Planet Mars Images: July 30-Aug. 4, 2026 | NASA's Curiosity Rover
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Planet Mars Images: July 30-Aug. 4, 2026 | NASA's Curiosity Rover
Watching our Cosmic Neighborhood from Chile's Atacama Desert | ESO
This shows the stunning night sky above three of the Auxiliary Telescopes (ATs) at the European Southern Observatory’s Paranal Observatory, in Chile’s Atacama Desert. Conditions at the site make it one of the best places on Earth for astronomical observations with the band of the Milky Way, as well as the Large and Small Magellanic Clouds, visible to the naked eye.
The Large and Small Magellanic Clouds are satellite galaxies that orbit the Milky Way, at distances of about 160,000 and 200,000 light-years, respectively. They are irregular dwarf galaxies, gravitationally bound to our more massive home galaxy. The Small Magellanic Cloud and the lowest part of the Milky Way appear here bathed in green airglow, very faint light emitted by oxygen atoms high up in the atmosphere.
While only three telescopes are pictured in this image, there are, in total, four ATs feeding light into the Very Large Telescope Interferometer (VLTI). These telescopes, each with a 1.8-meter main mirror, can be moved along tracks to thirty observing points. They all look at the same target, creating a single ‘virtual’ telescope the size of the separation between the telescopes. These separate views allow the VLTI to discern varying levels of detail. Among other breakthroughs, the ATs have taken the first close-up picture of a star outside our galaxy—WOH G64, a red supergiant star in the Large Magellanic Cloud.
Image Description: This image shows three white Auxiliary Telescopes, at the bottom of the frame. In the background, in blue and green colors, and yellow and red towards the horizon, the night sky is full of stars with the white Milky Way band vertically in the middle of the picture. On its right, the two white Magellanic clouds can be seen.
Chile, officially the Republic of Chile, is a country in the Southern Cone of western South America. It is the southernmost country in the world and the closest to Antarctica, extending along a narrow strip of land between the Andes Mountains and the Pacific Ocean. Chile shares borders with Peru to the north, Bolivia to the northeast, Argentina to the east, and the Drake Passage to the south. It also administers several Pacific islands, including Juan Fernández, Isla Salas y Gómez, Desventuradas, and Easter Island, and claims about 1,250,000 square kilometers (480,000 sq mi) of Antarctica as the Chilean Antarctic Territory.
#NASA #Astronomy #Space #Science #Earth #Airglow #Stars #Galaxies #MilkyWayGalaxy #LMCGalaxy #SMCGalaxy #IrregularGalaxies #Constellations #Cosmos #Universe #VLT #ParanalObservatory #AuxiliaryTelescopes #ATs #VLTI #AtacamaDesert #Chile #Europe #STEM #Education
Lenticular Galaxy NGC 1947 in Dorado: Faint Remnant Threads | Hubble
Residing around 40 million light-years away from Earth, this galaxy shows off its structure by backlighting its remaining faint gas and dust disc with millions of stars. In this picture, taken with the NASA/European Space Agency Hubble Space Telescope, the faint remnants of the galaxy’s spiral arms can still be made out in the stretched thin threads of dark gas encircling it. Without most of its star-forming material, it is unlikely that many new stars will be born within NGC 1947, leaving this galaxy to continue fading with time.
#NASA #ESA #Hubble #Astronomy #Space #Science #Stars #Galaxies #NGC1947 #LenticularGalaxies #DoradoConstellation #Cosmos #Universe #HST #HubbleSpaceTelescope #GSFC #STScI #UnitedStates #Europe #STEM #Education
Ready. Set. Spacewalk: Spacesuit Preparation Steps | International Space Station
This timelapse was published on social media by European Space Agency astronaut Sophie Adenot of France, currently an Expedition 75 flight engineer aboard the International Space Station, with the following caption:
Day 167 orbit 2587—"Movies sometimes make it look easy to put on a spacesuit and head outside the spaceship. In reality, getting two astronauts and their spacesuits ready for the vastly hostile environment just beyond the Station takes a looooong time. It requires hours of carefully rehearsed procedures, precise gestures, and endless checks to make sure everything is ready before the hatch opens."
"For this EVA-95, I had the privilege of leading the intravehicular (IV) operations, and I couldn't be happier of how well we worked together. While strictly following all procedures, we still managed to get Jessica and Chris into the airlock about 30 minutes ahead of schedule. That may not sound like much, but for the crew members in the suit, it’s 30 minutes of energy saved for the EVA marathon ahead, a huge advantage!"
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.
U.S. Spacewalk 97 Animation: Astronauts Meir & Menon | International Space Station
On Thursday, August 6, 2026, Expedition 75 flight engineers and NASA astronauts Jessica Meir and Anil Menon will conduct the first of a set of three U.S. spacewalks planned for the International Space Station (ISS). Meir and Menon will install hardware to prepare for installation of the next ISS Roll-Out Solar Array (iROSA). It will be the seventh of eight iROSAs to be installed over existing solar arrays to boost electrical power on the ISS. This is Meir’s sixth spacewalk and Menon’s first. The other August spacewalks are scheduled for August 13 and August 25. NASA astronaut Jessica Meir is also an Expedition 75 station commander.
This animation previews an upcoming spacewalk outside the International Space Station targeted for August 13 to replace a Space-to Ground antenna on the orbital complex. The antenna is a critical communication system NASA uses to transmit data and high-speed communications between the Mission Control Center in Houston and the space station. Naomi Plouse, spacewalk officer, narrates this animation. NASA will share additional details about U.S. spacewalk 97, including timing, assigned crew members, and coverage information, closer to each operation.
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.
Rare Planetary Parade over Kitt Peak National Observatory in Arizona
A planetary conjunction occurs when two planets appear close together in the sky along the ecliptic, though they remain millions of miles apart in space. The ecliptic is the apparent path of the Sun across the celestial sphere over the course of a year, forming the plane of Earth's orbit and serving as a key reference in astronomy.
Kitt Peak National Observatory is located on Kitt Peak in the Quinlan Mountains, 56 miles southwest of Tucson, Arizona, on the Tohono O’odham Nation. With more than twenty optical and two radio telescopes, it is one of the largest gatherings of astronomical instruments in the Earth's northern hemisphere.
Kitt Peak National Observatory was founded in 1958. It is home to what was the largest solar telescope in the world, and many large astronomical telescopes of the late 20th century in the United States. The observatory was administered by the National Optical Astronomy Observatory (NOAO) from the early 1980s until 2019, after which it was overseen by NOIRLab.
Planet Mars: Dust Storm in South Polar Region | Europe's Mars Express Orbiter
Dust storms like this one start close to the ground and are spread by wind as they rise—warming the cold Martian atmosphere. A fleet of orbiting spacecraft monitor Martian dust storms. They serve as lifelines to Earth by relaying data from the rovers and lander on the ground back to science teams. There is evidence of extensive frozen water in Mars' south polar region. This polar region contains enough frozen water to cover the entire planet in a liquid layer approximately 11 meters (36 feet) deep. The Mars Express orbiter's radar instrument has made more than 300 virtual slices through layered deposits covering the pole to map the ice. The radar sees through icy layers to the lower boundary that is as deep as 3.7 kilometers (2.3 miles) below the surface.
"The south polar layered deposits of Mars cover an area bigger than Texas. The amount of water they contain has been estimated before, but never with the level of confidence this radar makes possible," said Jeffrey Plaut of NASA's Jet Propulsion Laboratory, Pasadena California.
The European Space Agency's Mars Express Mission (2003-2026) was launched on June 2, 2003, from Baikonur, Kazakhstan, aboard a Russian Soyuz rocket with a Fregat upper stage. In addition to being Europe’s first mission to Mars, Mars Express is the first fully European mission to any planet. The orbiter has been successfully performing scientific measurements since early 2004, namely, high-resolution imaging and mineralogical mapping of the surface, radar sounding of the subsurface structure down to the permafrost, precise determination of the atmospheric circulation and composition, and study of the interaction of the atmosphere with the interplanetary medium. Due to the valuable science return and the highly flexible mission profile, Mars Express has been granted several mission extensions.
Image created processing data from: psa.esa.int
#NASA #ESA #Space #Astronomy #Science #Planet #Mars #SouthPole #DustStorms #WaterIce #Geology #MarsExpress #MarsExpressSpacecraft #MarsOrbiters #HRSC #Europe #DLR #FUBerlin #Berlin #Germany #Deutschland #CitizenScience #AndreaLuck #CitizenScientists #STEM #Education
NASA & SpaceX Advance Wind Tunnel Tests for Starship's Super Heavy Booster V3
NASA and its industry partners are preparing for next year’s Artemis III demonstration mission by completing new wind tunnel tests on SpaceX’s Super Heavy Version 3 rocket booster. The tests, conducted at NASA’s Ames Research Center in California’s Silicon Valley, focused on better understanding the extreme aerodynamic forces the rocket can experience during re-entry. The recent test series builds on previous testing completed at NASA Ames in 2024.
NASA is working with SpaceX to develop the company’s Starship Human Landing System (HLS) to safely carry astronauts from lunar orbit to the Moon’s surface and back. The upgraded Super Heavy rocket booster is part of SpaceX’s Starship launch system. Version 3 of Starship and Super Heavy is expected to be the basis for the Starship HLS for Artemis III in 2027 and a later crewed lunar landing in 2028.
Although Starship HLS is a lunar lander designed and built by SpaceX, NASA collaborates with commercial companies to provide access to specialized testing facilities, like the wind tunnels at NASA Ames, and technical expertise, such as the team that set up the wind tunnel testing and helped analyze the results.
“NASA has a lot of experience with unsteady aerodynamics,” said Manish Mehta, discipline lead engineer for the HLS Plume and Aero Environments team, NASA’s Marshall Space Flight Center in Huntsville, Alabama. “We used the agency’s broad experience base of conducting wind tunnel tests for the space shuttle, the Space Launch System (SLS) rocket, and Orion spacecraft to efficiently set up and analyze the wind tunnel testing for the Super Heavy Version 3. In fact, similar testing at the Ames Unitary Plan Wind Tunnel resulted in adding strakes to SLS for Artemis II, so what we learned for Artemis II is helping us get to Artemis III and beyond.”
With significant changes to Super Heavy, NASA and SpaceX engineers wanted more information about the steady and unsteady aerodynamic forces the rocket will experience during atmospheric re-entry as it returns to the launch site for refurbishment and re-use.
“When a rocket, or an airplane, flies through air at high speed, it’s subjected to steady aerodynamic forces and moments, and unsteady aerodynamic forces and moments,” explained Jayanta Panda, unsteady aerodynamics subject matter expert at NASA Ames and part of the Human Landing System Plume and Aero Environments team. “An example of a steady aerodynamic force would be when air smoothly flows over the surface of the rocket as it ascends. An unsteady aerodynamic force would be air ‘buffeting,’ or hitting, certain areas the rocket at less predictable times and potentially causing vibrations.”
“Resulting wind tunnel data on steady forces and moments helps predict how the rocket will react to forces in the atmosphere during re-entry so the flight software can effectively guide the rocket during flight,” Mehta said. “The unsteady pressure data helps engineers understand the environment around the rocket as it re-enters Earth’s atmosphere. Engineers use that information as one input into software that analyzes loads on the rocket.”
Through the Artemis program, NASA is returning humans to the Moon for scientific discovery, economic opportunity, to establish an enduring human presence on the lunar surface, and build the foundation for the first crewed missions to Mars—for the benefit of all.
To learn more about Artemis, visit: https://www.nasa.gov/artemis
A Memorable Aurora Australis | International Space Station
Expedition 75 flight engineer and NASA astronaut Anil Menon: "I’ll never forget this sight. Tonight I saw my first aurora from space. Luckily, there is a video to help remember and captured it perfectly. The KP index was over 5 tonight because of a solar event and the sky over Australia lit up and the green snaked across the atmosphere. I was filled with awe and gratitude. It’s a beautiful planet we share."
This is Anil Menon's first spaceflight mission after he was selected as part of NASA’s 2021 astronaut class.
Also 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.
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.
Planet Earth: Pacific Ocean view | International Space Station
Expedition 75 flight engineer and NASA astronaut Anil Menon: "The Pacific Ocean this morning from the cupola . . ."
This is Anil Menon's first spaceflight mission after he was selected as part of NASA’s 2021 astronaut class. Among the hundreds of experiments planned during his mission, he will participate in studies to better understand astronaut vein structure, blood flow, and blood composition in microgravity. He also will test producing intravenous fluids using the space station’s potable water.
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.
Credit: NASA's Johnson Space Center/A. Menon
Date: Aug. 2, 2026
NASA Astronaut Deniz Burnham: Training in Russia for International Space Station
NASA astronaut Deniz Burnham will embark on her first mission to the International Space Station, serving as an Expedition 76 flight engineer. Burnham will launch aboard the Roscosmos Soyuz MS-30 spacecraft with cosmonauts Dmitri Petelin and Konstantin Borisov of Russia. Launch is targeted for March 2027, from the Baikonur Cosmodrome in Kazakhstan, and the trio will spend about seven months aboard the orbiting laboratory.
During her expedition, Burnham will conduct scientific investigations and technology demonstrations to help prepare humans for future exploration missions to the Moon and Mars and to help benefit people on Earth.
Selected as a NASA astronaut in 2021, Burnham graduated with the agency’s 23rd astronaut class in 2024. Born at Incirlik Air Base in Adana, Turkey, Burnham moved frequently while growing up in a military family. She was living in Wasilla, Alaska, at the time of her selection.
A former intern at NASA’s Ames Research Center in California’s Silicon Valley, Burnham earned a bachelor’s degree in chemical engineering from the University of California, San Diego, and a master’s degree in mechanical engineering from the University of Southern California in Los Angeles. An experienced leader in the energy industry, she spent more than a decade managing onsite drilling operations on oil rigs across North America. Burnham also served in the U.S. Navy Reserves as an engineering duty officer. She is a licensed private pilot with ratings for airplane single engine land and sea, instrument airplane, and rotorcraft-helicopter.
NASA Astronaut Deniz Burnham: First International Space Station Mission via Russia
NASA astronaut Deniz Burnham will embark on her first mission to the International Space Station, serving as an Expedition 76 flight engineer. Burnham will launch aboard the Roscosmos Soyuz MS-30 spacecraft with cosmonauts Dmitri Petelin and Konstantin Borisov of Russia. Launch is targeted for March 2027, from the Baikonur Cosmodrome in Kazakhstan, and the trio will spend about seven months aboard the orbiting laboratory.
During her expedition, Burnham will conduct scientific investigations and technology demonstrations to help prepare humans for future exploration missions to the Moon and Mars and to help benefit people on Earth.
Selected as a NASA astronaut in 2021, Burnham graduated with the agency’s 23rd astronaut class in 2024. Born at Incirlik Air Base in Adana, Turkey, Burnham moved frequently while growing up in a military family. She was living in Wasilla, Alaska, at the time of her selection.
A former intern at NASA’s Ames Research Center in California’s Silicon Valley, Burnham earned a bachelor’s degree in chemical engineering from the University of California, San Diego, and a master’s degree in mechanical engineering from the University of Southern California in Los Angeles. An experienced leader in the energy industry, she spent more than a decade managing onsite drilling operations on oil rigs across North America. Burnham also served in the U.S. Navy Reserves as an engineering duty officer. She is a licensed private pilot with ratings for airplane single engine land and sea, instrument airplane, and rotorcraft-helicopter.
Noctilucent Clouds over The Bering Sea & Central Alaska | Earth Science
Astrophotographer Jared Aicher: "The evening sky over the Bering Sea and central Alaska was completely veiled by noctilucent clouds last night. The view from the flight deck lasted for a couple of hours as the sunset slowly turned to sunrise with nightfall never actually arriving at 63 degrees north latitude."
At high latitudes in the summer months, iridescent clouds form in a part of the atmosphere roughly 50 to 86 kilometers (30 to 54 miles) above the surface of our planet. Their high altitude allows them to reflect sunlight after the Sun has set. These are called noctilucent or polar mesospheric clouds.
Noctilucent clouds (NLCs), or night shining clouds are tenuous cloud-like phenomena in the upper atmosphere. They consist of ice crystals and from the ground are only visible during astronomical twilight. Noctilucent roughly means "night shining" in Latin. They are most often observed during the summer months from latitudes between ±50° and ±70°. Too faint to be seen in daylight, they are visible only when the observer and the lower layers of the atmosphere are in Earth's shadow while these very high clouds are still in sunlight. Recent studies suggest that increased atmospheric methane emissions produce additional water vapor through chemical reactions once the methane molecules reach the mesosphere—creating, or reinforcing existing, noctilucent clouds.
The Bering Sea is a marginal sea of the Northern Pacific Ocean. It forms, along with the Bering Strait, the divide between the two largest landmasses on Earth: Eurasia and the Americas. It comprises a deep water basin that then rises through a narrow slope into the shallower water above the continental shelves. The Bering Sea is named after Vitus Bering, a Danish-born Russian navigator, that in 1728, was the first European to systematically explore it, sailing from the Pacific Ocean northward to the Arctic Ocean.
Alaska is a non-contiguous U.S. state on the northwest extremity of North America. Part of the Western United States region, it is one of the two non-contiguous U.S. states, alongside Hawaii. Alaska is considered to be the northernmost, westernmost, and easternmost state in the United States. It borders the Canadian territory of the Yukon and the province of British Columbia to the east. It shares a western maritime border in the Bering Strait with Russia. The Chukchi and Beaufort Seas of the Arctic Ocean lie to the north, and the Pacific Ocean lies to the south.
A Fire Rainbow over West Virginia | Earth Science
What's happening to this cloud?
Ice crystals in a distant cirrus cloud are acting like little floating prisms. Known informally as a fire rainbow for its flame-like appearance, a circumhorizon arc appears parallel to the horizon. For a circumhorizontal arc to be visible, the Sun must be at least 58 degrees high in a sky where cirrus clouds present below—in this case cirrus fibratus. The numerous, flat, hexagonal ice-crystals that compose the cirrus cloud must be aligned horizontally to properly refract sunlight in a collectively similar manner. Therefore, circumhorizontal arcs are somewhat unusual to see. The featured fire rainbow was photographed in 2021 near North Fork Mountain in West Virginia, USA.
West Virginia is a mountainous, landlocked state in the Southern and Mid-Atlantic regions of the United States. It is bordered by Pennsylvania and Maryland to the northeast, Virginia to the southeast, Kentucky to the southwest, and Ohio to the northwest.
Shenzhou-23 Crew Advances Multi-generational Rice Cultivation | China Space Station
More than two months after arriving at China's Tiangong Space Station, the three astronauts of the Shenzhou-23 spaceflight mission—Zhu Yangzhu, Zhang Zhiyuan, and Lai Ka-ying—are all in good condition and have made steady progress on multiple space science experiments, including a groundbreaking study on multi-generational rice cultivation in microgravity.
Launched on May 24, the Shenzhou-23 spacecraft carried rice seeds and other experimental materials to the Tiangong Space Station.
After over two months of careful cultivation, the crew successfully harvested the first batch of rice samples.
The experiment aims to achieve the first-ever continuous cultivation of two generations of rice in orbit, completing two full life cycles "from seed to seed to seed," to study how long-term microgravity affects the molecular mechanisms and genetic stability of rice.
In the field of space medicine, the crew used ultrasound diagnostic equipment to conduct bilateral carotid, radial, and dorsalis pedis artery ultrasound examinations. The collected data will support research projects including pan-vascular hemodynamic profiling and spatiotemporal evolution mapping of blood flow.
The astronauts also carried out experiments related to light environment factors, adjusting and intervening in the cabin's lighting conditions and conducting performance tests before and after modifications to investigate how light environments in special space settings affect human psychological perception and work efficiency.
Last week, the crew completed emergency rescue training in orbit as scheduled, conducting emergency evacuation drills under simulated fire conditions to reinforce their emergency response and fault handling capabilities.
For health management, the crew completed multiple medical examinations including electrocardiography, vision tests, intraocular pressure measurements, and fundus examinations.
They used a "space body mass measuring device" to measure body mass in orbit, comprehensively monitoring physiological changes in microgravity.
The astronauts also actively engaged in physical exercise using space treadmills and other equipment.
Interstellar Comet 3I/ATLAS | Vera C. Rubin Observatory—LSST Camera
The faint coma and tail glow of comet 3I/ATLAS were captured by the National Science Foundation–Department of Energy Vera C. Rubin Observatory, jointly funded by the U.S. National Science Foundation (NSF) and the U.S. Department of Energy's Office of Science (DOE/SC), on December 19, 2025. Comet 3I/ATLAS is only the third known visitor from another star system to pass through our Solar System. The comet reappeared from behind the Sun in November 2025 after spending several weeks out of view from Earth. By the time of this observation, the object was at its closest point to Earth on its outward journey toward interstellar space. Rubin incidentally imaged this object months earlier during testing activities, before it was identified as an interstellar comet.
What makes this NOIRLab image special is the amount of detail captured in a single 30-second exposure. Usually, revealing the faint glow of a comet’s tail requires a much longer exposure—one that would show the background stars and galaxies as blurry streaks. However, Rubin’s light-collecting power and highly sensitive LSST Camera capture the comet’s delicate tail in just 30 seconds while keeping the distant background objects crisp and clear.
Objects like 3I/ATLAS are rare and scientifically valuable. Unlike the common comets and asteroids that formed alongside our Sun, interstellar objects were formed in other planetary systems. At a point in their distant past, they were ejected from their home systems by gravitational interactions. After being cast out, these objects travel through interstellar space, occasionally passing through another planetary system like our own. When they appear in our neighborhood, they give scientists a rare opportunity to study material formed around other stars—assuming we can catch a glimpse of them while they are close by.
This is where the Rubin Observatory shines. Unlike telescopes that focus on individual targets or small regions of space, Rubin is a survey telescope that repeatedly scans large portions of the sky. With its extremely wide field of view and ability to detect very faint light sources, Rubin catches dim, moving objects that might otherwise go unnoticed. Additionally, Rubin sends out an alert for every change it detects, so scientists can be on the lookout for unusual objects moving through our Solar System.
With Rubin data, researchers expect to discover many more interstellar visitors passing through our neighborhood, each carrying clues about the processes that shape planets and small bodies around other stars. Studying these objects in greater numbers will help scientists better understand how planetary systems, including our own, form and evolve.