Curiosity Blog, Sols 4636-4637: Up Against a Wall

Curiosity Blog, Sols 4636-4637: Up Against a Wall

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Curiosity Blog, Sols 4636-4637: Up Against a Wall

A grayscale photo from the Martian surface shows rocky, uneven terrain in medium gray. Part of the Curiosity rover fills most of the bottom half of the image, brightly lit in some places and shadowed in others. In front of it, visible in the upper right corner of the image, a virtual wall composed of stacked, jagged, horizontal layers of stone; this abutment appears to block the rover’s path.
NASA’s Mars rover Curiosity acquired this image, showing itself parked at the wall of a fracture named “Río Frío.” Curiosity used its Left Navigation Camera on Aug. 19, 2025 — Sol 4634, or Martian day 4,634 of the Mars Science Laboratory mission — at 14:51:33 UTC.
NASA/JPL-Caltech

Written by Michelle Minitti, MAHLI Deputy Principal Investigator, Framework

Earth planning date: Wednesday, Aug. 20, 2025

What does a good rover do when her back is up against a wall? Fight for science!

Curiosity indeed fought the good fight at “Río Frío,” the wall of one of the many ridges cutting through the boxwork terrain we have been systematically exploring. The observations along the wall today provide insight into the internal structure and chemistry of the ridges, hopefully giving us clues as to why they are standing proud relative to the surrounding terrain.

The structural story will be told by the large Mastcam mosaics we planned, covering the ridge from base to top, and from a MAHLI mosaic covering a horizon of the wall filled with resistant nodules and smooth, swooping surfaces cutting in all directions that are likely veins. The mosaic target, “Jardín de las Delicias,” will surely yield a surfeit of Martian delights. The chemical story will be told by APXS analysis of the nodule-filled target “Minimini” and SuperCam analysis of a vein at “El Tapado.” In contrast to the ridge itself, we planned a Mastcam mosaic of part of the hollow at the base of the ridge at target “Playa Zapatilla.” 

Beyond the ridge, we planned Mastcam and ChemCam imaging of the “Paniri” and “Mishe Mokwa” buttes, respectively, and sky observations with Navcam and Mastcam. DAN, RAD, and REMS run periodically through the plan keeping their eye on the Martian environment. Our drive will take us to a smaller ridge perpendicular to Río Frío, where we will once again fight to learn the secrets these ridges have to tell about  Mars’ past.

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

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Aug 20, 2025

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Expedition 73 Studies How Space Affects the Brain and the Body

Expedition 73 Studies How Space Affects the Brain and the Body

The warm city lights of Southeast Asia streak below the silvery U.S. segment of the International Space Station in this 30-second exposure from the orbital outpost as it soared 259 miles above China at approximately 10:39 a.m. local time. Near the top center, is the partially obscured SpaceX Dragon spacecraft that docked to the Harmony module's forward port carrying NASA's Crew-11 mission.
The warm city lights of Southeast Asia streak below the silvery U.S. segment of the International Space Station in this 30-second exposure from the orbital outpost. Near the top center, is the partially obscured SpaceX Dragon crew spacecraft docked to the Harmony module’s forward port.
NASA

Maintaining sense of balance and protecting immunity in space were the top human research experiments aboard the International Space Station on Wednesday. The Expedition 73 crew members also practiced medical emergency procedures, continued more Earth observations, and finished packing a cargo craft.

NASA Flight Engineers Jonny Kim and Zena Cardman joined each other in the Columbus laboratory module and explored how weightlessness affects the central vestibular system, the part of the brain that processes balance and spatial orientation. Kim, with real-time assistance from doctors on the ground, operated the computer hardware and aided Cardman as she wore virtual reality goggles while responding to digital stimuli helping researchers understand how she is adapting to life in microgravity.

Flight Engineer Kimiya Yui of JAXA (Japan Aerospace Exploration Agency) completed his cellular immunity research removing his blood samples stowed overnight from a research incubator, spinning them in a centrifuge, and preserving them in a science freezer for later analysis. The Immunity Assay study tests an astronaut’s blood and saliva samples for space-caused conditions, helps doctors understand how living in space affects cellular immunity, and may improve crew health monitoring.

NASA Flight Engineer Mike Fincke spent most of his day on lab maintenance first inspecting hatch seals on the Columbus and Kibo lab modules. Next, he checked components and configured the Tranquility module’s advanced resistive exercise device, equipment that mimics free weights on Earth, for an investigation measuring the muscle forces and bone stresses an astronaut experiences when working out in space. Fincke also took a short computerized test measuring how microgravity is affecting his cognition, or reasoning, decision making, and visual tracking skills.

At the end of his shift, Fincke joined Kimiya, Cardman, and Roscosmos Flight Engineer Oleg Platonov and conducted an emergency drill aboard the orbital outpost. The quartet reviewed emergency procedures, practiced cardiopulmonary resuscitation, or CPR, deployed medical gear, then discussed crew communications and care coordination.

Platonov also continued his Earth observation duties pointing his camera out a space station window and photographing the effects of natural and manmade catastrophes. Next, he activated multispectral imaging hardware to automatically photograph Earth landmarks during the crew’s overnight sleep shift.

Station Commander Sergey Ryzhikov and Roscosmos Flight Engineer Alexey Zubritsky finished packing the Progress 91 cargo craft with trash and outdated gear on Wednesday. Ryzhikov closed the hatch on the resupply ship docked to Zvezda‘s rear port and performed the standard leak and pressure checks before its departure in September. Zubritsky earlier jogged on the Zvezda service module’s treadmill for a regularly scheduled fitness evaluation.

Learn more about station activities by following the space station blog, @space_station on X, as well as the ISS Facebook and ISS Instagram accounts.

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Mark A. Garcia

Health Monitoring, Exercise Science Keep Station Crew Busy

Health Monitoring, Exercise Science Keep Station Crew Busy

NASA astronaut and Expedition 73 Flight Engineer Mike Fincke inserts a cryogenic storage unit, called a dewar, containing blood samples collected from a crew member into a science freezer for preservation and later analysis. The Minus Eighty-Degree Laboratory Freezer for International Space Station, or MELFI, is a research freezer that maintains experiment samples at ultra-cold temperatures in microgravity.
NASA astronaut Mike Fincke inserts a cryogenic storage unit, called a dewar, containing blood samples collected from a crew member into an International Space Station science freezer for preservation and later analysis.
NASA

Immunity and exercise science continued aboard the International Space Station on Wednesday giving doctors insight into how the human body adjusts to weightlessness. The Expedition 73 crew is also packing a cargo craft before the end of its mission and maintaining a variety of orbital lab hardware.

Flight Engineer Kimiya Yui of JAXA (Japan Aerospace Exploration Agency) picked up the cellular immunity research he began on Monday spending the first half of his shift collecting and processing his blood and saliva samples for the Immunity Assay study. The specimens were both preserved in a science freezer for later analysis and stowed in a research incubator for further processing. Scientists on Earth will analyze the samples to understand how living in space affects cellular immunity and improve health monitoring in space.

Yui also took turns with NASA Flight Engineer Mike Fincke pedaling on the Destiny laboratory module’s exercise cycle for an aerobic health study. Fincke began the first run of the experiment strapping himself onto the cycle, wearing electrodes and breathing gear measuring his heart and respiratory rate, and pedaling for about an hour. Fincke later spent the rest of his shift on hardware inspections and electronics replacement work behind the thermal control system rack in Destiny.

Next, Yui took over and recalibrated the exercise cycle’s instruments, wore new sensors, and pedaled on the bike as doctors on the ground monitored his workout in real-time. The data will help doctors ensure astronauts stay in shape to handle sustained physical activities such as long spacewalks or the return to Earth’s gravity after several months in space.

NASA Flight Engineer Zena Cardman contributed to the ongoing exercise research on the station by working out on the Tranquility module’s advanced resistive exercise device, or ARED, that mimics free weights in microgravity. She performed isometric mid-thigh pulls, or static dead lifts, measuring how much force she can produce on the ARED for the CIPHER human research investigation. She also exercised her back, shoulders, biceps, and triceps on ARED before jogging on the COLBERT treadmill while wearing a heart monitor. The insights gained from the workout studies adds to the growing knowledge into cardiorespiratory fitness, muscle strength, and physical endurance in space.

NASA Flight Engineer Jonny Kim swapped out a Bio-Monitor headband and vest for a spare set on Tuesday to continue measuring his cardiovascular health for a 48-hour monitoring session for another portion of the CIPHER study. Kim also set up the Columbus laboratory module’s European Drawer Rack-2 in preparation for the installation of research hardware then measured airflow throughout the station’s U.S. segment.

Cosmonauts Sergey Ryzhikov and Alexey Zubritsky, station Commander and Flight Engineer respectively, partnered together again packing trash and outdated gear for disposal inside the Progress 91 resupply ship. Progress 91 is nearing the end of its six-month stay in September and will undock from the Zvezda service module’s rear port and descend into Earth’s atmosphere for a fiery, but safe demise above the South Pacific Ocean.

Roscosmos Flight Engineer Oleg Platonov began his shift downloading multispectral imagery of Asian and Pacific Ocean landmarks captured automatically during the crews’ sleep shift. Afterward, he began a new Earth photography session photographing landmarks himself including the Swiss Allalin Glacier, Africa’s Mount Kilimanjaro, and Brazil’s Amazon delta.

Learn more about station activities by following the space station blog, @space_station on X, as well as the ISS Facebook and ISS Instagram accounts.

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Mark A. Garcia

Expedition 73 Tracks Health and Gears Up for Cargo Missions

Expedition 73 Tracks Health and Gears Up for Cargo Missions

NASA astronaut and Expedition 73 Flight Engineer Mike Fincke poses for a portrait inside the International Space Station's Columbus laboratory module during research operations to learn how the body maintains its core temperature in microgravity.
NASA astronaut Mike Fincke poses for a portrait inside the Columbus laboratory module during research operations.
NASA

The Expedition 73 crew kicked off the week tracking health in microgravity and working on spacesuit gear. The orbital residents also will soon see the arrival of a cargo craft and the departure of another at the International Space Station.

NASA Flight Engineers Jonny Kim and Zena Cardman took turns attaching a variety of sensors to themselves on Monday for a pair of studies measuring their health data in microgravity. Kim began a 48-hour session wearing the Bio-Monitor vest and headband tracking his cardiovascular health for the CIPHER suite of 14 human research investigations. Cardman wore electrodes and breathing gear measuring her heart and breathing rate while pedaling on the Destiny laboratory module’s exercise cycle. Doctors monitor the astronauts’ aerobic health to ensure their bodies can handle sustained physical activities such as long spacewalks or the return to Earth’s gravity after several months in space.

After the health monitoring sessions, Kim joined JAXA (Japan Aerospace Exploration Agency) Flight Engineer Kimiya Yui in the Columbus laboratory module where they set up a pair of research incubators and connected them to a portable power supply. Cardman assisted NASA Flight Engineer Mike Fincke in the Quest airlock, servicing high-definition camera hardware worn on spacesuit helmets.

Yui, a veteran of two spaceflights, began his shift in the Kibo laboratory module setting up botany hardware for the Plant Cell Division experiment that is investigating space agricultural techniques. He also readied equipment for Tuesday’s Immunity Assay study when he will collect his blood and saliva samples for analysis back on Earth to understand how living in space affects cellular immunity.

In the Roscosmos segment of the orbital outpost, cosmonauts Sergey Ryzhikov and Alexey Zubritsky gathered trash and outdated gear for disposal aboard the Progress 91 resupply ship docked to the rear port of the Zvezda service module. The Progress 91 is due to wrap up a six-month cargo mission in September when it will undock from Zvezda and reenter Earth’s atmosphere above the South Pacific Ocean for a fiery, but safe destruction.

Roscosmos cosmonaut and first-time space-flyer Oleg Platonov trained to use the COLBERT treadmill with assistance from Yui who also set up a Bluetooth monitor measuring Platonov’s heart rate during his workout. Afterward, Platonov installed and activated Earth observation gear to capture multispectral imagery of landmarks on the ground.

Preparations aboard the station and on the ground continue for the next launch to deliver science investigations, supplies, and equipment to the orbital outpost. NASA and SpaceX are targeting 2:45 a.m. EDT, Sunday, Aug. 24, to launch more than 5,000 pounds of cargo aboard a SpaceX Dragon spacecraft from Cape Canaveral Space Force Station in Florida.

Learn more about station activities by following the space station blog, @space_station on X, as well as the ISS Facebook and ISS Instagram accounts.

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Mark A. Garcia

X-ray and Radio go ‘Hand in Hand’ in New Image

X-ray and Radio go ‘Hand in Hand’ in New Image

Near the center of these images lies the pulsar B1509-58, a rapidly spinning neutron star that is only about 12 miles in diameter. This tiny object is responsible for producing an intricate nebula (called MSH 15-52) that spans over 150 light-years, or about 900 trillion miles. The nebula, which is produced by energetic particles, resembles a human hand with a palm and extended fingers pointing to the upper right in a view from NASA's Chandra X-ray Observatory. Radio data from the Australia Telescope Compact Array (ATCA) provides new information about this exploded star and its environment. This image also contains optical data of hydrogen gas. The bright red and gold areas near the top of the image show the remains of the supernova that formed the pulsar.
X-ray: NASA/CXC/Univ. of Hong Kong/S. Zhang et al.; Radio: ATNF/CSIRO/ATCA; H-alpha: UK STFC/Royal Observatory Edinburgh; Image Processing: NASA/CXC/SAO/N. Wolk

In 2009, NASA’s Chandra X-ray Observatory released a captivating image: a pulsar and its surrounding nebula that is shaped like a hand.

Since then, astronomers have used Chandra and other telescopes to continue to observe this object. Now, new radio data from the Australia Telescope Compact Array (ATCA), has been combined with Chandra’s X-ray data to provide a fresh view of this exploded star and its environment, to help understand its peculiar properties and shape.

At the center of this new image lies the pulsar B1509-58, a rapidly spinning neutron star that is only about 12 miles in diameter. This tiny object is responsible for producing an intricate nebula (called MSH 15-52) that spans over 150 light-years, or about 900 trillion miles. The nebula, which is produced by energetic particles, resembles a human hand with a palm and extended fingers pointing to the upper right in X-rays.

Near the center of these images lies the pulsar B1509-58, a rapidly spinning neutron star that is only about 12 miles in diameter. This tiny object is responsible for producing an intricate nebula (called MSH 15-52) that spans over 150 light-years, or about 900 trillion miles. The nebula, which is produced by energetic particles, resembles a human hand with a palm and extended fingers pointing to the upper right in Chandra’s X-ray view. Radio data from ATCA provides new information about this exploded star and its environment. This image also contains optical data of hydrogen gas. The bright red and gold areas near the top of the image show the remains of the supernova that formed the pulsar.
Labeled Version of the Image
X-ray: NASA/CXC/Univ. of Hong Kong/S. Zhang et al.; Radio: ATNF/CSIRO/ATCA; H-alpha: UK STFC/Royal Observatory Edinburgh; Image Processing: NASA/CXC/SAO/N. Wolk

The collapse of a massive star created the pulsar when much of the star crashed inward once it burned through its sustainable nuclear fuel. An ensuing explosion sent the star’s outer layers outward into space as a supernova.

The pulsar spins around almost seven times every second and has a strong magnetic field, about 15 trillion times stronger than the Earth’s. The rapid rotation and strong magnetic field make B1509-58 one of the most powerful electromagnetic generators in the Galaxy, enabling it to drive an energetic wind of electrons and other particles away from the pulsar, creating the nebula.

In this new composite image, the ATCA radio data (represented in red) has been combined with X-rays from Chandra (shown in blue, orange and yellow), along with an optical image of hydrogen gas (gold). The areas of overlap between the X-ray and radio data in MSH 15-52 show as purple. The optical image shows stars in the field of view along with parts of the supernova’s debris, the supernova remnant RCW 89. A labeled version of the figure shows the main features of the image.

Radio data from ATCA now reveals complex filaments that are aligned with the directions of the nebula’s magnetic field, shown by the short, straight, white lines in a supplementary image. These filaments could result from the collision of the pulsar’s particle wind with the supernova’s debris.

Near the center of these images lies the pulsar B1509-58, a rapidly spinning neutron star that is only about 12 miles in diameter. This tiny object is responsible for producing an intricate nebula (called MSH 15-52) that spans over 150 light-years, or about 900 trillion miles. The nebula, which is produced by energetic particles, resembles a human hand with a palm and extended fingers pointing to the upper right in a view from NASA's Chandra X-ray Observatory. Radio data from the Australia Telescope Compact Array (ATCA) provides new information about this exploded star and its environment. This image also contains optical data of hydrogen gas. The bright red and gold areas near the top of the image show the remains of the supernova that formed the pulsar.
Complex Filaments Aligned with the Directions of the Nebula’s Magnetic Field
X-ray: NASA/CXC/Univ. of Hong Kong/S. Zhang et al.; Radio: ATNF/CSIRO/ATCA; H-alpha: UK STFC/Royal Observatory Edinburgh; Image Processing: NASA/CXC/SAO/N. Wolk

By comparing the radio and X-ray data, researchers identified key differences between the sources of the two types of light. In particular, some prominent X-ray features, including the jet towards the bottom of the image and the inner parts of the three “fingers” towards the top, are not detected in radio waves. This suggests that highly energetic particles are leaking out from a shock wave — similar to a supersonic plane’s sonic boom — near the pulsar and moving along magnetic field lines to create the fingers.

The radio data also shows that RCW 89’s structure is different from typical young supernova remnants. Much of the radio emission is patchy and closely matches clumps of X-ray and optical emission. It also extends well beyond the X-ray emission. All of these characteristics support the idea that RCW 89 is colliding with a dense cloud of nearby hydrogen gas.

However, the researchers do not fully understand all that the data is showing them. One area that is perplexing is the sharp boundary of X-ray emission in the upper right of the image that seems to be the blast wave from the supernova — see the labeled feature. Supernova blast waves are usually bright in radio waves for young supernova remnants like RCW 89, so it is surprising to researchers that there is no radio signal at the X-ray boundary.

MSH 15–52 and RCW 89 show many unique features not found in other young sources. There are, however, still many open questions regarding the formation and evolution of these structures. Further work is needed to provide better understanding of the complex interplay between the pulsar wind and the supernova debris.

A paper describing this work, led by Shumeng Zhang of the University of Hong Kong, with co-authors Stephen C.Y. Ng of the University of Hong Kong and Niccolo’ Bucciantini of the Italian National Institute for Astrophysics, has been published in The Astrophysical Journal and is available at https://iopscience.iop.org/article/10.3847/1538-4357/adf333.

NASA’s Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program. The Smithsonian Astrophysical Observatory’s Chandra X-ray Center controls science operations from Cambridge, Massachusetts, and flight operations from Burlington, Massachusetts.

Learn more about the Chandra X-ray Observatory and its mission here:

https://www.nasa.gov/chandra

https://chandra.si.edu

Visual Description

This release features a composite image of a nebula and pulsar that strongly resembles a cosmic hand reaching for a neon red cloud.

The neon red cloud sits near the top of the image, just to our right of center. Breaks in the cloud reveal interwoven strands of gold resembling spiderwebs, or a latticework substructure. This cloud is the remains of the supernova that formed the pulsar at the heart of the image. The pulsar, a rapidly spinning neutron star only 12 miles in diameter, is far too small to be seen in this image, which represents a region of space over 150 light-years across.

The bottom half of the image is dominated by a massive blue hand reaching up toward the pulsar and supernova cloud. This is an intricate nebula called MSH 15-52, an energetic wind of electrons and other particles driven away from the pulsar. The resemblance to a hand is undeniable. Inside the nebula, streaks and swirls of blue range from pale to navy, evoking a medical X-ray, or the yearning hand of a giant, cosmic ghost.

The hand and nebula are set against the blackness of space, surrounded by scores of gleaming golden specks. At our lower left, a golden hydrogen gas cloud extends beyond the edges of the image. In this composite, gold represents optical data; red represents ATCA radio data; and blue, orange, and yellow represent X-ray data from Chandra. Where the blue hand of the nebula overlaps with the radio data in red, the fingers appear hazy and purple.

News Media Contact

Megan Watzke
Chandra X-ray Center
Cambridge, Mass.
617-496-7998
mwatzke@cfa.harvard.edu

Corinne Beckinger
Marshall Space Flight Center, Huntsville, Alabama
256-544-0034
corinne.m.beckinger@nasa.gov

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Aug 20, 2025

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