Thursday, 8 October 2026

NASA’s SpaceX 35th Commercial Resupply Mission Overview

NASA’s SpaceX 35th commercial resupply mission will launch on the company’s Dragon spacecraft on the SpaceX Falcon 9 rocket to deliver research and supplies to the International Space Station.
NASA’s SpaceX 35th commercial resupply mission will launch on the company’s Dragon spacecraft on the SpaceX Falcon 9 rocket to deliver research and supplies to the International Space Station.
NASA

NASA and SpaceX are targeting no earlier than Tuesday, Oct. 13 to launch scientific investigations, supplies, and equipment to the International Space Station. 

Loaded with more than 6,300 pounds of supplies, the SpaceX Dragon spacecraft will lift off aboard the company’s Falcon 9 rocket from Space Launch Complex 40 at Cape Canaveral Space Force Station in Florida. Following its arrival to the orbital complex, Dragon will autonomously dock to the space-facing port of the space station’s Harmony module. 

NASA will stream launch and docking coverage through a variety of platforms. Learn where to watch online:

https://www.nasa.gov/live

NASA’s SpaceX 35th commercial resupply mission will launch from Launch Complex 40 at Cape Canaveral Space Force Station in Florida.
NASA’s SpaceX 35th commercial resupply mission will launch from Launch Complex 40 at Cape Canaveral Space Force Station in Florida.
NASA

For more than 25 years, the International Space Station has supported research by scientists from more than 110 countries, enabling more than 4,000 experiments in microgravity. Research conducted aboard the station helps advance long-duration missions to the Moon as part of the Artemis program and to Mars, while also providing multiple benefits to humanity.

Science Highlights

In addition to cargo for the crew aboard the space station, Dragon will deliver several new science experiments, including:

Lambda-Vision-1 studies artificial retinas in microgravity and could help patients with incurable retinal diseases on Earth.
Lambda-Vision-1 studies artificial retinas in microgravity and could help patients with incurable retinal diseases on Earth.
NASA

With LambdaVision-1, NASA is testing how to manufacture artificial eye retinas in microgravity, building them one thin layer at a time. Reduced settling in microgravity may create more uniform, stable layers, potentially improving implants’ performance. These artificial retinas could help restore vision for patients with currently incurable retinal diseases on Earth.

Stellar Spheroids examines growth and function of 3D heart tissues models in microgravity. Credit: NASA
Stellar Spheroids examines growth and function of 3D heart tissues models in microgravity. Credit: NASA
NASA

NASA will use the Stellar Spheroids experiment to study how microgravity affects the growth and function of 3D human heart tissue models. Researchers will assess whether microgravity improves the formation of advanced vascular networks. Results could help researchers develop more realistic heart tissue models for disease research and support larger‑scale drug testing on future space missions.

ELF-Unconventional Glass 2 studies how glass forms in microgravity when made from non-traditional elements.
ELF-Unconventional Glass 2 studies how glass forms in microgravity when made from non-traditional elements.
NASA

Using non-traditional elements, ELF-Unconventional Glass 2 studies how glass forms in microgravity. Researchers will observe molten behavior in space, then return solid samples to Earth for detailed analysis. These unconventional glasses could offer higher strength, improved optical capabilities, and greater durability for spacecraft, habitats, and other exploration technologies.

MINDS seeks to reveal new targets to treat diseases like Alzheimer’s, Parkinson’s, and multiple sclerosis.
MINDS seeks to reveal new targets to treat diseases like Alzheimer’s, Parkinson’s, and multiple sclerosis.
NASA

The MINDS experiment studies brain organoids to better understand inflammation linked to neurodegenerative diseases. The investigation uses “organoid villages,” which combine cells from multiple people to better represent patient diversity. Results could help identify new treatment targets for diseases like Alzheimer’s, Parkinson’s, and multiple sclerosis.

Arrival and Return

NASA astronauts Anil Menon and Jessica Watkins will monitor the arrival of the SpaceX Dragon cargo spacecraft from the International Space Station.
NASA astronauts Anil Menon and Jessica Watkins will monitor the arrival of the SpaceX Dragon cargo spacecraft from the International Space Station.
NASA

NASA astronauts  Anil Menon and Jessica Watkins will monitor the Dragon spacecraft’s arrival. It will remain docked to the orbiting laboratory for about a month before splashing down in the Pacific Ocean, returning critical science and hardware to teams on Earth. 

Cargo Highlights

NASA’s SpaceX 35th commercial resupply mission will launch on the company’s Dragon spacecraft on the SpaceX Falcon 9 rocket to deliver research and supplies to the International Space Station
NASA’s SpaceX 35th commercial resupply mission will launch on the company’s Dragon spacecraft on the SpaceX Falcon 9 rocket to deliver research and supplies to the International Space Station
NASA

Launch 

International Space Station Roll-Out Solar Arrays (IROSA) – The final pair of IROSAs that will be installed on the space station, completing the augmentation of its power system to support critical operations, including its safe and controlled deorbit.

Collapsible Continency Urinal and supporting hardware – A demonstration and test unit supporting NASA’s Artemis III mission.  

Canadarm2 joint flight support equipment – A large foam clamshell will fly empty to return the failed robotic arm joint that was replaced during a June 30 spacewalk. After its return to Earth, teams will analyze the joint on the ground.

Additional equipment launching includes a toilet dose pump, a toilet pretreat quality sensor, and a robot micro-conical tool used for space station maintenance and utilization tasks with external replacement units and payloads.

Return

When Dragon returns in mid‑November, it will bring back the failed joint on the Canadarm2 for analysis and refurbishment, a spacesuit for ground refurbishment, a fluid- and pressure-control pump assembly from the urine processor, and a filtration unit for the water processor assembly. 



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Wednesday, 7 October 2026

Arctic Sea Ice Shrinks to Its 2026 Minimum

A map of the shows sea ice in September 2026 covering a smaller area than the 1981–2010 median, which is outlined in yellow.
Arctic sea ice reaches its annual minimum extent on September 12, 2026, tying several past years for the 10th-lowest minimum in the satellite record.
NASA Earth Observatory/Michala Garrison

This story is an update to the Arctic sea ice feature in our World of Change series, which tracks long-term change on Earth’s surface through satellite imagery.

A layer of frozen seawater caps the Arctic Ocean. This sea ice grows through the long polar winter, usually peaking in March, then melts through the summer to its annual low in September. It is a natural fluctuation that has persisted for millennia. But satellite records show the ice now covers less of the Arctic Ocean at its annual maximum and minimum than it did a few decades ago.

Sea ice in 2026 reached its annual minimum extent on September 12 (above), when it covered an estimated 4.6 million square kilometers (1.78 million square miles), according to NASA and the National Snow and Ice Data Center (NSIDC). That ties 2008, 2010, and 2025 for the 10th-lowest minimum in the satellite record.

The maps below pair each September since 1990 (left), around the ice’s annual minimum, with the following March (right), near its annual maximum, through March 2026.

Lower Lows, Thinner Ice

Scientists have used satellites to observe the annual growth and retreat of Arctic sea ice continuously since late 1978. While sea ice extent has declined overall during that time, the downward trend steepened in the 2000s and set off a run of record and near-record lows. Each of the past 20 summers, from 2007 through 2026, ranks among the 20 lowest minimum extents in the satellite record. The lowest occurred in September 2012.

More recently, the September sea ice extent has been relatively steady. Weather can make a big difference in how much ice melts from one summer to the next. For example, over the past decade, increased cloud cover has prevented sunlight from accelerating the melt, according to NASA scientists. Despite this recent plateau, the summer minimum remains well below the long-term average.

Across the Arctic, the ice that remains is younger and thinner. Observations show a decline in multiyear ice—that which survives at least one melt season—leaving an Arctic dominated by thinner first-year ice. Winter ice is also shrinking. The March 2026 maximum statistically tied the 2025 maximum for the lowest in the satellite record.

A line chart of Arctic sea ice extent shows the 1981–2010 average as a blue dashed line, 2012 (the record-low minimum year) in orange, and 2026 in red. The 2026 line stays below the average and peaks in March at a level that tied 2025 for the lowest maximum on record.

Cycles of natural variability such as the Arctic Oscillation are known to play a role in Arctic sea ice extent, but the decline observed throughout the satellite record cannot be explained by natural variability alone. Natural variability and rising global temperatures have worked together to melt greater amounts of Arctic sea ice. Scientists have projected an essentially ice-free Arctic could occur at least once before the middle of the 21st century.

Seeing Through the Clouds

To determine sea ice extent, scientists rely on satellites with passive microwave sensors that measure the microwave energy Earth naturally emits. Sea ice emits more of this energy than open water, so it stands out in microwave images. Because microwaves pass through clouds, the satellites can observe sea ice regularly, regardless of weather.

The record began in 1978 with data collected by NASA’s Nimbus-7, followed by Defense Meteorological Satellite Program (DMSP) satellites starting in 1987 and NASA’s Aqua satellite between 2002 and 2011. Starting in 2025, scientists began using observations from the Japan Aerospace Exploration Agency’s GCOM-W satellite. The white circle at the center of each image is the “pole hole,” north of which satellite sensors have historically been unable to collect data. The sea ice estimates assume that this hole is ice-filled.

NASA Earth Observatory images by Michala Garrison, using data from the National Snow and Ice Data Center.

Downloads

A map of the shows sea ice in September 2026 covering a smaller area than the 1981–2010 median, which is outlined in yellow.

September 12, 2026

JPEG (3.32 MB)

References & Resources

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NASA’s SpaceX 35th Commercial Resupply Mission Overview

NASA’s SpaceX 35th commercial resupply mission will launch on the company’s Dragon spacecraft on the SpaceX Falcon 9 rocket to deliver resea...