An engineering model of NASA’s DAVINCI (Deep Atmosphere Venus Investigation of Noble gases, Chemistry, and Imaging) descent probe passed a key test that ran from Aug. 28 to Sept. 10, showing it can survive the extreme temperatures of Venus.
NASA/Mike Guinto
The engineering development unit for NASA’s DAVINCI (Deep Atmosphere Venus Investigation of Noble gases, Chemistry, and Imaging) probe is photographed prior to a major thermal evaluation.
The DAVINCI team put the yoga ball-sized vessel into a ceramic-lined chamber with heat-scorched walls and ratcheted up the temperature to 869 F, or 465 C, over the course of about an hour — the same pace the probe will heat up during its descent to the surface of Venus.
DAVINCI will study the origin, evolution, and present state of Venus in unprecedented detail to help determine whether it was once wet and habitable, like Earth.
A false-color satellite image shows the Gandak River before the flooding on September 20, 2026.
NASA Earth Observatory / Lauren Dauphin
A false-color satellite image shows the same area during the flooding on September 29, 2026. The river appears much wider.
NASA Earth Observatory / Lauren Dauphin
A false-color satellite image shows the Gandak River before the flooding on September 20, 2026.
NASA Earth Observatory / Lauren Dauphin
A false-color satellite image shows the same area during the flooding on September 29, 2026. The river appears much wider.
NASA Earth Observatory / Lauren Dauphin
September 20, 2026
September 29, 2026
Storms drenched Nepal’s mountainous Lumbini and Gandaki provinces with waves of torrential rain between September 24 and 27. The deluge, arriving late in the monsoon season, triggered landslides and pushed the Gandak River, also called the Narayani, to record levels in both Nepal and India.
With runoff streaming into the braided river system, water overtopped and breached embankments in several areas, inundating farmland and settlements along the river for hundreds of kilometers. As authorities assessed the full extent of the damage, news reports indicated that flooding and landslides had affected hundreds of villages and displaced thousands of people.
Images captured by MODIS (Moderate Resolution Imaging Spectroradiometer) on NASA’s Terra and Aqua satellites on September 20, 2026 (left), and September 29, 2026 (right), show the extent of the flooding. The false-color images combine observations of infrared and visible light (MODIS bands 7-2-1) to make it easier to distinguish the water. Floodwater appears blue; vegetation is bright green; clouds are light blue.
In many areas, water inundated seasonal fields on low-lying deposits of sand and silt within the river’s channel, called diara, where flooding is expected. However, it also breached embankments and flooded several settled areas, including parts of Bagaha, Areraj, and Fulia Khand.
Data from Nepal’s Department of Hydrology and Meteorology indicated that a gauge in Devghāṭ reached as high as 11.94 meters on September 27, the highest since measurements began there in the 1960s. According to news reports, gauges in India along the Gandak that set new high-water marks included Bagaha, Dumariaghat, Rewaghat, and Lalganj.
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NASA selected 16 companies to provide Enterprise Logistics Support Services under new agreements that will standardize requirements, improve reporting, and streamline the management of costs and resources.
The $1.4 billion blanket purchase agreements will support equipment and property management, transportation, disposal, product support, flight hardware support operations, equipment maintenance and repair, export control, move operations, flight hardware, and other material purchases.
Under the General Services Administration’s One Acquisition Solution for Integrated Services Plus multiple-award blanket purchase agreements, NASA has the discretion to use firm-fixed-price, time-and-materials, labor-hour, or hybrid contract types.
The five-year base ordering period begins Thursday and runs through Sept. 30, 2031. It is followed by three optional one-year ordering periods and a six-month option to extend.
The companies selected are:
Akima Facilities Operations
Akima Global Logistics
Alutiiq Operations Services LLC
ASR International Corporation
ASRC Federal Administrative Services LLC
ASRC Federal Professional Services LLC
IAP World Services Inc.
KBR Wylie Services LLC
Leidos Inc.
LogiCore Corporation
Prime Response Inc.
S&K Applied Solutions LLC
TechTrans International Inc.
Tetra Tech Inc.
TRAX International Corporation
Yulista Support Services LLC
For more information about NASA and its programs, visit:
In this Oct. 1, 2026, photo, a SpaceX Falcon 9 rocket and Dragon spacecraft launch from Space Launch Complex 40 at Cape Canaveral Space Force Station in Florida. The spacecraft is carrying NASA astronauts Jessica Watkins and Luke Delaney, CSA (Canadian Space Agency) astronaut Joshua Kutryk, and Roscosmos cosmonaut Sergey Teteryatnikov to the International Space Station for a long-duration science mission. They are expected to dock at the space station at 7 p.m. EDT.
NASA will stream Crew‑13’s arrival across multiple platforms. The agency’s live broadcast begins at 5:20 p.m. EDT. Learn where to watch at: https://www.nasa.gov/live
Artist’s rendering depicting astronauts, habitats, rovers, power systems, and cargo operations supporting sustained human activities at the Moon Base near the lunar South Pole.
Credit: NASA
NASA selected three new scientific investigations and their payload suites to advance our knowledge of the Moon and help pave the way for building humanity’s first lunar outpost, Moon Base.
The suite of science instruments and technologies was selected through NASA’s Payloads and Research Investigations on the Surface of the Moon (PRISM) program and will fly to the lunar surface using the CLPS (Commercial Lunar Payload Services) initiative as part of the agency’s Moon Base Program. The payloads will help researchers understand lunar resources, map natural shelters, and assess environmental hazards, laying the foundational groundwork for a safe and sustained human presence under the agency’s Artemis and Moon Base programs.
“NASA Science is building the ultimate interplanetary survival guide to ensure that science goes first to the lunar surface to provide our future astronaut crews with the vital information, resources, and safety precautions needed ahead of time to survive the night on the Moon,” said Nicky Fox, associate administrator, Science Mission Directorate, at NASA Headquarters in Washington. “These PRISM selections will directly help NASA minimize risks to our astronauts while maximizing our agency goals as we set up humanity’s first lunar outpost in preparation for sending the first astronauts to Mars.”
The three payload suites are:
Lunar Environment Monitoring Station – South Pole (LEMS-SP):
The autonomous LEMS-SP instrument suite will serve as a long-term environmental and hazard monitoring station. The instrument will be designed to help build a picture of the lunar environment by monitoring falling micrometeoroids and tracking the abundance of volatiles, or materials that can easily shift into gas, that drift into the Moon’s thin outer layer of gases. Using a short‑period seismometer to detect seismic events, the instrument could deliver the critical hazard assessments needed to ensure the physical safety of Moon Base hardware.
Principal Investigator: Dr. Mehdi Benna, University of Maryland, Baltimore County
Geophysical Investigation for Mapping Lunar Interior (GIMLI):
The GIMLI payload will be deployed at the Marius Hills Pit on the lunar surface to hunt for subterranean lava tubes and aid in our understanding of fundamental lunar volcanic processes. The payload will scan beneath the Moon’s surface to see whether the Marius Hills Pit leads into a large underground lava tube. If it does, these natural underground spaces could offer future astronauts ready‑made protection from extreme temperatures and harmful radiation — important groundwork for safe, long‑term living on the Moon. Confirming these void spaces now could shift future habitat planning, offering natural, ready-made shelters that provide crucial thermal stability and shielding from deadly ionizing radiation and micrometeoroid bombardment.
Principal Investigator: Dr. Nathaniel Putzig, Planetary Science Institute
Distribution of Ice and Surface Characteristics Observatory (DISCO):
The DISCO payload will provide the first direct, on-the-ground measurements of ice hidden in lunar micro-cold traps and also will lay the groundwork for lunar resource utilization and surface operations. The payload will study how the lunar surface behaves, from how rocket exhaust disturbs the ground to how stable it is for mobility, while also pinpointing where ice exists and how much of it is there. Together, this information will help NASA design safe surface operations and develop the technologies needed to turn ice into a usable resource for the future Moon Base.
Principal Investigator: Dr. Ariel Deutsch, NASA’s Ames Research Center in California’s Silicon Valley
“Each new PRISM selection strengthens our ability to deliver ambitious, transformative science to the lunar surface,” said Brad Bailey, director of the Exploration Science Strategy Integration Office in NASA’s Science Mission Directorate. “These investigations exemplify how Artemis and Moon Base are expanding the frontier of lunar exploration, advancing innovative technologies, deepening our understanding of the Moon’s environment, and paving the way for future astronaut missions.”
NASA is increasing its cadence of lunar missions to build a Moon Base, delivering science investigations and technology payloads that contribute to American scientific preeminence, strengthen a sustained presence on the Moon, and advance future human exploration.
NASA’s CLPS initiative supports the Moon Base Program, as the agency works with American companies to deliver scientific, exploration, and technology payloads to the Moon’s surface and orbit.
NASA has awarded Modulate Space Corporation a contract to develop key elements of a 5G communications system for use on the lunar surface with built-in Wi-Fi 6, for NASA’s Glenn Research Center in Cleveland.
This accelerated effort is organized into two primary work areas that together will develop a scalable, standards-based communications capability designed to support future Moon Base surface operations.
The 5G System and Lunar Surface Communications Evaluation and Radio Propagation Measurements contract is a firm-fixed-price contract with a value of approximately $38 million. The performance period for the 5G Network-in-a-Box Development and Lab Demonstration runs from Thursday, Oct. 1, through Jan. 31, 2028. The performance period for the Lunar 5G and Wi-Fi Integrated Surface Network and Flight Demonstration on the Lunar Surface runs from Monday, Nov. 30 through Dec. 31, 2028.
Through these demonstrations, NASA will acquire technology development of hardware, firmware, and software needed to advance the integrated lunar communications system. This effort will give NASA insight into the system architecture and operational performance while providing the flexibility needed to evolve the technology for future lunar surface communications.
For more information about NASA and agency programs, visit:
This long-duration image shows star trails above Earth and the blue lights of fishing boats and the yellow lights of Indonesian cities stretching below the International Space Station as it orbited 258 miles above the Banda Sea on Sept. 20, 2026.
In accordance with a contract on-ramp clause, NASA has added Blue Origin’s New Glenn 9×4 launch service to the NASA Launch Services (NLS) II contract. The New Glenn 9×4 launch service will be available to NASA’s Launch Services Program Office to use for future missions.
The NLS II contracts are multiple-award, indefinite-delivery/indefinite-quantity contracts with an ordering period through June 2030, and an overall period of performance through December 2032. The NLS II contracts include an on-ramp provision that provides an opportunity annually for new launch service providers to compete for future missions and allows existing contractors to introduce launch vehicles not currently on their NLS II contracts.
The NLS II contracts support the goals and objectives of the agency’s Human Spaceflight Mission Directorate, Science Mission Directorate, and the Research and Technology Mission Directorate. Under the contract, NASA also can provide launch services to other government agencies, such as the National Oceanic and Atmospheric Administration.
NASA’s Launch Services Program Office at the agency’s Kennedy Space Center in Florida manages the NLS II contracts. For more information about NASA visit:
The four members of NASA’s SpaceX Crew-13 mission to the International Space Station pose together for an official crew portrait. From left are Roscosmos cosmonaut Sergey Teteryatnikov, NASA astronauts Luke Delaney and Jessica Watkins, and CSA (Canadian Space Agency) astronaut Joshua Kutryk.
Credit: NASA/Bill Stafford
NASA will provide live coverage of prelaunch, launch, and docking activities for the agency’s SpaceX Crew‑13 mission to the International Space Station.
Live coverage will stream through a variety of platforms. Learn where to watch online:
Crew‑13 is scheduled to launch at 11:10 a.m. EDT, Thursday, Oct. 1, from Space Launch Complex 40 at Cape Canaveral Space Force Station in Florida, with docking planned for about 7 p.m. The SpaceX Dragon spacecraft will carry NASA astronauts Jessica Watkins and Luke Delaney, CSA (Canadian Space Agency) astronaut Joshua Kutryk, and Roscosmos cosmonaut Sergey Teteryatnikov to the International Space Station for a long-duration science mission.
Any events in person are only open to previously credentialed media. Call details are available to media upon request.
NASA’s Crew-13 mission coverage is as follows (all times Eastern and subject to change based on real-time operations):
Wednesday, Sept. 30
5 p.m.: Prelaunch news conference with the following participants:
Dr. Lori Glaze, associate administrator, Human Spaceflight Mission Directorate, NASA Headquarters
Dana Weigel, manager, Low Earth Orbit Program, NASA’s Johnson Space Center in Houston
Mathieu Caron, director, Astronauts, Life Sciences, and Space Medicine, CSA
William Gerstenmaier, vice president, Build and Flight Reliability, SpaceX
Arlena Moses, launch weather officer, Cape Canaveral Space Force Station’s 45th Weather Squadron
Media may ask questions in person and via phone. Limited auditorium space will be available for in-person participation. For the dial-in number and passcode, please contact the NASA Kennedy newsroom no later than one hour prior to the beginning of the news conference at: ksc-newsroom@mail.nasa.gov.
Thursday, Oct. 1
9:20 a.m.: Launch coverage begins
11:10 a.m.: Launch
Following the conclusion of launch coverage, NASA will provide audio-only discussions between Crew-13, the space station, and flight controllers during Dragon’s transit to the orbital complex.
12:45 p.m.: Postlaunch news conference with the following participants:
NASA Administrator Jared Isaacman
Dr. Lori Glaze, associate administrator, Human Spaceflight Mission Directorate, NASA Headquarters
Dana Weigel, manager, Low Earth Orbit Program, NASA Johnson
Mathieu Caron, director, Astronauts, Life Sciences, and Space Medicine, CSA
Julianna Scheiman, director, NASA Science and Dragon Programs, SpaceX
Media may ask questions in person and via phone. Limited auditorium space will be available for in-person participation. For the dial-in number and passcode, please contact the NASA Kennedy newsroom no later than one hour prior to the beginning of the news conference at: ksc-newsroom@mail.nasa.gov.
NASA’s live Crew-13 coverage returns with rendezvous and docking streaming on a variety of platforms. The planned 7-hour, 50-minute trip from launch to docking on Oct. 1 will be the fastest by a U.S. spacecraft in space station history.
5:20 p.m.: Arrival coverage begins
7 p.m.: Targeted docking to the forward-facing port of the station’s Harmony module
8:45 p.m.: Hatch opening followed by welcome remarks
All times are estimates and could be adjusted based on real-time operations after launch. Follow the space station blog for the most up-to-date operational information.
Once aboard the station, the crew members will conduct a brief handover with the agency’s SpaceX Crew-12 mission, which is expected to begin its return to Earth no earlier than Monday, Oct. 5. NASA will share additional details on Crew-12’s return after Crew-13’s arrival.
NASA will provide a live video feed of Space Launch Complex 40 approximately six hours prior to the planned liftoff of the Crew-13 mission. Pending unlikely technical issues, the feed will be uninterrupted until the prelaunch broadcast begins on NASA+, approximately two hours prior to launch. Once the feed is live, find it online at: http://youtube.com/kscnewsroom.
Media who need access to NASA live video feeds may subscribe to the agency’s media resources distribution list to receive daily updates and links.
Audio-only coverage
Launch audio also will be available on Launch Information Service and Amateur Television System’s VHF radio frequency 146.940 MHz and KSC Amateur Radio Club’s UHF radio frequency 444.925 MHz, FM mode, heard within Brevard County on the Space Coast.
Attend launch virtually
Members of the public may register to attend this launch virtually. NASA’s virtual guest program for this mission also includes curated launch resources, notifications about related opportunities or changes, and a stamp for the NASA virtual guest passport following launch.
NASA website launch coverage
Launch day coverage of the mission will be available on the NASA website. Coverage will include live streaming at 9:10 a.m. on Oct. 1, and blog updates as the countdown milestones occur.
On-demand streaming video and photos of the launch will be available shortly after liftoff. For questions about countdown coverage, contact the NASA Kennedy newsroom at 321-867-2468. Follow countdown coverage on the commercial crew blog.
Watch, engage on social media
Follow the Crew-13 mission on X, Facebook, and Instagram by following and tagging these accounts:
NASA has delivered on its goal of safe, reliable, and cost-effective transportation to and from the International Space Station from the United States through a partnership with American private industry. This partnership is opening access to low Earth orbit and the International Space Station to more people, more science, and more commercial opportunities. For more than 25 years, people have continuously lived and worked aboard the space station, advancing scientific knowledge and demonstrating new technologies that enable us to prepare for human exploration of the Moon as we prepare for Mars.
For more information about the Crew-13 mission, visit:
This infrared image from NASA’s Spitzer Space telescope shows a cloud of gas and dust carved out by a massive star. A drawing overlaid on the image reveals why researchers nicknamed this region the “Jack-o’-lantern Nebula.” Credit: NASA/JPL-Caltech
Credits: NASA/JPL-Caltech
The Ghoul
Located within the constellation Perseus lies a star called Algol, also known as ‘Demon Star’ or ‘The Ghoul’. You can spot this star during the autumn months, along with Cassiopeia and Andromeda in the northeastern sky, beginning after 9 PM. In Greek mythology, this star represents the ‘blinking eye’ of the gorgon Medusa. But how can a star blink?
Light curve of the eclipsing binary star Algol recorded by NASA’s Transiting Exoplanet Survey Satellite (TESS), stored on NASA’s Mikulski Archive for Space Telescopes (MAST).
NASA/Wikipedia Commons
Algol is a triple-star system, with two of the three stars orbiting one another. This eclipsing binary causes the system to go from a bright +2.1 magnitude to a slightly dimmer +3.4 magnitude about every three days. Using data from NASA’s Transiting Exoplanet Survey Satellite (TESS) mission, this light curve shows the regular dimming, or Medusa’s ‘blinking eye’!
Using the constellations Cassiopeia and Andromeda, locate Perseus. You can find Algol by using the star Almach as a guide.
Stellarium
There is no shortage of resources on how to calculate the dimming – or minima – of Algol, from interactive charts to data plots. Find the one that works best for you. Because it has a similar magnitude of brightness, you can compare Algol’s brightness to the nearby star Almach (Gamma Andromedae) in Andromeda using a small telescope or binoculars.
Witch Head Nebula
Between the Eridanus and Orion constellations lies a spooky silhouette, illuminated by the star Rigel. IC 2118, or the Witch Head Nebula, is a reflection nebula about 900 light-years away from Earth. Because reflection nebulae rely on nearby starlight to appear visible, they can be difficult to see with the naked eye, especially if they are as far away as this one. While the Witch Head Nebula can’t be seen with the naked eye, telescopes with very large apertures and low magnification make it easier to catch under dark skies. Astrophotographers, with or without smart telescopes, can image this haunting outline within a few hours, depending on equipment and sky quality. And what is a witch without their broom! You can find the Witch’s Broom in the Western Veil Nebula, located in the constellation Cygnus.
An infrared portrait of the Witch Head nebula from NASA’s Wide-field Infrared Survey Explorer, or WISE, shows billowy clouds where new stars are brewing.
NASA/JPL-Caltech
Want more tips for getting into the season? Read our article on how you can make some spooky sidewalk astronomy fun for your community with Trick or Treat: Sidewalk Astronomy!