space Telescope. The project will teach you how to recognize artifacts in data from these telescopes. The work you do will then be used to improve the instructions guiding the AI tool. Working together, you, the AI, the scientists, and these powerful space telescopes will learn more than ever before about how our universe works.
If you want to teach computers new skills and help discover the mysteries of dark energy, use your smartphone, tablet, or computer to visit Artifact InSPECtor and begin today: https://go.nasa.gov/3Uyrguy.
Examples of what artifacts can look like in space telescope data. The blue areas indicate pixels that the AI model thinks are invalid. Artifact InSPECtor volunteers will learn how to verify whether the machine got it right.
Credit: Image data from the ESA/Euclid Q1 Data release. Image processing by Aimee Schechter and Bharath C. Nagam.
Learn More and Get Involved
Artifact InSPECtor
Train the tools used to remove artifacts from the data collected by space telescopes. For anyone with a smartphone or laptop.
Discover the cosmos! Each day a different image or photograph of our fascinating universe is featured, along with a brief explanation written by a professional astronomer.
M83: The Southern Pinwheel
Explanation: Beautiful and bright spiral galaxy M83 lies some twelve million light-years away, near the southeastern tip of the very long constellation Hydra. Prominent spiral arms traced by dark dust lanes and blue star clusters lend this galaxy its popular name, the Southern Pinwheel. Still, reddish star forming regions that dot this cosmic pinwheel’s spiral arms have suggested another nickname, the Thousand-Ruby Galaxy. A mere 40,000 light-years across, smaller than the Milky Way, M83 is a member of a group of galaxies that includes active galaxy Centaurus A. In fact, the core of M83 itself is bright at x-ray energies, showing a high concentration of neutron stars and black holes left from an intense burst of star formation. This sharp, groundbased telescopic view also features foreground Milky Way stars and distant background galaxies.