Showing posts with label mining. Show all posts
Showing posts with label mining. Show all posts

Sunday, January 5, 2014

Mining the Moon, Fueling the Future

Remote-operated demonstration of in situ resource utilization (ISRU), believed to be a necessary prelude to mining the Moon and gaining a true foothold in space. Should the artist's notional decals have been those of the Peoples Republic of China? [Pat Rawlings].
Paul D. Spudis
The Once and Future Moon
Smithsonian Air & Space

Much of the mass we launch for space missions is what I call “dumb mass” – heavy things like water and fuel that, while absolutely necessary, contain low amounts of information.  Regardless of launch costs, there is no virtue in launching this type of mass from Earth.  Learning to use what we find in space to create new capabilities is a skill that we must master to become “space faring.”  The Moon is in an excellent location relative to Earth; it is a well-stocked laboratory where we can learn and hone these skills.

Press coverage since the December 14 soft landing of China’s Chang’E 3 on the Moon has quoted officials of the Chinese space program as stating their interest is in “mining” the Moon.  The desired commodity usually bandied about is 3He, the light isotope of helium that (in theory) could be used to fuel a “clean” nuclear fusion reaction and generate electrical power here on Earth.  Other possible lunar products mentioned in passing include metals such as titanium and aluminum.  But what exactly is meant when we talk about “mining” the Moon?  What materials on the lunar surface are useful and thus valuable?  Perhaps the term “useful” needs some exposition.

Mining merely means the extraction of some useful product from a planet.  In the context of extraterrestrial mining, useful might mean useful in space, not necessarily useful to import back to the Earth.  For example, right now, there are abundant terrestrial supplies of aluminum.  It makes no economic sense to mine aluminum from the Moon or some other space object for import back to Earth.  However, if we’re in the process of establishing a permanent presence on some extraterrestrial object, several tons of aluminum from local sources might be very handy.   While no one would suggest exporting simple, low-processing materials such as bulk soil (regolith) and aggregate (concrete and adobe) back to Earth, they have uses and thus enormous value on the Moon and in space for local building and other engineering requirements.

The real value of extraterrestrial mining is accessing material outside of Earth’s gravity well and making products that enable and create new capabilities in space and on other worlds.  So far, we have not found any deposits of unknown materials in space that cannot be found on Earth (the “unobtainium” beloved of science fiction writers).  But we have found deposits of common materials that, while having no economic value for return to Earth, have enormous value in space.  Anything that we can find and use on another world means that much less material that has to be launched from the surface of the Earth.  With launch costs of many thousands of dollars per pound, every bit of mass that we can find and use in space is that much less budget-busting dumb mass hauled up from Earth.

I believe that the real game-changer for mining the planets is water.  This most common of substances is the most valuable commodity in space because it has so many uses.  Water is attractive because it is easily transportable in solid or liquid form, but it is massive and thus, expensive to move around in space.  Most of the uses of water in space will probably happen close to the sources from which we extract it, either on the planetary surface or in the space just above and near them.

[Karnik]
Water is required for life in general and in particular, for human life here and in space.  We can drink the water, use it to reconstitute dehydrated food, use it for thermal ballast, and protect ourselves from the hard radiation environment of deep space by jacketing spacecraft and habitats with it.  Water is a simple molecule (H2O) and can be broken into its constituent elements by the process of passing an electrical current through it; we can thus easily “crack” water into its components (hydrogen and oxygen) and store these gases for later use.  The obvious use for this oxygen is to provide breathable air for space habitats.  But additionally, because the water cracking process is reversible, we can take these gases and combine them in fuel cells to create electricity.  This makes for a fascinating possibility; during the day, we can crack water into hydrogen and oxygen using electrical power derived from solar panels and store these products in tanks.  During times when the Sun is not visible (either night on a planet or during eclipse in space), we can re-combine these gases to generate electrical power.  Such a device is called a rechargeable fuel cell (RFC) and can provide continuous electrical power for space vehicles and habitats.  Thus, water becomes a medium for energy storage, being broken apart during daylight and recombined during the night, allowing for continuous and reliable power in space.  The valuable by-product of this process is excess water for life-support and other uses.

The last major use of water is probably the most important in terms of creating new capabilities in space.  When water is broken into its constituent gases and then frozen into liquid (cryogenic form), it becomes rocket fuel.  Liquid hydrogen and oxygen are the most powerful chemical propellant known.  The ability to make rocket fuel in space changes almost everything we know about the economics of spaceflight.  Because of its high cost, anything that we can do to lower the required mass launched from Earth saves money and makes spaceflight more capable.  In the case of missions beyond low Earth orbit, most of the mass of the Earth departure vehicle is fuel.  For a human Mars mission, more than 80% of its total mass is propellant.  Most of that propellant will be used in the rocket burn to leave Earth.  Thus, by obtaining the required propellant from a space-based source and refueling there, the total lift-off weight (cost) from Earth is much lower.

Although hydrogen-oxygen is the most powerful rocket propellant, its use does have some drawbacks.  Hydrogen has a very low boiling point, only about 20° above absolute zero (-253° C).  This extremely low temperature is difficult to generate (i.e., power intensive) so making cryogenic hydrogen is a tough proposition.  Moreover, hydrogen has an extremely low density, so storage tanks for liquid hydrogen are very large and bulky and must be carefully insulated to minimize the “boil-off” of the fuel.  Boil-off is an important problem that must be solved if we are to use space-derived cryogens for propellant; it involves capturing the boiling vapor and condensing it back into liquid form again to prevent its loss to space.

Some argue that since hydrogen is so volatile and difficult to work with, we should focus solely on obtaining oxygen from planetary sources as that gas is 16/18ths (89%) of the mass of water.  Producing liquid oxygen (boiling point of -183° C) is much easier than liquid hydrogen and it is more easily handled and stored.  However, we would still need some type of fuel to burn with this oxidizer; a variety of other substances could be used for rocket fuel, including methane (CH4), ammonia (NH3), sulfur (S) and even powered aluminum (Al).  Interestingly and fortunately for us, all of these substances are found in the deposits of the lunar poles – the most valuable real estate in our Solar System with peaks of near-constant sunlight for power generation.

The real value created by mining the Moon (or any extraterrestrial object) is capability – the ability to move more freely, more often and with more mass in and about cislunar (Earth-Moon) space where most of our national security and economic satellites reside.  By creating an off-planet supply depot, we free ourselves from the tyranny of the rocket equation.  I don’t know if the Chinese see the “problem” this way or not.  But they should.  I believe that eventually, they will.  And so must we.

The Chinese do not appear to be waiting for “magic beans” to lower launch costs.  There are many reasons to believe that those costs have already fallen about as much as they will, barring some major new launch vehicle paradigm.  By holding back and betting on some major new launch breakthrough materializing, the United States could be walking away from a sure thing – leaving the innovation and technology field, and with it the economic and national security benefits that will follow, to countries who recognize the strategic value and potential of the Moon and are already making plans to tap into it.

Originally published December 27, 2013 at his Smithsonian Air & Space blog The Once and Future Moon, Dr. Spudis is a senior staff scientist at the Lunar and Planetary Institute. The opinions expressed are those of the author but are better informed than average.

Some Related Posts:
'A Resolve to mine the Moon' (July 16, 2012)

Sunday, July 15, 2012

'A Resolve to mine the Moon'

The Canadian Space Agency's unmanned Artemis Jr. rover with the NASA RESOLVE payload will undergo another season of testing on the Big Island of Hawai'i this year, and not Mare Crisium, as pictured above. Click HERE for a much larger and realistic rendering.
Brian Shiro
Astronaut for Hire
 

I will be on the beautiful Big Island of Hawaii next week working with the Pacific International Space Center for Exploration Systems (PISCES). As I've described in previous posts, PISCES is an international research and education consortium headquartered at the University of Hawaii at Hilo that aims to develop, test, and validate technologies for use on the Moon, Mars and beyond. When humans return to the Moon and journey to Mars, they will have to live off the land. It's just too costly to bring everything we need with us. That includes rocket fuel for the return trip, water, oxygen, and other consumables. Thus, it is critical that we learn how to utilize in situ resources if we are to establish permanent presences on other worlds.

As a geophysicist by profession, my interest lies with applying my terrestrial geophysical exploration knowledge to other planetary bodies. To this end, I carried out experiments at FMARS in 2009 and MDRS in 2010 to study the human factors elements associated with astronaut-conducted geophysical surveys to prospect for subsurface resources like water. I presented my findings at the Lunar and Planetary Science Conference and Lunar Science Forum, the results of which became my UND master's thesis. Now, I am embarking on a Ph.D. at the University of Hawaii to take this work to another level in analog environments such as Hawaii.

The main system being tested at PISCES this year is the Regolith and Environment Science and Oxygen and Lunar Volatile Extraction (RESOLVE) experiment. This consists of a lunar rover and drill provided by the Canadian Space Agency (CSA) to support a NASA payload that turns regolith (dirt) into rocket fuel, water, and air. A system developed from the RESOLVE prototype may travel to the Moon in the next few years to prove that water seen from orbit is accessible and that useful products can be made from it.  It could be the key that finally makes the solar system accessible to humans in a safe, cost-efficient manner.

Read Brian's entire post at Astronaut for Hire, HERE.

Tuesday, June 19, 2012

China and the Moon

Shenzhou 9 lifts off for rendezvous and docking in space
Paul D. Spudis
The Once and Future Moon
Smithsonian Air & Space

With the weekend launch of the latest Shenzhou spacecraft and its successful rendezvous and docking with an orbiting space station, world attention is once again focused on China’s flourishing space program.  Although China’s human spaceflight efforts currently focus on low Earth orbit, in recent years they have sent two robotic orbital spacecraft to the Moon and have announced their intentions for a lunar lander/rover mission.  These efforts lead many in the west to speculate that a presence on the Moon is a likely and realistic goal for China’s space future.  In terms of the possible purpose for such lunar efforts, things are little more vague.  Most assume that China will go to the Moon for reasons similar to the geopolitical motives that impelled America to undertake the Apollo missions.  While some actually welcome China’s aspirations to conquer the Moon, other space observers smirk at their apparent willingness to (as they characterize it) “waste billions of dollars to repeat what America did thirty years ago.”  Others understand why China aims for the Moon.

The United States currently has no strategic space goal.  Many in the U.S. space community argue that the development of commercial launch services through federal subsidies is a goal.  To smooth the path for this approach, calls for consensus have been made by some New Space advocates.  Funding to support the research and development costs of these new commercial services would come by excising chunks of the rapidly dwindling NASA budget.   “Flat or declining” now describes the American civil space program budget and regularly reaching LEO to supply ISS has become our “new” vision.

In contrast, China is conducting an incremental, step-wise effort to gradually but inexorably extend their reach and influence in space, first into low Earth orbit and then into cislunar space and beyond.  Their approach uses a variety of hardware derived from existing systems while adding new capabilities over time.  China appears to be focused and following clear, long-range goals in space.  Because we do not look ahead on timescales of 20-30 years (accustomed instead to a 5-10 year timeframe), we have no long-range strategy to guide what we build or a plan for securing any long-term space goals.

Certainly wide-ranging concerns propel China’s push for human space access, some that can be envisioned now and some that cannot.  But fundamentally, they have accepted the proposition that freedom of space in the 21st century is equivalent to the principle of freedom of the seas that governed 19th and 20th century geopolitics.   In short, such a principle comprises the ability to project power and to protect national interests whenever and wherever China might be confronted within the strategic theater in question, in this case, the domain of cislunar space.

I have written before on the economic, strategic and scientific value of cislunar space, the zone in which virtually all of our space assets and satellites reside.  China intends to preserve her freedom of action by creating a spaceflight capability that can access and use any location of cislunar space, up to and including the lunar surface.  To build a sustainable space program using incremental, cumulative steps, it makes no sense to “leapfrog” over (or to ignore) the intermediate locations from which space faring capability and utility can be demonstrated, established and used.

Much of the published speculation on China’s interest in the Moon focuses on mining the Moon for the nuclear fusion fuel 3He or substances found on the lunar surface, such as titanium or rare earth elements.  In fact, one of the simplest substances found on the Moon has enormous value in space – water.  Water can be used to support human life, as a medium of energy storage, and as rocket propellant.  Water is the currency of spaceflight and one of the most valuable, usable substances we could obtain from any extraterrestrial object.

If I wanted to establish a secure foothold for my country in cislunar space, I would secure the territory near the poles of the Moon.  We know from the results of several recent probes that the lunar poles contain billions of tons of water, much of it chemically unbound as ice, a particularly easy form to harvest, concentrate and use. Material and energy resources, concentrated together in a compact location are assets of immense economic and strategic value.  Wars have been waged over less.

International treaty prohibits claims of extraterrestrial territory by national entities.  But treaties are “gentlemen’s agreements” and sometimes nations do not behave like gentlemen.  There is no mechanism to enforce the 1967 Outer Space Treaty except for a given country’s unwillingness to undergo international opprobrium.  Moreover, a country can withdraw from the treaty at will.  China tends to do what it wants to do, unless the economic or political price is perceived to be too high.  The potential of the Moon and cislunar space may outweigh their sense of geopolitical risk or concern about international ostracism.

What does this mean for the United States?  To listen to many in the space press, nothing.  A quick yawn and then back to propagandizing for more federal dollars to be passed on to new space companies.  But ultimately, it could mean that their libertarian dreams of a profit-making space frontier will never come to pass.  If free market capitalism and democratic political institutions are to have a future in the new frontier of space, entities, investors and consumers who share these values must secure a notable presence.  If the United States has a vigorous civil space program that creates a permanent presence there, such a system may have a chance to take root.  Conversely, our absence is almost a guarantee that our system and values will not be the guiding paradigm on the new frontier.

For many observers, an absent America (or with a mere supporting role) would be acceptable.  They believe America is what’s wrong with the world and that it’s high time that we step aside (in their opinion to one of subservience and irrelevance – certainly not one of power projection or as an economic engine and technology driver).  Parties (and countries) that lead make the rules.  While China has a great industrial base and a large, seemingly market-based economic system, it is actually a system of big government corporatism, where central planners decide which industries shall be allowed to grow and in what direction – capitalism, under total governmental control.

China is a rapidly advancing technically and is one of our largest trading partners, attributes beneficial in relationships between equals.  Historically, once a shift occurs in the status of partners, relationships change.  Because China’s influence in the world is growing, it is vital that we discuss and weigh these facts.  Our national economic and security interests cannot be jeopardized by a misguided rush to hand our space future over to companies who are in the imagining stage of what China just accomplished this weekend.

Originally published at his Smithsonian Air & Space blog The Once and Future Moon, Dr. Spudis is a senior staff scientist at the Lunar and Planetary Institute. The opinions expressed are those of the author and are better informed than average.

Wednesday, May 30, 2012

Alabama Lunabotics sweeps KSC competition


Tuscaloosa CBS42.com
Alabama Lunabotics, a team of students from The University of Alabama and Shelton State Community College, won the top prize in the NASA Lunabotics Mining Competition at the Kennedy Space Center in Cape Canaveral, Fla. The week-long contest included more than 50 teams from universities around the world.

On May 26, the last day of the contest, NASA officials announced Alabama Lunabotics notched the most points in the competition, winning the Joe Kosmo Award for Excellence. The team also won first place for its presentation and demonstration, first place for team spirit and second place in the mining portion of the competition.

In all, Alabama Lunabotics won $8,000 to use for next year’s competition, and NASA will pay for this year’s team and faculty adviser to participate at one of NASA’s remote research and technology tests. They also received an invitation to watch a spacecraft launch at Kennedy Space Center as guests of NASA.

The group was led by experienced students marking their second or third year on the team. In 2010, the first year NASA held the competition, Alabama Lunabotics placed sixth, and, in 2011, the team placed fourth, said Dr. Kenneth Ricks, associate professor of electrical and computer engineering and the team’s faculty adviser.

“The students on this UA team are very talented engineers with competition experience,” Ricks said. “That experience of being at the competition before is very valuable, so they knew what had to be done to be competitive.”

Excerpt from full article, HERE.

Tuesday, May 15, 2012

Lunar boom: we'll soon mine the Moon

"As history has repeatedly shown, where there are valuable minerals to be unearthed, adventurous humans will arrive in droves – even if it means battling extreme conditions and risking life and limb. So what will happen when the next great “gold rush” in our history is quite literally out of this world…" A landscape of the imagination, in this case inspired by Mark Maxwell and JAXA, shows part of a larger study for Astrobotic Technology a generation or two beyond their present production line. In the deep lunar south their notional "Moon Digger" vehicles are clearing, perhaps in some places sintering, a new landscape more familiar to human civilization, extracting billions of years of space sediment along the way [Mark Maxwell/Astrobotic/JAXA]..
Leonhard Bernold
Associate Professor of Engineering
University of New South Wales
theconversation.edu.au

As history has repeatedly shown, where there are valuable minerals to be unearthed, adventurous humans will arrive in droves – even if it means battling extreme conditions and risking life and limb.

So what will happen when the next great “gold rush” in our history is quite literally out of this world? And what kind of technology would be needed for the mining? After many years of trying, I believe a have a workable answer to the second of these questions – but what about the first?

Business analysts may poke fun at the “impossibly” expensive cost of mining nearby celestial bodies such as asteroids, or even the moon, but these pursuits are not beyond the realm of possibility.

Returning to the moon for the purposes of mining will require new technologies and new ways of thinking, and this extends to the conventional business model. We cannot write these pursuits off based on high cost alone, especially given the hidden treasures to be found.

So, will we ever see mining trucks hauling material on the moon or on the asteroids? Quite simply, no.

It is a common mistake made by engineers, including myself, to project terrestrial technology on to the moon. After all, the moon’s environment is vastly different to that of Earth.

Read the complete premier, HERE.

Friday, May 11, 2012

University of Alabama team readies for 3rd NASA Lunabotics competition at KSC, May 21-27

Early strength testing "using last year's wheels on a new base."
Alabama Lunabotics, a team of students from The University of Alabama and Shelton State Community College, will compete in the 3rd annual NASA Lunabotics Mining Competition, May 21-27, at the Kennedy Space Center in Florida.

Competing against 66 teams from all over the world, the University of Alabama team builds on past solid showings, placing fourth last year. 

Their remote-operated robot is designed to collect at least 10 kilograms of a lunar regolith simulant in 10 minutes. As Apollo astronauts learned, talcum-grained, but highly abrasive lunar dust (and NASA's proxies) presents an immediate engineering test

Contest judging will be based on their vehicle's weight, the rate and weight of material excavated, moved and redeposited, and bandwidth used in teleoperation. Teams will be judged on its engineering write-ups and less tangible qualities such as "community outreach, team spirit and the multidisciplinary level of the team."

"We decided to do a complete re-design of our robot because of the change in dimensions after last year's competition," writes the team on their website. "Our competition robot from last year is used as an educational tool. We carried several of the concepts over from last year, one of them being a sweeping wheel design."

One of the problems with driving on an extremely powdery and soft surface like the moon is gaining traction. 

Conventional steering styles dig into the driving surface while turning. Skid-steering, like a tank, is "exceptionally bad with this, especially when your vehicle has a large mass." 

Because the NASA Lunabotics competition revolves around mining and transporting, teams are guaranteed "high mass scenarios." The Alabama Lunabotics teams has chosen to operate each wheel independently, and to sweep them to turn in one spot, or move sideways, while maintaining a "positive driving style."

Alabama Lunabotics sneak-preview video spotlighting "The Base"

Wednesday, May 9, 2012

"To mine the stars, hire a mining engineer"

Astrobotic Technology, a competitor for the Google Lunar X-Prize, is engaged in a two-year contract with NASA to develop a prototype robotic excavator to recover water and methane near the Moon’s north pole. Hydrogen compounds and other volatiles mined from the Moon can be transformed for life support and fuel would otherwise continue to be very expensive to transport beyond Earth's atmosphere [Astrobotic Technologies, Inc.].
George Leopold
EET

There’s been a lot of talking lately about mining asteroids for precious metals like platinum. A group of space entrepreneurs recently announced the formation of a company called Planetary Resources to pursue that ambitious goal.

We asked a former miner and NASA engineer who now writes about subjects like mining the moon whether something as audacious as asteroid mining makes any sense.

 “I looked [at Planetary Resources’] advisory board, and I did not see a single mining engineer. That’s a big mistake,” warns Homer Hickam, whose escape from the coal mines of West Virginia to a career at NASA was chronicled in his 1998 book, Rocket Boys, and the 1999 film, “October Sky.”

 

Working below the Earth’s surface, then training shuttle astronauts to work in space gives Hickam a unique perspective on the question of space mining and whether we have the technology to actually do it. “When you start digging in the dirt – I don’t care if it’s on an asteroid, or the moon or West Virginia – you’d better have a mining engineer on board,” Hickam says. “It’s not as simple as you think it is.”

Even if an asteroid contained huge deposits of valuable metals like platinum or nickel, Hickam continues, “How are you going to carve that [metal] out of there? You are going to create a huge amount of debris in the process. And asteroids essentially have no gravity so it’s all going to go flying around.”

Instead, Hickam advocates mining the moon first for rare elements like Helium-3 that could potentially be used as fuel in fusion reactors. “At least you’ve got some gravity there,” he notes.

Read the full article, HERE.