Archive for April, 2024

Image credit: CAS

 

China has released a set of geologic atlases of the Moon, providing high-definition map data for future lunar exploration – an aide in selecting the location for the country’s lunar research station and utilizing lunar resources.

This set of geologic atlas, available in Chinese and English, includes the Geologic Atlas of the Lunar Globe and the Map Quadrangles of the Geologic Atlas of the Moon, according to the Institute of Geochemistry, Chinese Academy of Sciences (CAS).

Ouyang Ziyuan, a CAS academician and lunar scientist .
Image credit: CCTV/Inside Outer Space screengrab

 

Site selection, resource utilization

“The geological atlas of the moon is of great significance for studying the evolution of the Moon, selecting the site for a future lunar research station and utilizing lunar resources,” Ouyang Ziyuan, a CAS academician and lunar scientist told China Central Television (CCTV).

“The world has witnessed a significant progress in the field of lunar exploration and scientific research over the past decades, which have greatly improved our understanding of the Moon,” added Liu Jianzhong, a senior researcher from the Institute of Geochemistry, CAS.

Liu Jianzhong, a senior researcher from the Institute of Geochemistry, CAS.
Image credit: CCTV/Inside Outer Space screengrab

Apollo era maps

Liu noted that the lunar geologic maps published during the Apollo era have not been changed for about half a century, and are still being used for lunar geological research.

“With the improvements of lunar geologic studies, those old maps can no longer meet the needs of future scientific research and lunar exploration,” Liu added.

According to China Daily, since 2012, Ouyang and Liu have led a team of scientists and cartographers from various research institutions in efforts to compile the atlas.

Liu said that the atlas set has been integrated into the digital lunar cloud platform built by Chinese scientists.

China’s Chang’e-6 lunar sample return mission elements.
Credit: CNSA

Far side science

Liu said that atlas set will serve lunar scientific research and science education, as well as landing site selection, lunar resource exploration and path planning for China’s future lunar exploration projects.

The soon-to-launch Chang’e-6 mission is targeted to collect samples in the Apollo Basin within the South Pole-Aitken Basin on the far side of the Moon, which means materials ejected from ancient terrain may be collected in the process.

“Our map can provide a macroscopic geological background to improve the purpose and efficiency of the sample research,” Liu said.

 

Image credit: CCTV/Inside Outer Space screengrab

All is in readiness for the liftoff of China’s next human space outing – the flight of the Shenzhou-18 crew.

Over the weekend, a full-system rehearsal was staged at the Jiuquan Satellite Launch Center.

This week’s projected takeoff, reportedly on April 25, is the 13th piloted mission of China and the 18th overall flight of the Shenzhou program.

High-definition images of China’s space station were taken by the departing Shenzhou-16 crew last October 30.
Image credit: CMS

A still-to-be-identified three-person crew is to rocket to the China space station for a six-month stay onboard the facility.

The Astronaut Center of China says the Shenzhou-18 crew is in good condition, with all systems for their takeoff in go condition.

Once launched atop a Long March-2F Y18 carrier rocket, the Shenzhou-18 crew will join the already orbiting three-member crew of Shenzhou-17.

 

Curiosity’s location as of Sol 4159. Distance driven at that time: 19.68 miles/31.67 kilometers.
Image credit: NASA/JPL-Caltech/Univ. of Arizona

NASA’s Curiosity Mars rover is performing its duties at Gale Crater, landing on Mars in August, 2012.

“Curiosity continues to make progress along the margin of upper Gediz Vallis ridge, investigating the broken bedrock in our workspace and acquiring images of the ridge deposit as the rover drives south,” reports Lauren Edgar, a planetary geologist at USGS Astrogeology Science Center in Flagstaff, Arizona.

Curiosity Right B Navigation Camera on Sol 4160 April 19, 2024.
Image credit: NASA/JPL-Caltech

 

A recently scripted two sol plan — Sols 4159-4160 — focused on a Dust Removal Tool (DRT) activity, contact science, and a drive on the first sol, followed by untargeted remote sensing on the second sol. 

Curiosity Right B Navigation Camera on Sol 4160 April 19, 2024.
Image credit: NASA/JPL-Caltech

 

 

Weekend activities

“The team had to make some decisions at the start of planning about whether to drive on the first or second sol of this plan, and how that would affect the upcoming weekend activities,” Edgar adds.

“As it turned out, the team was able to fit all of the desired contact science and remote sensing activities on the first sol, in addition to the drive on the first sol, which means we’ll be able to downlink more information about our end-of-drive location to better inform planning for the weekend,” Edgar noted.

Curiosity Right B Navigation Camera on Sol 4160 April 19, 2024.
Image credit: NASA/JPL-Caltech

Assess the stratigraphy

The first sol of this scripted plan is “fully loaded,” Edgar reports.  The plan begins with a DRT activity to expose a fresh surface on the bedrock target ‘Tilden Lake,’ followed by Alpha Particle X-Ray Spectrometer (APXS) integrations to investigate its composition.

Then the geology theme group planned several hours of remote sensing activities, including Chemistry and Camera (ChemCam) Laser Induced Breakdown Spectroscopy (LIBS) on the bedrock target “Curry Village,” which has a similar “dragon scale” texture (or “tire tracks”) to what researchers had observed in the previous workspace.

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

Long distance imagery

This big remote sensing block also includes ChemCam long distance Remote Micro-Imager (RMI) mosaics to assess the stratigraphy at Gediz Vallis ridge and the distant butte Kukenan. 

“These long distance RMI images reveal a lot of great detail about distant targets, like the diversity of clasts at Gediz Vallis ridge,” Edgar points out.

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

“The plan also includes a number of Mastcam activities to characterize local textures, sedimentary structures, dark rocks, and sandy aeolian bedforms (known as Transverse Aeolian Ridges, aka TARs) in a nearby trough,” Edgar reports.

“The environmental theme group also planned activities to monitor the movement of fines on the rover deck, search for dust devils, and monitor atmospheric dust,” Edgar says.

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

 

 

Driving south

After this big remote sensing block, Curiosity will use Mars Hand Lens Imager (MAHLI) to image the contact science target, and then continue driving south. 

The second sol includes untargeted activities like an autonomously selected ChemCam “AEGIS” target, additional Navcam deck monitoring, and Navcam line-of-sight observations.

AEGIS stands for Autonomous Exploration for Gathering Increased Science) – a software suite that permits the rover to autonomously detect and prioritize targets.

After the drive, the scripted plan called for taking post drive imaging to prepare for the next plan.

Concludes Edgar: “Looking forward to seeing what other surprises our next workspace will reveal!”

Curiosity Mast Camera Right on Sol 4159 April 18, 2024.
Image credit: NASA/JPL-Caltech/MSSS

Image credit: Bipartisan Commission on Biodefense

Last Monday, NASA shared the agency’s recommendations regarding a path forward for the costly Mars Sample Return initiative, but within a balanced overall science program.

The idea of bringing back to Earth select samples from Mars has long been a major goal of international planetary exploration.

NASA is now reaching back to government, industry and academic teams to come up with innovative ideas – ways to perform a lower-costing and timely shoot and ship effort to rocket back to Earth bits and pieces of Mars.

Perseverance rover deposits select rock and soil samples in sealed tubes on Mars’s surface for future missions to retrieve and bring back to Earth for detailed study.
NASA/JPL-Caltech

Strain gauge

But the quest to bring collectibles to Earth from Mars has long been steeped in controversy in some quarters. That is, there are worries regarding the introduction of ecologically-hungry Martian microbes into Earth’s biosphere.

For sci-fi movie-goers, it’s real-time Andromeda Strain.

Interestingly, raising their hand of concern about misbehaving microbes from afar are members of the Bipartisan Commission on Biodefense. They were set up to evaluate the status of U.S. biodefense efforts, “Protecting U.S. public health security beyond party lines,” according to their website.

“Is the U.S. ready for extraterrestrials? Not if they’re microbes,” explains a recently issued opinion piece.

For more information, go to my new Space.com story – “’Astrobiodefense:’ Thinktank calls for defending Earth from space bugs” – at:

https://www.space.com/mars-sample-return-op-ed-astrobiodefense

High-speed return from lunar distance, the thermal protection system of Orion’s crew module must endure blistering temperatures to keep crew members safe. Measuring 16.5 feet in diameter, Orion’s heat shield is the largest of its kind developed for missions carrying astronauts.
Image credit: NASA)

Earlier this year, NASA announced it had pushed out to 2025 the Artemis II swingby of the Moon by a crew – a practice run to prepare for a follow-on Artemis III “rebooting” of Earth’s nearby celestial companion with humans.

One reason cited for the delay was getting to the bottom of re-entry heat shield data from the first Orion capsule flight.

Arc Jet Complex at NASA’s Ames Research Center in California’s Silicon Valley has been used to study unexpected heat shield issues found after Orion capsule’s Artemis I flight in 2022.
Image credit: NASA Ames Research Center

The capsule’s multi-week fling out beyond the Moon and back to terra firma in 2022 came to full-stop on December 11 of that year, with the Orion capsule parachuting into Pacific Ocean waters off Baja California.

Orion heat shield features ablative material, called Avcoat.
Image credit: Lockheed Martin

There has been an aggressive look-see at the results from the shakeout cruise of the uncrewed Orion capsule on its Artemis I flight – particularly, how the craft’s heat shield performed.

 

 

Go to my new Space.com story – “NASA still investigating Orion heat shield issues from Artemis 1 moon mission – The landmark 2022 moon mission was a success, but questions remain about how Orion’s heat shield performed” – at:

https://www.space.com/nasa-investigate-orion-heat-shield-artemis-1-mission

Image credit: CCTV/Inside Outer Space screengrab

China’s Shenzhou-18 crewed spacecraft has been rolled out to its launching area atop a Long March-2F carrier rocket, stated the China Manned Space Agency (CMSA) on Wednesday.

The Shenzhou-18 will become China’s 13th human spaceflight and the first crewed mission to visit China’s Tiangong station this year.

CMSA said all facilities and equipment to handle the upcoming liftoff from the Jiuquan Satellite Launch Center in northwest China are in good condition.

A set of pre-launch checkouts are planned, with takeoff of the still-unannounced crew to occur at an appropriate time in the near future, said the CMSA. April 25 is a possible launch date, according to sources.

Image credit: CCTV/Inside Outer Space screengrab

Winds and dust

Wang Xuewu, deputy director, Jiuquan Satellite Launch Center, told China Central Television (CCTV ) that the piloted mission will be the first flight of a crew performed in April since China began building the country’s space station.

“Considering the characteristics of high winds and dust during this season,” Wang said, “we have conducted statistical analysis of meteorological data over the past 30 years in the launch site, and formulated targeted preventive measures and response strategies.”

Wang added that there has been a power supply system update of certain facilities, as well as collaborative training of personnel, including emergency drills.

“We have also improved the comprehensive situational awareness and critical information collection and dissemination capabilities of the launch site, optimized our product testing projects and timing, therefore, further improving the site’s ability to handle continuous missions,” Wang said.

Now orbiting Shenzhou-17 space station crew.
Image credit: CCTV/Inside Outer Space screengrab

Current crew: return to Earth

The in-orbit Shenzhou-17 crew —  mission commander Senior Colonel Tang Hongbo and crew members Lieutenant Colonel Jiang Xinlin and Lieutenant Colonel Tang Shengjie — are scheduled to return to Earth this month.

That now-orbiting trio arrived at the orbiting outpost on October 26 of last year. By the end of April, the Shenzhou-17 team will have been circling Earth in the station for six months.

Later this year, another set of astronauts — a Shenzhou-19 crew — is slated to take over space station operations.

Go to this video of the Shenzhou-18 rollout at:

https://youtu.be/cDKfmdk57Do?si=j1sm5jsHyE4BY2U3

Credit: Piplsay

If all the reports of mysterious objects buzzing our skies are taken as true encounters, the Earth appears to be under assault.

But spoiler alert.

For chief leader of the SETI Institute, established to search for and understand life beyond Earth, there’s need to cuddle up to a cup of cosmic reality.

Image credit: Bill Diamond

 

Bill Diamond is president and chief executive officer of the SETI Institute, headquartered in Mountain View, California. The organization is a key research contractor to NASA and the National Science Foundation, and collaborates with industry partners throughout Silicon Valley.

I caught up with Diamond for a close-encounter with his own thoughts and counterpoints to alien visitation and whether there’s any signal in all the UFO prattle.

Go to my new Space.com story – “SETI chief says US has no evidence for alien technology. ‘And we never have” – at:

https://www.space.com/seti-chief-bill-diamond-ufos-alien-visitation

Scientific American: Editor’s Note (4/16/24): This article has been updated to include information about NASA’s completed analysis of the object that struck a house in Florida.

A Naples, Florida home reported possible space junk damage.
Image credits: Alejandro Otero postings on X

Space-Junk Strike in Florida Signals New Era of Orbital Debris – Three years ago astronauts threw out the largest piece of trash ever tossed from the International Space Station. Now some of it has punched a hole through a house in Naples, Fla.

By Leonard David

In what may be judged as a bizarre and twisted case of “breaking and entering,” last month a plummeting cylindrical object weighing nearly two pounds hit the roof of Alejandro Otero’s home in Naples, Fla., smashed through a ceiling and punched through a floor.

Recovered stanchion from the NASA flight support equipment used to mount International Space Station batteries on a cargo pallet. The stanchion survived re-entry through Earth’s atmosphere on March 8, 2024, and impacted a home in Naples, Florida.
Image credit: NASA

When this story was first published, this high-speed home invasion from the heavens had yet to be officially verified as a space junk strike. Now, however, after retrieving and studying the object, NASA has confirmed it is debris from trash tossed three years ago from the International Space Station (ISS) that subsequently reentered Earth’s atmosphere. As the latest close encounter with clutter from the cosmos, the event has already sparked technical and legal banter about the worrisome escalation of Earth-circling, human-made refuse.

Taking out the trash. Multi-ton pallet tossed off years ago returns to Earth.
Image credit: NASA/Mike Hopkins

 

 

TAKING OUT THE TRASH

Back in March 2021 astronauts onboard the ISS used a Canada-supplied robotic arm to tip an abnormally hefty hunk of refuse into space—the heaviest object ever jettisoned from the space station, in fact. NASA explained at the time that the trash, called Exposed Pallet 9 (EP9), had the approximate mass of a large SUV “and is safely moving away from the station and will orbit Earth between two to four years before burning up harmlessly in the atmosphere.”

After being ferried to the ISS via a Japanese cargo ship the previous year, EP9 had been filled with 5,800 pounds of spent nickel-hydrogen batteries. But a series of logistical complications—chief among them the fact that the battery pallet could only fit in Japan’s cargo ships, of which there were no more to fly—left EP9 stranded, taking up precious space on the ISS. So NASA decided to throw it overboard. After a few years of drifting aimlessly through space, EP9 finally met its fiery fate on March 8 when its decaying orbit sent it nose-diving into Earth’s atmosphere over the Gulf of Mexico.

Image credit:
EU Space Surveillance and Tracking (SST)

The European Space Agency’s Space Debris and Independent Safety Offices closely monitored the reentry of the pallet of used ISS batteries. These batteries were to undergo “a natural reentry,” said ESA in a pre-reentry communiqué, using a twist on the term for an uncontrolled plunge from space.

“The total mass of the batteries is estimated at 2.6 metric tonnes, most of which may burn up during the reentry,” ESA stated. “While some parts may reach the ground, the casualty risk—the likelihood of a person being hit—is very low.”

Image credit: WINK News/Inside Outer Space screengrab

A SERIOUS CANDIDATE

Before NASA’s analysis was complete, Marco Langbroek, a devoted satellite tracker and a faculty member in aerospace engineering at the Delft University of Technology in the Netherlands, told Scientific American that it certainly looked possible that the object in Florida stemmed from the reentry of the EP9 battery pack.

Langbroek had reviewed EP9’s ground track as well as the reported timing and trajectory of its reentry. Handily, there was also a time-stamped security video and sound clip of the object that pierced the homeowner’s roof.

Image credit: WINK News/Inside Outer Space screengrab

After entering the atmosphere and losing much of its speed, the debris piece probably spent a couple of minutes in subsonic free fall, Langbroek said.

“Reentries take multiple minutes, with the object fragmenting and the reentering fragments spreading along the trajectory over a stretch that can be hundreds of miles long,” he added. “Given the force of impact, I think this is a serious candidate for potential debris from this [EP9] reentry. It might well be a part of one of the nickel-hydrogen battery cells.”

At that time, Tobias Lips, managing director of satellite aerodynamics company Hyperschall Technologie Göttingen in Germany, told Scientific American that there was not much guesswork here. As a specialist in reentry analysis, he robustly simulated the fall of the ISS pallet of batteries days before the actual event occurred using “moderately conservative” rather than “worst-case” assumptions. Even so, his results suggested more than 130 fragments would survive to reach the surface. That’s “about 10 times more than for a typical reentry object of this size and mass,” he said.

Most of those predicted fragments, Lips said, would be cylinders made of Inconel—a high-strength nickel-chromium superalloy often used in aerospace applications. Nearly 350 such cylinders were in the EP9 pallet’s payload of spent batteries, where they served as power cells. “The fragment found in Naples, Florida, is most likely one of these cylinders,” Lips said.


Chart shows ground track of a set of used Nickel-Hydrogen batteries jettisoned from the International Space Station in 2021. Chart indicates situation as of March 8, and forecasts a reentry between approximately 15:35 CET and 22:25 CET on Friday March 8. The reentry zone effectively stretches from -51.6deg south to 51.6deg north.
Image credit: ESA

“The recovered fragment was reported to be about two pounds in weight. Thirty-eight percent of my [simulation’s] surviving fragments are within this mass class,” he explained. “I would be very surprised if investigations of this fragment don’t confirm it being a battery cell from the ISS.”

NASA’S ANALYSIS

After NASA officials, in cooperation with Otero, took custody of the object for closer study at the agency’s nearby Kennedy Space Center, space agency spokesperson Joshua Finch told Scientific American that “more information will be available once the analysis is complete.”

At that time, Mike Weaver, a space debris expert at the Aerospace Corporation, told Scientific American that NASA’s analysis would likely begin with a rigorous examination of the object’s trajectory—as well as that of EP9—tracked against the locations of any other recovered debris.

“In this case, the location of the object in Naples, Florida, appears to be consistent with the timing and the location of the ISS battery pallet reentry,” Weaver said. “However, this is not sufficient to positively identify an object.”

During the uncontrolled fall of space hardware, seconds and minutes count. They can add up to de-orbiting riff raff plunging into isolated ocean waters or reaching land.
(Image credit: The Aerospace Corporation/Center for Space Policy and Strategy)

Alongside the trajectory work, scrutinizing the candidate chunk of space junk for signs of scorching, melting and other effects of reentry heating would be desirable, Weaver said. Metallurgical analysis to determine its composition could be useful as well.

Sometimes serial numbers or part numbers can be found on an object, Weaver noted, which would rapidly simplify things.

Subsequently, in the April 15 blog post in which NASA announced the completion of its analysis, the agency confirmed that the item was in fact an Inconel cylinder. But rather than being part of a battery, the cylinder was a stanchion from the space agency’s “flight support equipment used to mount the batteries on the cargo pallet.”

WHAT GOES UP MUST COME DOWN

Threats from incoming orbital rubbish are real and set to grow, says Darren McKnight, a senior technical fellow at LeoLabs, a commercial provider of space domain awareness services, based in Menlo Park, Calif. As more space systems are deployed in low-Earth orbit, the old adage applies: what goes up must come down.

Space debris plunges to Earth, burning its way through the atmosphere.
Image credit: The Aerospace Corporation

The vexing nub of the problem is that removing ever proliferating small pieces of orbital debris is vital for maintaining a safe space environment—and uncontrolled atmospheric reentry is by far the easiest way to do it. In fact, this happens automatically for objects in low-Earth orbit, which begin to fall as they bleed off momentum against the outer edges of our planet’s atmosphere. Yet the hands-off nature of this process means any sizable piece of unguided debris has a large swath of the planet upon which it or its fragments might fall, potentially constituting a low but real risk to multiple aviation corridors and population centers.

“The issue of aviation and ground hazard from space operations is a problem that will not go away any time soon,” McKnight says.

LEGAL LIABILITY

Before the downed debris in question was confirmed as coming from the ISS, Joanne Gabrynowicz, a professor emerita of space law at the University of Mississippi, told Scientific American that such a finding would likely prompt a dialogue about liability.

Signing of Outer Space Treaty.
Image credit: United Nations

Some of the provisions of the United Nations Outer Space Treaty and its Convention on International Liability for Damage Caused by Space Objects, as well as the ISS International Governmental Agreement (IGA), could be relevant, said Gabrynowicz, who is also editor in chief emerita of the Journal of Space Law.

An analysis of various provisions in these sources and how they interrelate would probably be necessary, Gabrynowicz said, including Article II of the U.N.’s Liability Convention. Article II states that any country launching anything into space shall be responsible for damage any associated space objects may cause back on Earth’s surface.

In the case of an object striking a house, the launching nation would, at minimum, be liable for funding requisite structural repairs. Gabrynowicz added, however, that while this protocol is simple in principle, its translation to reality can become extremely complex. Things would get murky, for instance, if the errant object that struck Otero’s house had proved to be part of the spent batteries from EP9’s reentry: the batteries are NASA’s property, but they were attached to EP9—a payload launched by the Japan Aerospace Exploration Agency (JAXA).

“That could be complicated, requiring analysis of various contracts, treaties, insurance policies and the IGA. Of course, the entities involved can also agree as to how to resolve the situation,” Gabrynowicz concluded.

Catch and release. ISS robot arm is used for grabbing and letting lose space hardware.
Image credit: NASA

AN ACT OF ABANDONMENT

“NASA will want to minimize this by saying chucking stuff off the ISS is rare and this isn’t a satellite or rocket body … and therefore is disconnected to increasing launch rates,” said Ewan Wright, a Ph.D. candidate at the University of British Columbia and a junior fellow of the Outer Space Institute, in an interview with Scientific American prior to the agency’s April 16 announcement.

“But clearly there is an issue here that uncontrolled reentries are fairly accepted, and nobody thought to look into it much further,” Wright said. One reason for laxity, he noted, is that the risks from uncontrolled space debris reentry are literally and figuratively dumped in the ocean, which covers most of Earth’s surface. But treating Earth’s seas as a space junkyard is unlikely to be sustainable forever.

“There are over 50,000 ships in the ocean at any given time and hundreds of thousands of smaller boats. The chance of a ship being hit by space debris is likely to be small, but it’s growing, and we don’t know the number for sure,” Wright said. “A cruise ship being hit by uncontrolled space debris may not kill someone, but it would raise serious questions about our continued abandonment of space debris in orbit. And the launching state would be liable to pay damages.”

Many aerospace companies employ an ethos of “design for demise” for their space-bound components to try to ensure that if the parts do reenter, they reliably burn up at high altitude. Yet even leaving aside growing concerns about the resulting contamination of Earth’s upper atmosphere with heavy metals and other pollutants, some experts consider the practice ill-advised at best.

Launch and reentry particle emissions in the Earth’s stratosphere.
Image credit: The Aerospace Corporation

Moriba Jah, an expert in space debris tracking and management at the University of Texas at Austin and a co-founder and chief scientist at Privateer Space, a group focused on space sustainability issues headquartered on the island of Maui in Hawaii, is one such critic.

Jah emphasizes that discarding our detritus in low-Earth orbit in hopes that this material will “naturally reenter” the atmosphere “is not a responsible disposal method but rather an act of abandonment.” Even if not legally classified as such, uncontrolled reentry “is inherently irresponsible due to the potential risks it poses to life and property on Earth,” Jah says.

NASA officials have said that they’re on the case. “The International Space Station will perform a detailed investigation of the jettison and re-entry analysis to determine the cause of the debris survival and to update modeling and analysis, as needed,” the space agency noted in its April 15 announcement.

In some sense, the unlikely intersection of a probable piece of orbital debris with a home could ultimately prove to be a good thing: it could provide another wake-up call to policymakers, major aerospace players and the public at large that when it comes to space junk in low-Earth orbit, the sky really is falling.

LEONARD DAVID is author of Moon Rush: The New Space Race (National Geographic, 2019) and Mars: Our Future on the Red Planet (National Geographic, 2016). He has been reporting on the space industry for more than five decades.

Taking the fall. Space hardware dives into Earth’s atmosphere with some fragments making their way to the ground.
Image credit: ESA/D.Ducros

Image credit: Mars Guy/Inside Outer Space screengrab

The last look at NASA’s Ingenuity helicopter on Mars reveals surprises.

Mars Guy notes that from the closest vantage point we’ll ever see, the NASA Perseverance rover at Jezero Crater shot some pictures of Ingenuity’s final resting place and then drove away.

 

 

The imagery, aided by the work of Simeon Schmauß, reveal new details of the crash site that may help explain the final moments of the helicopter’s last flight.

Go to video at: https://youtu.be/VHTJR3UxxgM?si=obgTu9wkk_u5HfE7

Moon encampment involves multi-nation participation.
Image credit: ESA

GOLDEN, Colorado — There is growing interest by space agencies and the private sector in how to extract resources on the moon to sustain a long-term human presence on that desolate world.

Known as in-situ resource utilization, or ISRU, this off-Earth ability involves the production of oxygen and water for life-support, as well as churning out rocket fuel. Then there’s pulling out metals from the moon to fabricate lunar lodging, landing pads, along with other structures and products.

ISRU is a primary focus of the Center for Space Resources, an interdisciplinary research and technology development hub here at the Colorado School of Mines.

Take a look at my new SpaceNews story on the School of Mines and their ISRU agenda: