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Nuclear Power Technology Moon Missions Endorsed by NASA

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Rolls-Royce has just announced that it has secured funding for research by Rolls-Royce into how nuclear power could be used to support a future Moon base for astronauts.

Scientists and engineers at Rolls-Royce are working on the Micro-Reactor program to develop technology that will provide power needed for humans to live and work on the Moon. All space missions depend on a power source, to support systems for communications, life-support and science experiments. Nuclear power has the potential to dramatically increase the duration of future Lunar missions and their scientific value.   
Minister of State at the Department of Science, Innovation and Technology, George Freeman, said: “Space exploration is the ultimate laboratory for so many of the transformational technologies we need on Earth: from materials to robotics, nutrition, cleantech and much more. 
“As we prepare to see humans return to the Moon for the first time in more than 50 years, we are backing exciting research like this lunar modular reactor with Rolls-Royce to pioneer new power sources for a lunar base. 
Relatively small and lightweight compared to other power systems, a nuclear micro-reactor could enable continuous power regardless of location, available sunlight, and other environmental conditions.
The potential applications of Rolls-Royce Micro-Reactor technology are wide-ranging and could support commercial and defense use cases in addition to those in space. The aim is to create a world-leading power and propulsion capability for multiple markets and operator needs, alongside a clean, green and long-term power source.
The partnership with Rolls-Royce comes after the UK Space Agency recently announced £51 million of funding available for UK companies to develop communication and navigation services for missions to the Moon, as part of the European Space Agency’s Moonlight program, which aims to launch a constellation of satellites into orbit around the Moon. 
This will allow future astronauts, rovers, science experiments and other equipment to communicate, share large amounts of data including high-definition video, and navigate safely across the lunar surface.
https://www.rolls-royce.com/media/our-stories/discover/2023/uk-space-agency-backs-rolls-royce-nuclear-power-for-moon-exploration.aspx

AR #68

“Hidden Agenda?”

by John Kettler

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Deep Hidden ‘Structures’ Found on Moon’s Dark Side

Billions of years of lunar history revealed by Chinese rover

The Independent

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China’s Chang’e-4 mission rover has helped scientists visualize “hidden” structures deep below the surface of the moon’s far side. The Yutu-2 rover helped make the discovery through its Lunar Penetrating Radar (LPR) that imaged deep into the moon’s surface by listening to echoes of sound that bounced back off structures under the lunar surface and hidden from view.

The same rover and the mission’s lander had made history in 2019 as the first human objects to land on the far side of the moon – the side that faces away from the Earth. Scientists had previously used the rover’s ground penetrating radar (GPR), but those earlier efforts could help map only the top 40m, or about 130ft, of the moon’s surface. This new discovery has found the “hidden” structures at depths of about 300m (984ft).


The new data suggests the first 130 feet under the lunar surface is made up of layers of dust, soil, and rocks.
Radar analysis also revealed the presence of a buried crater that formed when a large object slammed into the lunar surface as well as helped map ancient lava flows under the moon.

“The GPR sends electromagnetic pulses into the lunar interior and receives echoes from subsurface layers. We use the high-frequency channel data to detect the structure of the upper 40 m along the rover’s path, primarily consisting of rock debris and soil,” researchers explained in the study.


Scientists speculate that the broken rocks surrounding this formation was likely debris produced by the impact.
The new study, published recently in the Journal of Geophysical Research: Planets, revealed lunar lava likely flowed across the landscape in this part of the moon billions of years ago (https://agupubs.onlinelibrary.wiley.com/doi/10.1029/2022JE007714).


Researchers found volcanic rock layers are thinner the closer they are to the lunar surface.

“The thickness variation of these lava flows suggests a decrease in eruption scale over time,” they noted.Based on this evidence, they said the lunar volcanic activity cooled gradually since the moon’s formation over 4.5 billion years ago, when a Mars-sized object slammed onto Earth and broke off a chunk that eventually coalesced into the moon.
“The thickness of the strata decreases with the decreasing depth, suggesting a progressively smaller lava effusion rate over time,” scientists concluded.

AR #129

What Could the Moon Be Hiding from Us

by William B. Stoecker

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Giant Water Reservoir Discovered on the Moon

The surface of the moon contains a new source of water embedded in millions of microscopic glass beads. Someday all that water, scientists say, might help astronauts produce drinking water, breathable air and even rocket fuel. The new findings come from a Chinese rover that spent two weeks on the moon in 2020.

Evidence of lunar water had only recently emerged from data collected by NASA’s Stratospheric Observatory for Infrared Astronomy (SOFIA). A large telescope on a modified Boeing 747SP jet was able to study the moon from above 99 percent of Earth’s atmospheric water vapor, permitting precise infrared observations without needing any space-based facilities. Another NASA paper published in the same issue of Nature Astronomy has studied permanently shadowed areas—known as cold traps—on the moon in which extremely low temperatures could freeze and preserve water essentially indefinitely, allowing it, over geologic time, to accumulate significant deposits. (https://www.nature.com/articles/s41550-020-01222-x)

Volatile elements and compounds, such as water, say researchers, are crucial to geological processes and will be vital for future in-situ resource utilization on the Moon. Thus, say scientists, it is important to understand the abundance of these elements, their location (i.e., locked in minerals or at depth as ice), and evolution through time on the Moon. Spacecraft missions such as the Lunar Reconnaissance Orbiter have demonstrated that the lunar surface harbors water in at least some form. However, the origin of this water and its distribution across the lunar surface remains largely unknown. Compounding this is the fact that volatile elements likely migrate around the surface of the Moon and can be lost to space. An as-yet-undiscovered reservoir in the near-surface is required to replenish surface water and maintain the lunar water cycle.

In the recent Chinese discovery, Huicun He and colleagues from the Chinese Academy of Sciences analyzed 117 glass beads from a lunar soil sample collected by the Chang’e 5 robotic arm and returned to Earth on December 16, 2020. These beads showed water-poor cores but had elevated water abundances in their rims. This trend correlated with changing hydrogen isotope composition (the ratio of hydrogen to deuterium) from core to rim. This can be explained by the inward diffusion of water derived from the solar wind (primarily composed of pure hydrogen). The researchers also noted that one bead showed water loss at the outermost rim and suggested that this records water loss during daily surface temperature fluctuations.

Modeling-based estimates indicate that the amount of water that these glass beads could contribute to the lunar regolith is as much as 2.7 × 1014 kg. The researchers conclude, lunar glass beads might therefore provide the needed reservoir to maintain the lunar water cycle and act as a buffer for the global and daily variations of water abundance on the lunar surface.

AR #68

Does NASA Know Something We Don’t?

by John Kettler

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Could the ‘Final Frontier’ of Space Exploration, be Underground?

At least 3,545 potential caves on 11 different moons and planets throughout the solar system, including the Moon, Mars and moons of Jupiter and Saturn, have been identified by astronomers. Cave formation processes have even been recognized on comets and asteroids. The discoveries in such caves could be massive. And now an international collaboration of space scientists wants to know if there life in those caves. 

Northern Arizona University (NAU) researcher Jut Wynne, assistant research professor of cave ecology, is the lead author of two new related studies, both published in a special collection of papers on planetary caves by the Journal of Geophysical Research-Planets. The first, “Fundamental Science and Engineering Questions in Planetary Cave Research,” was done by an interdisciplinary team of scientists, engineers and astronauts who produced a list of what they think are the 53 most important questions we should be asking about extra-terrestrrial caves (The second, “Planetary Caves: A Solar System View of Products and Processes,” was born from the first study). The team hopes their work will inform what will ultimately be needed to support robotic and human missions to a planetary cave—namely on the Moon and/or Mars.  

“Caves on many planetary surfaces represent one of the best environments to search for evidence of extinct or perhaps extant lifeforms,” Wynne said. “For example, as Martian caves are sheltered from deadly surface radiation and violent windstorms, they are more likely to exhibit a more constant temperature regime compared to the surface, and some may even contain water ice. This makes caves on Mars one of the most important exploration targets in the search for life.”  And not just for finding life—caves on the Moon and Mars could make good locations for astronaut shelters for both solar and galactic radiation.  

Indeed, the search for life may lead explorers in many surprising directions. U.S. and Indian astronomers, for example, have discovered that large amounts of water exist in the moon’s topsoil, which, they theorize, was formed by the reaction of hydrogen ions in the solar wind with oxygen containing compounds in the soil, or delivered by crashing comets. Acording to science writer William B. Stoecker (Atlantis Rising Magazine #79) some think the Moon’s ‘sinuous rilles;’ save for the lack of tributaries, may have been carved by water. Other astronomers argue they are collapsed lava tubes, but there are problems with such theories. Lava tubes tend to be on the surface; the rilles are canyons cut or eroded somehow below the surface. Many go uphill (neither water nor lava can flow uphill), like Schroeder’s Valley, which is 160 kilometers long, up to 1300 meters deep, and ten kilometers wide. Lava could not flow anywhere near 160 kilometers before cooling and solidifying; and even in the lower lunar gravity, a tube would collapse under its own weight even if far narrower. The rilles do not look in any way artificial, but they are clearly evidence of natural forces which we do not understand. Some have even theorized that they were gouged out by interplanetary lightning.
Using the existing infrastructure of a planet’s surface and subsurface, such as caves, may help humans get to other planets sooner than if we had to bring everything needed to survive with us. 

Here on Earth humans have been living in caves for hundreds of thousands of years. When none were available, we built our own. “As such,” said Wynne “it is only natural to assume that caves will offer similar utility as humanity expands to other worlds. While planet-wide terraforming may be an end goal, the use of large, pre-existing structures such as caves and lava tubes may be a more practical way to bootstrap the technology to the maturity needed to tackle the surface of an entire planet.”

https://news.nau.edu/space-exploration-goes-underground/

AR #70

Life in the Solar System, Then and Now

by William B. Stoecker

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Bricks Made to Build a Moon Base

Using resources found in space to construct off-world structures can drastically reduce the need to transport building materials for programs like Artemis.As part of NASA’s Artemis program to establish a long-term presence on the moon, it aims to build a base camp that includes a modern lunar cabin, rover and mobile home. This fixed habitat could potentially be constructed with bricks made of lunar regolith and saltwater, thanks to a recent discovery from researchers at the University of Central Florida.

Associate Professor Ranajay Ghosh of UCF’s Department of Mechanical and Aerospace Engineering and his research group found that 3D-printed bricks of lunar regolith can withstand the extreme environments of space and are a good candidate for cosmic construction projects. Lunar regolith is the loose dust, rocks and materials that cover the moon’s surface.

The results of their experiments are detailed in a recent issue of Ceramics International (https://www.sciencedirect.com/science/article/pii/S0272884222027560?via%3Dihub) and were also featured in New Scientist magazine prior to publication.

Ghosh’s team used a combination of 3D printing and binder jet technology (BJT), an additive manufacturing method that forces out a liquid binding agent onto a bed of powder. In Ghosh’s experiments, the binding agent was saltwater, and the powder was regolith made by UCF’s Exolith Lab.

UCF Mechanical and Aerospace Engineering Associate Professor Ranajay Ghosh and graduate research assistant Peter Warren display the cylindrical bricks they created using simulated lunar and Martian regolith.

“This research contributes to the ongoing debate in space exploration community on finding the balance between in-situ extraterrestrial resource utilization versus material transported from Earth,” Ghosh says. “The further we develop techniques that utilize the abundance of regolith, the more capability we will have in establishing and expanding base camps on the moon, Mars, and other planets in the future.”

Pictures & Captions: https://www.ucf.edu/news/ucf-researchers-create-lunar-regolith-bricks-that-could-be-used-to-construct-artemis-base-camp/

AR #62

U.S. Unveils Plan to Create Colony at Lunar Pole

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New Light on Where Moon Came From

Researchers from ETH Zurich have discovered the first definitive proof that the Moon inherited indigenous noble gases from the Earth’s mantle. The discovery represents a significant piece of the puzzle towards understanding how the Moon and, potentially, the Earth and other celestial bodies were formed.

Humankind has maintained an enduring fascination with the Moon. It was not until Galileo’s time, however, that scientists really began to study it. Over the course of nearly five centuries, researchers put forward numerous, much debated theories as to how the Moon was formed. Now, are shedding shed new light on the Moon’s origin story. In a study just published in the journal, Science Advances, the research team reports findings that show that the Moon inherited the indigenous noble gases of helium and neon from Earth’s mantle. The discovery adds to the already strong constraints on the currently favored “Giant Impact” theory that suggests the Moon was formed by a massive collision between Earth and another celestial body.

Meteorites from the Moon to Antarctica
During her doctoral research at ETH Zurich, the Swiss university of science and technology, Patrizia Will analyzed six samples of lunar meteorites from an Antarctic collection, obtained from NASA. The meteorites consist of basalt rock that formed when magma welled up from the interior of the Moon and cooled quickly. They remained covered by additional basalt layers after their formation, which protected the rock from cosmic rays and, particularly, the solar wind. The cooling process resulted in the formation of lunar glass particles amongst the other minerals found in magma. Will and the team discovered that the glass particles retain the chemical fingerprints (isotopic signatures) of the solar gases: helium and neon from the Moon’s interior. Their findings strongly support that the Moon inherited noble gases indigenous to the Earth. “Finding solar gases, for the first time, in basaltic materials from the Moon that are unrelated to any exposure on the lunar surface was such an exciting result,” says Will.
Without the protection of an atmosphere, asteroids continually pelt the Moon’s surface. It likely took a high- energy impact to eject the meteorites from the middle layers of the lava flow similar to the vast plains known as the Lunar Mare. Eventually the rock fragments made their way to Earth in the form of meteorites. Many of these meteorite samples are picked up in the deserts of North Africa or in, in this case, the “cold desert” of Antarctica where they are easier to spot in the landscape.

Searching for the origins of life
Knowing where to look inside NASA’s vast collection of some 70,000 approved meteorites represents a major step forward. “I am strongly convinced that there will be a race to study heavy noble gases and isotopes in meteoritic materials,” says ETH Zurich Professor Henner Busemann, one of the world’s leading scientists in the field of extra- terrestrial noble gas geochemistry. He anticipates that soon researchers will be looking for noble gases such as xenon and krypton which are more challenging to identify. They will also be searching for other volatile elements such as hydrogen or halogens in the lunar meteorites.
Busemann comments, “While such gases are not necessary for life, it would be interesting to know how some of these noble gases survived the brutal and violent formation of the moon. Such knowledge might help scientists in geochemistry and geophysics to create new models that show more generally how such most volatile elements can survive planet formation, in our solar system and beyond” (https://www.science.org/doi/10.1126/sciadv.abl4920).

https://ethz.ch/en/news-and-events/eth-news/news/2022/08/one-more-clue-to-the-moons-origin.html

AR #68

Hidden Agenda?

By John Kettler

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Rocket Crash Makes Double Crater on Moon

Astronomers discovered a rocket body heading toward a lunar collision late last year. Impact occurred March 4, with NASA’s Lunar Reconnaissance Orbiter (LRO) later spotting the resulting crater. Surprisingly the crater is actually two craters, an eastern crater (18-meter diameter, about 19.5 yards) superimposed on a western crater (16-meter diameter, about 17.5 yards).

The double crater was unexpected and may indicate that the rocket body had large masses at each end. Typically a spent rocket has mass concentrated at the motor end; the rest of the rocket stage mainly consists of an empty fuel tank. Since the origin of the rocket body remains uncertain, the double nature of the crater may indicate its identity.
No other rocket body impacts on the Moon have created double craters. The four Apollo SIV-B craters were somewhat irregular in outline (Apollos 13, 14, 15, 17) and were substantially larger (greater than 35 meters, about 38 yards) than each of the double craters. The maximum width (29 meters, about 31.7 yards) of the double crater of the mystery rocket body was near that of the S-IVBs.


LRO is managed by NASA’s Goddard Space Flight Center in Greenbelt, Maryland, for the Science Mission Directorate at NASA Headquarters in Washington. Launched on June 18, 2009, LRO has collected a treasure trove of data with its seven powerful instruments, making an invaluable contribution to our knowledge about the Moon. NASA is returning to the Moon with commercial and international partners to expand human presence in space and bring back new knowledge and opportunities.

https://www.nasa.gov/feature/goddard/2022/nasas-lunar-reconnaissance-orbiter-spots-rocket-impact-site-on-moon

AR #90

A ‘Youthening’ Moon?

Alternative News

 

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Lost Tigris River City Revealed by Drought

A team of German and Kurdish archaeologists have uncovered a 3400-year-old Mittani Empire-era city once located on the Tigris River. The settlement emerged from the waters of the Mosul reservoir early this year as water levels fell rapidly due to extreme drought in Iraq. The extensive city with a palace and several large buildings could be ancient Zakhiku – believed to have been an important center in the Mittani Empire (ca. 1550-1350 BC).

Iraq is one of the countries in the world most affected by climate change. The south of the country in particular has been suffering from extreme drought for months. To prevent crops from drying out, large amounts of water have been drawn down from the Mosul reservoir – Iraq’s most important water storage – since December. This led to the reappearance of a Bronze Age city that had been submerged decades ago without any prior archaeological investigations. It is located at Kemune in the Kurdistan Region of Iraq.


This unforeseen event put archaeologists under sudden pressure to excavate and document at least parts of this large, important city as quickly as possible before it was resubmerged. The Kurdish archaeologist Dr. Hasan Ahmed Qasim, German archaeologists Jun.-Prof. Dr. Ivana Puljiz, and Prof. Dr. Peter Pfälzner spontaneously decided to undertake joint rescue excavations at Kemune. These took place in January and February 2022.


Within a short time, the researchers succeeded in largely mapping the city. In addition to a palace, which had already been documented during a short campaign in 2018, several other large buildings were uncovered – a massive fortification with wall and towers, a monumental, multi-storey storage building and an industrial complex. The extensive urban complex dates to the time of the Empire of Mittani (approx. 1550-1350 BC), which controlled large parts of northern Mesopotamia and Syria.


“The huge magazine building is of particular importance because enormous quantities of goods must have been stored in it, probably brought from all over the region,” says Puljiz. Qasim concludes, “The excavation results show that the site was an important center in the Mittani Empire.”


The research team was stunned by the well-preserved state of the walls – sometimes to a height of several meters – despite the fact that the walls are made of sun-dried mud bricks and were under water for more than 40 years. This good preservation is due to the fact that the city was destroyed in an earthquake around 1350 BC, during which the collapsing upper parts of the walls buried the buildings.


Of particular interest is the discovery of five ceramic vessels that contained an archive of over 100 cuneiform tablets. They date to the Middle Assyrian period, shortly after the earthquake disaster struck the city. Some clay tablets, which may be letters, are even still in their clay envelopes. The researchers hope this discovery will provide important information about the end of the Mittani-period city and the beginning of Assyrian rule in the region. “It is close to a miracle that cuneiform tablets made of unfired clay survived so many decades under water,” Pfälzner says.

 

AR #87

 “Gardens Under the Sea”

By William B. Stoecker

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First Plants Grown with Lunar Soil

Scientists have grown plants in soil from the moon, a first in human history and a milestone in lunar and space exploration.

In a new paper published in the journal Communications Biology, researchers showed that plants can successfully sprout and grow in lunar soil. Their study also investigated how plants respond biologically to the moon’s soil, also known as lunar regolith, which is radically different from soil found on Earth.


This work is a first step toward one day growing plants for food and oxygen on the moon or during space missions. More immediately, this research comes as the Artemis Program plans to return humans to the moon.


“Artemis will require a better understanding of how to grow plants in space,” said Rob Ferl, one of the study’s authors and a distinguished professor of horticultural sciences in the UF Institute of Food and Agricultural Sciences (UF/IFAS).
Even in the early days of lunar exploration, plants played an important role, said Anna-Lisa Paul, also one of the study’s authors and a research professor of horticultural sciences in UF/IFAS.


“Plants helped establish that the soil samples brought back from the moon did not harbor pathogens or other unknown components that would harm terrestrial life, but those plants were only dusted with the lunar regolith and were never actually grown in it,” Paul said.


Paul and Ferl are internationally recognized experts in the study of plants in space. Through the UF Space Plants Lab, they have sent experiments on space shuttles, to the International Space Station and on suborbital flights.


“For future, longer space missions, we may use the moon as a hub or launching pad. It makes sense that we would want to use the soil that’s already there to grow plants,” Ferl said. “So, what happens when you grow plants in lunar soil, something that is totally outside of a plant’s evolutionary experience? What would plants do in a lunar greenhouse? Could we have lunar farmers?”


To begin to answer these questions, Ferl and Paul designed a deceptively simple experiment: plant seeds in lunar soil, add water, nutrients and light, and record the results.


The complication: The scientists only had 12 grams — just a few teaspoons — of lunar soil with which to do this experiment. On loan from NASA, this soil was collected during the Apollo 11, 12 and 17 missions to the moon. Paul and Ferl applied three times over the course of 11 years for a chance to work with the lunar regolith.


The small amount of soil, not to mention its incalculable historical and scientific significance, meant that Paul and Ferl had to design a small scale, carefully choreographed experiment. To grow their tiny lunar garden, the researchers used thimble-sized wells in plastic plates normally used to culture cells. Each well functioned as a pot. Once they filled each “pot” with approximately a gram of lunar soil, the scientists moistened the soil with a nutrient solution and added a few seeds from the Arabidopsis plant.


Arabidopsis is widely used in the plant sciences because its genetic code has been fully mapped. Growing Arabidopsis in the lunar soil allowed the researchers more insight into how the soil affected the plants, down to the level of gene expression.


As points of comparison, the researchers also planted Arabidopsis in JSC-1A, a terrestrial substance that mimics real lunar soil, as well as simulated Martian soils and terrestrial soils from extreme environments. The plants grown in these non-lunar soils were the experiment’s control group.


Before the experiment, the researchers weren’t sure if the seeds planted in the lunar soils would sprout. But nearly all of them did.


“We were amazed. We did not predict that,” Paul said. “That told us that the lunar soils didn’t interrupt the hormones and signals involved in plant germination.”


However, as time went on, the researchers observed differences between the plants grown in lunar soil and the control group. For example, some of the plants grown in the lunar soils were smaller, grew more slowly or were more varied in size than their counterparts.


These were all physical signs that the plants were working to cope with the chemical and structural make-up of the moon’s soil, Paul explained. This was further confirmed when the researchers analyzed the plants’ gene expression patterns.


“At the genetic level, the plants were pulling out the tools typically used to cope with stressors, such as salt and metals or oxidative stress, so we can infer that the plants perceive the lunar soil environment as stressful,” Paul said. “Ultimately, we would like to use the gene expression data to help address how we can ameliorate the stress responses to the level where plants — particularly crops — are able to grow in lunar soil with very little impact to their health.”


How plants respond to lunar soil may be linked to where the soil was collected, said Ferl and Paul, who collaborated on the study with Stephen Elardo, an assistant professor of geology at UF.


For instance, the researchers found that the plants with the most signs of stress were those grown in what lunar geologists call mature lunar soil. These mature soils are those exposed to more cosmic wind, which alters their makeup. On the other hand, plants grown in comparatively less mature soils fared better.
Growing plants in lunar soils may also change the soils themselves, Elardo said.


“The moon is a very, very dry place. How will minerals in the lunar soil respond to having a plant grown in them, with the added water and nutrients? Will adding water make the mineralogy more hospitable to plants?” Elardo said.
Follow up studies will build on these questions and more. For now, the scientists are celebrating having taken the first steps toward growing plants on the moon.


“We wanted to do this experiment because, for years, we were asking this question: Would plants grow in lunar soil,” Ferl said. “The answer, it turns out, is yes.”

 

AR #68

“Hidden Agenda?”

John Kettler

Posted on

Water Found in Ancient Moon Volcanoes

Billions of years ago, a series of volcanic eruptions broke loose on the moon, blanketing hundreds of thousands of square miles of the orb’s surface in hot lava. Over the eons, that lava created the dark blotches, or maria, that give the face of the moon its familiar appearance today.

New research suggests that volcanoes may have left another lasting impact on the lunar surface: sheets of ice that dot the moon’s poles and, in some places, could measure dozens or even hundreds of feet thick.

“We envision it as a frost on the moon that built up over time,” said Andrew Wilcoski, lead author of the new study and a graduate student in the Department of Astrophysical and Planetary Sciences (APS) and the Laboratory for Atmospheric and Space Physics (LASP) at CU Boulder.

He and his colleagues published their findings this month in The Planetary Science Journal.

The researchers drew on computer simulations, or models, to try to recreate conditions on the moon long before complex life arose on Earth. They discovered that ancient moon volcanoes spewed huge amounts of water vapor, which then settled onto the surface—forming stores of ice that may still be hiding in lunar craters. If any humans had been alive at the time, they may even have seen a sliver of that frost near the border between day and night on the moon’s surface.

It’s a potential bounty for future moon explorers who will need water to drink and process into rocket fuel, said study co-author Paul Hayne. 

“It’s possible that 5 or 10 meters below the surface, you have big sheets of ice,” said Hayne, assistant professor in APS and LASP.

Temporary atmospheres
The new study adds to a growing body of evidence suggesting that the moon may be awash in a lot more water than scientists once believed. In a 2020 study, Hayne and his colleagues estimated that nearly 6,000 square miles of the lunar surface could be capable of trapping and hanging onto ice—mostly near the moon’s north and south poles.
Where all that water came from in the first place is unclear.

 “There are a lot of potential sources at the moment,” Hayne said.

Volcanoes could be a big one.
The planetary scientist explained that from 2 to 4 billion years ago, the moon was a chaotic place. Tens of thousands of volcanoes erupted across its surface during this period, generating huge rivers and lakes of lava, not unlike the features you might see in Hawaii today—only much more immense.
“They dwarf almost all of the eruptions on Earth,” Hayne said. 

Recent research from scientists at the Lunar and Planetary Institute in Houston shows that these volcanoes likely also ejected towering clouds made up of mostly carbon monoxide and water vapor. These clouds then swirled around the moon, potentially creating thin and short-lived atmospheres.

That got Hayne and Wilcoski wondering: Could that same atmosphere have left ice on the lunar surface, a bit like frost forming on the ground after a chilly fall night? 

Forever ice
To find out, the duo and Margaret Landis, a research associate at LASP, set out to try to put themselves onto the surface of the moon billions of years ago. 

The team used estimates that, at its peak, the moon experienced one eruption every 22,000 years, on average. The researchers then tracked how volcanic gases may have swirled around the moon, escaping into space over time. And, they discovered, conditions may have gotten icy.

According to the group’s estimates, roughly 41% of the water from volcanoes may have condensed onto the moon as ice. 

“The atmospheres escaped over about 1,000 years, so there was plenty of time for ice to form,” Wilcoski said.
There may have been so much ice on the moon, in fact, that you could, conceivably, have spotted the sheen of frost and thick, polar ice caps from Earth. The group calculated that about 18 quadrillion pounds of volcanic water could have condensed as ice during that period. That’s more water than currently sits in Lake Michigan. And the research suggests that much of that lunar water may still be present today.

Those space ice cubes, however, won’t necessarily be easy to find. Most of that ice has likely accumulated near the moon’s poles and may be buried under several feet of lunar dust, or regolith. 

“We really need to drill down and look for it,” he said.


Atlantis Rising Magazine #126

Vast Reserves of Water Found on the Moon