NASA Modernizes Commercial Airline Systems

4 min read

Preparations for Next Moonwalk Simulations Underway (and Underwater)

Testing at NASA’s Ames Research Center in California’s Silicon Valley in March 2026 demonstrated autonomous technology that could identify an incursion – a vehicle, wayward suitcase, or other runway obstacle that could impact an aircraft’s safe landing.
NASA/Brandon Torres-Navarrete

NASA’s researchers know that when you settle into your seat on a commercial flight, you expect a smooth takeoff, views over the clouds, a steady descent, and hopefully an early arrival at your destination. But when your flight gets delayed on the tarmac instead of lifting off, or it ends up in a holding pattern rather than landing on time, things start to change. Your experience goes from smooth to anxiety-inducing as you worry about making your connection or getting home in time for dinner.

Large airports are among the busiest, most complex environments in aviation, with aircraft, ground crews, and service vehicles sharing crowded taxiways. Researchers at NASA’s Ames Research Center in California’s Silicon Valley recently worked with Boeing to advance three types of field tests – digital taxi information, safe taxiway, and safe runways – that could lead to safer, more efficient runway environments at airports.

During the digital taxi tests, pilots were given taxiway guidance directly on cockpit displays or tablets, instead of verbally from air traffic controllers. Aircraft autonomously followed digital routes while researchers monitored a suite of sensors designed to identify vehicles or other aircraft impeding the taxi path and runway. The system reduced pilot and air traffic controller workloads and the risk of verbal errors.  

Safe runway technology testing can also improve situational awareness for approaching aircraft. While preparing to land a Boeing aircraft during testing, the same sensors successfully flagged a vehicle on the runway, providing additional awareness to ensure pilots could avoid potential collisions or other safety concerns.

Together, these NASA capabilities aim to reduce miscommunication, ease pilot workloads, and keep airport traffic moving smoothly. Future testing will integrate the sensor and digital taxi systems into a simulated air traffic control environment to evaluate how the technologies can benefit overall management of the airspace.

For years, NASA has worked to improve your experience when flying by developing new technologies to modernize the commercial airline system. Key NASA technologies streamline and digitize the flying experience – from the departure gate, to the skies, to your safe arrival at your destination.

“Aviation safety is key to NASA’s research,” said Parimal Kopardekar, director of NASA’s Airspace Operations and Safety project. “Technology that can provide additional autonomy and support a future airspace with multiple aircraft operating in harmony is key to advancing the National Airspace System.”

NASA’s research innovations continue after your flight takes off. Modern flights constantly respond to shifting weather, turbulence, and traffic. Even small changes in direction or altitude can affect when a plane arrives. These changes can force flights into holding patterns while air traffic controllers attempt to rebalance the busy airspace.

NASA’s air traffic management researchers have been working for years to reduce those situations. In a 2025 collaborative effort with Boeing, United Airlines, and international partners, NASA evaluated real‑time trajectory sharing on domestic and transoceanic flights.

During that testing, a United Airlines Boeing 737 aircraft shared frequent flight information with airline operations centers and air traffic control. NASA used the data to understand how frequently those updates should be sent and what details matter most for generating accurate arrival predictions. Better information helps controllers sequence traffic more precisely, which means fewer holding patterns and more direct descents for passengers.

A computer display of a map shows several lines which represent possible air traffic routes for an airplane to follow.
Digital rerouting technology could reduce workloads for controllers, suggesting new routes to prevent or avoid delays without the back-and-forth needed to adjust flight paths manually.
NASA

Pre-departure rerouting technology and digital exchange tools developed at NASA allow dispatchers and controllers to see the same digital picture of flights preparing to depart.

When a better route becomes available, controllers could coordinate the change digitally instead of relying on verbal communication between pilots, controllers, and dispatchers. The technology could lead to fewer delays, reduced fuel consumption, and more predictable operations for passengers.

NASA has now transferred the routing technology to the Federal Aviation Administration (FAA) and airlines will continue to test it. These tools build on decades of NASA contributions to national airspace modernization.

In coordination with the FAA, NASA has advanced automation concepts, improved how arrival and departure flows are managed, and introduced data‑driven software that commercial airlines use every day.

By working closely with airlines, manufacturers, and global partners, NASA is helping to improve every phase of flight to make air travel safer and more reliable, now and in the future.

Source: www.nasa.gov

NASA Welcomes Croatia as Newest Artemis Accords Signatory

Flags of Artemis Accords countries.
Credit: NASA

The Republic of Croatia became the 74th signatory to the Artemis Accords on Wednesday during a ceremony in the capital city of Zagreb with NASA and U.S. Department of State officials present.

“It is my privilege to welcome the Republic of Croatia as the latest signatory of the Artemis Accords,” said NASA Deputy Matt Anderson in pre-recorded remarks during the ceremony. “Joining the Artemis Accords opens another chapter. We’ve aligned on the principles. The opportunities to contribute are growing. And now we can look toward what the United States and Croatia can accomplish together beyond Earth. Humanity’s opportunities in space are endless, and we are proud to welcome Croatia to the Artemis Accords community.”

Croatia’s Minister of Science, Education, and Youth Radovan Fuchs signed on behalf of the country. U.S. Ambassador to Croatia Nicole McGraw and Gregory Mann, NASA Europe representative, attended event.

“Croatian scientists and companies are demonstrating growing interest in the space industry,” said Fuchs. “We have therefore decided to expand our international cooperation by joining the Artemis Accords. This international agreement has been recognized as a key opportunity for the robust development of Croatia’s scientific community, the introduction of new technologies, and the strengthening of the economy.”

Croatia marked a major milestone with the successful launch of its first satellite, CroCube, on Dec. 21, 2024. The satellite reached orbit aboard a SpaceX Falcon 9 rocket, highlighting Croatia’s growing technological capabilities and interest in space collaboration.

NASA and the State Department joined with seven other founding nations to establish the Artemis Accords in 2020, responding to the growing interest in lunar activities by both governments and private companies.

The Artemis Accords are the first set of practical principles aimed at enhancing transparency, safety, and coordination among like-minded nations as they explore the Moon, Mars, and beyond, committing nations to:

  • Explore peaceably and transparently
  • Render aid to those in need
  • Enable access to scientific data
  • Ensure activities do not interfere with those of others
  • Preserve historically significant sites and artifacts by developing best practices

By signing the Artemis Accords, nations open the door to opportunities for future lunar exploration with NASA, advancing humanity’s return to the Moon, and shaping the Golden Age of space exploration and innovation.

Learn more about the Artemis Accords at: 

https://www.nasa.gov/artemis-accords

Source: www.nasa.gov

US-India Satellite Captures Time-lapse Video of Volcanic Eruption

In this animation, frames of NISAR data from December 2025 to August 2026 show the spread of lava from the northern crater of Krasheninnikov, a volcano pair on Russia’s Kamchatka Peninsula. In the image, the lava field appears brighter in the foreground than the surrounding surfaces.
 Credit: NASA’s Scientific Visualization Studio

Like tendrils on a vine, lava spreads out from the northern crater of Krasheninnikov, a volcano pair on the Pacific coast of Russia’s Kamchatka Peninsula. On July 30, 2025, an 8.8-magnitude earthquake had struck in the nearby ocean, apparently jolting one of the two volcanoes awake. A few days later, for the first time in nearly five centuries, Krasheninnikov started erupting. Since that day, the northern volcano has been spilling a steady, eastward-flowing field of molten rock and debris, and the NASA-ISRO Synthetic Aperture Radar (NISAR) mission has been tracking the changes in the landscape.

From its vantage point 464 miles (747 kilometers) above the surface, NISAR captured an image of Krasheninnikov on Dec. 25, 2025, just as the Earth-observing satellite was finishing post-launch checks and becoming operational. Twice every 12 days since — once as the satellite passed south to north, and again as it passed north to south — NISAR has returned to the same spot in orbit and taken detailed radar snapshots.

Researchers put 17 of the frames captured through mid-August into sequence, forming a time-lapse video that shows lava filling a smaller, inner caldera, then overflowing into a wider crater before widening into a fan. The animation highlights how NISAR’s observations can monitor the development of natural hazards, both for science and potentially for emergency response.

Though remote, many of Kamchatka’s dozens of volcanoes are closely monitored with ground instruments because they erupt frequently. Not so with Krasheninnikov, which has been quiet since about the year 1550. That NISAR’s L-band radar observed it at all speaks to the satellite’s near-global coverage of the planet’s land surface at resolutions in the dozens of feet; that it captured the erupting volcano over time shows the precision and reliability of its measurements.

“The consistency is crucial. Twice every 12 days, acquiring in this high-resolution mode and in two observation directions, this shows the promise of NISAR to closely monitor natural hazards,” said Matthew Pritchard, a member of the NISAR science team and geophysicist at Cornell University who analyzed the data used to create the animation. 

Images from microwaves

The detail in a single NISAR image results from the use of synthetic aperture radar, or SAR, a specialized processing technique pioneered by NASA’s Jet Propulsion Laboratory in Southern California for Earth observation from space. As the satellite orbits, the radar sends thousands of microwave pulses per second to Earth and receives the return signals, each of which is effectively a snapshot in time that contains information about the properties and characteristics of the surface below.

The SAR processing combines the many images of the same area, sharpening the view just as a lens brings a blurry object into focus. Each pixel in the individual frames of the Krasheninnikov time-lapse represents about a 30-foot-by-30-foot (10-meter-by-10-meter) square on the surface — about half the size of a tennis court.

Lava shows up lighter in the images due to the way that microwaves reflect more brightly compared with the surrounding surface, which, depending on the time of year, is either snow or bare ground. In addition to the lava field growing to the east, the video shows another flow to the northwest, one that likely formed before NISAR captured the first NISAR image.

When Pritchard was doing his doctoral research on Kamchatka volcanoes more than 20 years ago, analysis-ready radar data was difficult to come by, both because satellites didn’t revisit as often and the resolution of the images was relatively low.

Now in addition to getting frequent and comprehensive coverage of virtually all the planet’s roughly 1,300 active, above-sea-level volcanoes, the images are sharp down to the several-meter scale and are easily accessible via the cloud. 

“We’re seeing volcanoes around the world that we’ve never really had eyes on like this before,” said Pritchard.

The NISAR satellite is the first free-flying space mission to feature two radar instruments: an L-band system and an S-band system. The systems are complementary due to their differing wavelengths. For example, the longer-wave L-band can pass through tree canopies, imaging the ground beneath. Meanwhile, depending on leaf sizes, S-band can collect observations of those canopies.

The data products from the NISAR mission’s L-band radar are available at the Alaska Satellite Facility Distributed Active Archive Center in Fairbanks, which hosts and distributes all NASA synthetic aperture radar data.

More about NISAR

Managed by Caltech for NASA, JPL leads the United States component of the project and provided the satellite’s L-band SAR and antenna reflector. The spacecraft bus and its S-band SAR were provided by ISRO (Indian Space Research Organisation).

The NISAR satellite is the first to carry two SAR instruments at different wavelengths, collecting data using the spacecraft’s giant drum-shaped reflector, which measures 39 feet (12 meters) wide, which is the largest radar antenna reflector NASA has sent into space.

To learn more about NISAR, visit: 

https://science.nasa.gov/mission/nisar/

Media Contacts

Andrew Wang / Andrew Good 
Jet Propulsion Laboratory, Pasadena, Calif. 
626-379-6874 / 818-393-2433 
[email protected] / [email protected] 

2026-064

Source: www.nasa.gov

Cloudy Cloak Over the Northwest

Low-lying clouds cover western Washington and Oregon between the Pacific coast and the foothills of the Cascade Range. Parts of the Olympic Mountains and Oregon Coast Range are visible above the clouds.
September 19, 2026
NASA Earth Observatory/Michala Garrison

Cool, marine air rolling off the Pacific Ocean led to a picturesque layer of morning clouds over western Washington and Oregon in mid-September 2026. Low-lying stratus clouds and fog extended as far inland as the western foothills of the Cascade Range. Near the coast, taller portions of the Olympic Mountains in Washington and the Oregon Coast Range appeared island-like, protruding above the cloud layer.

The MODIS (Moderate Resolution Imaging Spectroradiometer) on NASA’s Terra satellite shows the extent of the Pacific Northwest’s cloudy cloak on September 19, 2026, at about 10:45 a.m. Pacific Time (17:45 Universal Time). Abundant clouds also appear offshore over the Pacific, while smoke from wildland fires fills valleys in the North Cascades.

For several nights in a row, marine air flowed onshore, according to the National Weather Service, bringing with it low-level clouds known as marine stratus. These clouds form when moist air near the surface, trapped beneath a warmer air layer in a temperature inversion, cools enough for its water vapor to condense. The surge of cool, moist conditions was particularly strong early on September 19, producing cloudy conditions all the way up to the Cascade foothills. Some areas witnessed foggy conditions, where clouds extended down to the ground.

That same day, when NASA’s Aqua satellite passed over the area at about 4:15 p.m. Pacific Time (23:15 Universal Time), skies had cleared over much of the area. However, some marine clouds still clung to the Oregon coast, where temperatures stayed cooler than inland locations.

NASA Earth Observatory image by Michala Garrison, using MODIS data from NASA EOSDIS LANCE and GIBS/Worldview. Story by Lindsey Doermann.

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El Niño Is Underway

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El Niño Alters Marine Life in the Pacific

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Satellite measurements of chlorophyll at the sea surface signal shifts in the ocean’s nutrient supplies in mid-2026.

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Olympic Mountain Glory

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Snow-capped mountains carved by deep river valleys preside over northwestern Washington state.

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Lake Powell Drops to Record-Low Levels



September 1, 2017
September 10, 2026

Dark blue water in Lake Powell fills several bays and branching canyons amid a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
Dark blue water in Lake Powell fills several bays and branching canyons amid a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
NASA Earth Observatory / Lauren Dauphin

Water in Lake Powell is at record-low levels and looks like a wide river winding through a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
Water in Lake Powell is at record-low levels and looks like a wide river winding through a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
NASA Earth Observatory / Lauren Dauphin

Dark blue water in Lake Powell fills several bays and branching canyons amid a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
Dark blue water in Lake Powell fills several bays and branching canyons amid a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
NASA Earth Observatory / Lauren Dauphin

Water in Lake Powell is at record-low levels and looks like a wide river winding through a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
Water in Lake Powell is at record-low levels and looks like a wide river winding through a light orange desert landscape. The Glen Canyon Dam and the town of Page, Arizona, are visible in the lower left.
NASA Earth Observatory / Lauren Dauphin


September 1, 2017

September 10, 2026


Lake Powell stood at one of its highest levels in the past decade on September 1, 2017 (left), and at a record low on September 10, 2026, in these images acquired with the OLI (Operational Land Imager) on Landsat 8. NASA Earth Observatory images by Lauren Dauphin.

The effects of a meager mountain snowpack across the Upper Colorado Basin in winter 2025-2026 had made their way downstream to Lake Powell by summer. After seasonal snowmelt declined to a relative trickle, the second-largest reservoir in the U.S. sat at record-low levels in late August and early September.

These images show a portion of Lake Powell just above Glen Canyon Dam as observed by the OLI (Operational Land Imager) on the NASA-USGS Landsat 8 satellite on September 1, 2017 (left), and September 10, 2026 (right). In the 2026 image, the water level stood at 3,517.24 feet. About a month prior, it had dipped below the previous record-low level of 3,519.92 feet, set on April 13, 2023, and continued to tick downward in early September. The 2017 image represents one of the highest water levels of the past decade.

The Colorado River feeds Lake Powell and then Lake Mead farther downstream, which also hit record-low levels in August 2026. Managed by the U.S. Bureau of Reclamation (USBR) and other agencies, the river provides water and electric power to more than 40 million people—including in Las Vegas, Phoenix, Los Angeles, and San Diego—and water to some 5 million acres of farmland in the Southwest.

Much of the Colorado Basin is arid or semi-arid, so a large portion of the river’s flow originates as snowmelt from higher elevations. The Upper Colorado Basin, like many mountainous areas across the U.S. West, saw unusually little snow accumulation in winter 2025-2026, constituting a snow drought. Stretches of record warmth further sapped the snowpack. As a result, water from snowmelt did little to replenish lake levels in spring, as it typically does.

Water levels in Lake Powell have fluctuated but declined overall since 1999 and reached record lows in late August and early September 2026.
The effect of the megadrought in the U.S. Southwest in the 21st century is reflected in Lake Powell’s water level, as measured by the U.S. Bureau of Reclamation. The lake first reached a record low on August 15, 2026, and continued declining through early September. It remained above the minimum power pool elevation of 3,490 feet, below which the dam’s hydroelectric turbines can no longer generate energy effectively.
NASA Earth Observatory/Lauren Dauphin

The USBR took steps in April 2026 to stabilize Lake Powell and keep it from falling below the level needed for hydropower production—an outcome the agency deemed possible by August 2026 without intervention. USBR began releasing water from Flaming Gorge Reservoir in northern Utah and southern Wyoming into Lake Powell. It also reduced releases from Lake Powell into Lake Mead, canceled a “controlled flood” in April intended to build sandbars for fish habitat, and skipped a “cool mix” release in August aimed at protecting native species.

Drought in the U.S. Southwest has been ongoing since about the start of the 21st century—what experts have called a megadrought—and continues to strain water resources. Several projects and tools funded by NASA and powered in part by NASA Earth observations are helping decision-makers throughout the Colorado Basin monitor drought and respond to its effects.

At the Colorado River headwaters, for example, a dashboard based on the Western Land Data Assimilation System (WLDAS) provides real-time soil moisture, snow water equivalent, and evapotranspiration visualizations that inform Colorado’s drought task force, as well as weekly U.S. Drought Monitor maps.

Nearer to Lake Powell, the Drought Severity Evaluation Tool, co-developed with the Navajo Nation, helps leaders monitor localized drought indices, precipitation trends, and vegetation health across tribal lands. (With funding from NOAA’s National Integrated Drought Information System, its adoption expanded to Oklahoma’s Chickasaw and Choctaw Nations in 2025.) And the Colorado River Integrated Assessment tool, developed by Arizona State University researchers in partnership with the Central Arizona Project, consolidates improved modeling and NASA-satellite-validated information on snowpack, surface and groundwater storage, soil moisture, and more across the entire basin into a single interactive view.

NASA Earth Observatory images by Lauren Dauphin, using Landsat data from the U.S. Geological Survey and lake elevation data from the U.S. Bureau of Reclamation. Story by Lindsey Doermann.

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Boom Year for Desert Blooms



August 19, 2025
August 30, 2026

Branching riverbeds and roads cut through rusty orange land in the Western Australian outback.
Branching riverbeds and roads cut through rusty orange land in the Western Australian outback.
NASA Earth Observatory / Lauren Dauphin

Land in the Western Australian outback appears mostly rusty orange but contains areas of green, especially in riverbeds.
Land in the Western Australian outback appears mostly rusty orange but contains areas of green, especially in riverbeds.
NASA Earth Observatory / Lauren Dauphin

Branching riverbeds and roads cut through rusty orange land in the Western Australian outback.
Branching riverbeds and roads cut through rusty orange land in the Western Australian outback.
NASA Earth Observatory / Lauren Dauphin

Land in the Western Australian outback appears mostly rusty orange but contains areas of green, especially in riverbeds.
Land in the Western Australian outback appears mostly rusty orange but contains areas of green, especially in riverbeds.
NASA Earth Observatory / Lauren Dauphin


August 19, 2025

August 30, 2026


Arid shrublands in Western Australia were bursting with life in late austral winter 2026, when a profusion of wildflowers brought vivid colors to the rusty ochre landscape. After several wetter-than-normal months earlier in the year, dormant seeds in the soil awoke to produce carpets of blooms. Local experts think the display could be the best the area has seen in nearly two decades.

The images above, captured with the OLI (Operational Land Imager) on the NASA-USGS Landsat 8 satellite, compare the more verdant landscape of late August 2026 (right) with a similar time in 2025 (left), when it was drier. This area is located about 600 kilometers (370 miles) north of Perth in the Murchison region, one of Western Australia’s main areas for grazing sheep and cattle. The local vegetation includes grasses, saltbush, and the slow-growing evergreen mulga tree.

White flowers cover the ground amid sparsely spaced shrubby trees.
White flowers carpet the Western Australian outback.
© CSIRO Australia, September 16, 2026

Every so often, a variety of wildflowers makes an appearance, too. In 2026, rainfall totals were above average in June and very much above average in August due to several cold fronts moving through the area, according to Australia’s Bureau of Meteorology. The rains helped rouse a diverse mix of flowers to bloom across the outback, including on a radio astronomy site managed by the Commonwealth Scientific and Industrial Research Organisation (CSIRO), Australia’s national science agency. The flower show included some threatened species, which the observatory has helped monitor on its formerly pastoral land.

Though the spectacle underfoot might have momentarily stolen the show, Inyarrimanha Ilgari Bundara, the CSIRO Murchison Radio-astronomy Observatory, is primarily focused on what’s overhead and the exploration of deep space. At the Murchison site, CSIRO operates several antenna arrays that observe and catalog objects in the southern sky. The remote facility is situated within a “radio quiet” zone, where terrestrial communications and electronic devices are controlled to limit electromagnetic interference with the instruments.

A field of pink wildflowers occupies the foreground. Four white dish antennas, part of a radio astronomy observatory, are out of focus in the background.
Mulla mulla flowers appear in front of CSIRO’s Australian Square Kilometre Array Pathfinder (ASKAP) radio telescope.
© CSIRO Australia, September 16, 2026

Other telescopes in CSIRO’s purview in Australia have played crucial roles in NASA missions from the agency’s early years to today. The Murriyang radio telescope in Parkes, New South Wales, tracked Mariner 2—the first successful planetary science mission—in 1962 and was an important receiving station for the Apollo 11 mission to the Moon in 1969. CSIRO also manages and operates the Canberra Deep Space Communication Complex, one of three facilities in NASA’s global Deep Space Network that supports interplanetary spacecraft missions and collects radar and radio astronomy observations. Both supported the Artemis II mission in April 2026.

NASA Earth Observatory images by Lauren Dauphin, using Landsat data from the U.S. Geological Survey. Photos © CSIRO Australia, September 16, 2026. Story by Lindsey Doermann.

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Curiosity Blog, Sols 5010-5015: Checking out the Bands

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Curiosity Blog, Sols 5010-5015: Checking out the Bands

A grayscale image of the Martian surface taken by the Curiosity rover. The immediate foreground features a dense field of jagged, light-colored, thinly-layered rock fragments resting on a bed of darker sand or dust. The barren terrain gently slopes upward toward the horizon, where a cluster of dark, rugged hills and a larger, rounded mountain peak on the far right stand out against a smooth, featureless sky.
NASA’s Mars rover Curiosity acquired this image, showing the path ahead. The subtle banding can be picked out here in tonal differences. Curiosity captured the image using its Right Navigation Camera on Sept. 14, 2026 — Sol 5014, or Martian day 5,014 of the Mars Science Laboratory mission — at 02:05:20 UTC.
NASA/JPL-Caltech

Catherine O’Connell-Cooper, APXS Strategic Planner and Payload Uplink/Downlink Lead, University New Brunswick, NB, Canada

Earth planning date: Friday, Sept. 11, 2026

This week we had two planning days (Tuesday and Friday), as Monday was Labor Day in North America, where many of the Curiosity team are based. Labor Day (the first Monday in September) marks the end of summer holidays and thrills, and the return to more typical routines and back to school.

The MSL team has marked several important milestones within the past few weeks — marking our 14th “Landiversary” on Aug. 6 and surpassing the 1-kilometer elevation mark and our 5000th sol (Martian day) in early September. Our next big date is not until Nov. 26, the 15th anniversary of launch, and so it feels like Curiosity is also back to a more routine schedule at this point.

We are moving up the valley known informally as “Valle Grande.” In recent weeks, we climbed up over what we interpreted as an “erosional supersurface” (which marks a gap in the usual rock record) and are now traversing through a subtly banded area. Bands are 25-200 meters (about 80-650 feet) in diameter, with morphological changes, such as bands with more sand and less rocky outcrops (which often appear darker from a distance because there is more sand) and others where outcrops seem more continuous that allow us to mark out rough contacts between them.  

The terrain this week was characterized by sparse outcrops with a rough texture, often nodular, surrounded by lots of sand and coarse pebbly sand. On Tuesday APXS and MAHLI investigated brushed nodular bedrock at “Cerro Armazones” and “Monte Melimoyu.” ChemCam acquired LIBS on a knot of dark-toned nodules at “Tuta Huallpas” and the dark-toned float rock “Acllahuasi.”

On Friday, after a drive of about 60 meters (nearly 200 feet), we found ourselves with mostly sand close to the rover and just one small rough-textured outcrop close enough for contact science and LIBS. Fortunately, the block was extremely interesting, with abundant small flakes and chips incorporated and laminated areas that are a bit smoother. We will investigate the rougher textures with MAHLI (“Yungay” and “Chiu Chiu”), APXS (Chiu Chiu) and ChemCam LIBS (“Puya Raimondii”) and a smoother area with LIBS (“Liolaemus Tacnae”).

Across both plans, the ChemCam long-distance imager and camera teams were hard at work. In addition to near-field images, which focus on areas close to the rover, both Mastcam and ChemCam acquired several larger mosaics on the buttes on either side of us (“Mishe Mokwa” and “Cordillera”) and looking back to the small butte “La Linea.” Mastcam also took some mosaics documenting the “Chocolatal” scuff, which we analyzed last week, and a larger mosaic of the “Sullivan Field” sand field where Chocolatal is located. Sullivan Field contains sand ripples, mega ripples, and transverse aeolian ridges, and was named by the team in honor of the late Robert Sullivan, a world expert on Martian sands and cherished member of the Curiosity science team.

In parallel to all the geology activities, the environmental team planned their usual full schedule of monitoring activities, such as dust-devil movies, suprahorizon movies looking at the crater rim, and tau images, which look at dust in the atmosphere.

Navcam and Mastcam acquired images of the path ahead in our drive direction. The subtle bands can just about be picked out here, by looking at tonal differences. It will be very interesting to see how these look and vary from each other when we get close enough to each one.

A rover sits on the hilly, orange Martian surface beneath a flat grey sky, surrounded by chunks of rock.
NASA’s Curiosity rover at the base of Mount Sharp
NASA/JPL-Caltech/MSSS

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Sep 22, 2026

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Source: science.nasa.gov

NASA’s Hubble Seeks Lensed Supernova, Marks 200,000 Orbits

2 min read

NASA’s Hubble Seeks Lensed Supernova, Marks 200,000 Orbits

Several galaxies shine against black space, with a large cluster near center-left.
An image from NASA’s Hubble Space Telescope of galaxy cluster MACS J0417 is part of repeated observations to monitor for the reappearance of supernova Athena, which can help astronomers measure the expansion rate of the universe.
NASA, ESA, STScI, M. Pascale (UCLA); Image Processing: J. DePasquale (STScI)

NASA’s Hubble Space Telescope completed its 200,000th orbit around Earth on Sept. 19, marking another new milestone for an observatory that continues to transform our understanding of the universe.

Hubble has traveled more than 5 billion miles around Earth over its 36-year lifetime, exceeding 1.7 million total observations. An observation completed on the day of the 200,000th orbit pertains to one of Hubble’s defining scientific legacies: measuring the expansion rate of the universe, or the Hubble Constant. The image takes advantage of the telescope’s ability to return to the same regions of the sky over time to monitor for the reappearance of a supernova, or explosion of a star, called Athena.

Massive galaxy cluster MACS J0417, located at the left center of the image, acts as a gravitational lens, bending and magnifying light from objects far behind it. Light from a supernova can reach Earth along multiple paths, causing the same stellar explosion to appear more than once at times separated by months or even years depending on the path it took. Supernova Athena, discovered by NASA’s James Webb Space Telescope in 2025, is predicted to reappear between now and early March 2027. Measuring the timing of Athena’s reappearances can help researchers map the mass of MACS J0417, which acts as a magnifying, foreground lens for distant objects, and refine our understanding of the expansion rate of the universe.

After more than 36 years in space, Hubble still is reaching new heights of scientific productivity and impact. Hubble’s unique ability to observe and analyze light in ultraviolet and visible wavelengths complements NASA’s James Webb and Roman Space Telescopes’ capabilities. As a result, demand for Hubble observing time remains high as astronomers request about seven times as much observing time as is available each year.

Hubble continues to observe targets across every area of astronomy around the clock, with real-time tracking of those observations available on NASA’s website.

Media Contact:

Claire Andreoli
NASA’s Goddard Space Flight Center, Greenbelt, MD
[email protected]

Source: science.nasa.gov

NASA Aircraft to Make Low-Altitude Research Flights Over Colorado

A two-engine aircraft sitting in front of a hangar.
A photo of the Dynamic Aviation A200 aircraft, which will conduct low-flying research flights over farmland near Greeley, Colorado, to measure emissions in October 2026.
Dynamic Aviation

Agricultural emissions represent an important and understudied part of Earth’s land and atmosphere systems. The FarmFlux mission will deploy more than a dozen sensors to measure ozone, methane, ammonia, particulates, and other pollutants rising from agricultural lands and animal farms and the interaction with the Earth’s atmosphere. The mission is jointly led by NASA’s Goddard Space Flight Center in Greenbelt, Maryland; Colorado State University; and Boston University. 

The Colorado deployment is the first series of flights for the FarmFlux mission. Additional low-altitude research flights are scheduled over farmland in Amarillo, Texas, from late October to early November. For the March to July 2027 growing season, research flights with a NASA P-3 Orion aircraft are scheduled in the Midwest and California’s Central Valley with a focus on croplands. 

For more information about the FarmFlux mission, visit:

https://espo.nasa.gov/farmflux

By Sharon Teitelbaum

NASA’s Ames Research Center in California’s Silicon Valley

Source: www.nasa.gov

NASA’s Hubble Telescope Reaches Milestone, Looks for Elusive Supernova

Several galaxies shine against black space, with a large cluster near center-left.
An image from NASA’s Hubble Space Telescope of galaxy cluster MACS J0417 is part of repeated observations to monitor for the reappearance of supernova Athena, which can help astronomers measure the expansion rate of the universe.
NASA, ESA, STScI, M. Pascale (UCLA); Image Processing: J. DePasquale (STScI)

NASA’s Hubble Space Telescope captured this image of massive galaxy cluster MACS J0417 (left of center) on Sept. 19, 2026. This galaxy cluster acts as a gravitational lens, bending and magnifying light from objects far behind it. Supernova Athena, discovered by NASA’s James Webb Space Telescope in 2025, is predicted to reappear between now and early March 2027. Measuring the timing of Athena’s reappearances can help researchers map the mass of MACS J0417, which acts as a magnifying, foreground lens for distant objects, and refine our understanding of the expansion rate of the universe.

Hubble also completed its 200,000th orbit around Earth on Sept. 19, marking another new milestone for an observatory that continues to transform our understanding of the universe.

Read more about Hubble and this recent milestone.

Image credit: NASA, ESA, STScI, M. Pascale (UCLA); Image Processing: J. DePasquale (STScI)

Source: www.nasa.gov