16 March 2007

Scalding Hot Ice from the Z Machine

The Z Machine at Sandia is a multipurpose machine whose main purpose is to maintain the reliability of the US nuclear deterrent. But the machine can do many things, including testing methods of nuclear fusion, and using strong magnetic fields to super-compress matter.
Sandia’s huge Z machine, which generates termperatures hotter than the sun, has turned water to ice in nanoseconds.

However, don’t expect anything commercial just yet: the ice is hotter than the boiling point of water.

“The three phases of water as we know them — cold ice, room temperature liquid, and hot vapor — are actually only a small part of water’s repertory of states,” says Sandia researcher Daniel Dolan. “Compressing water customarily heats it. But under extreme compression, it is easier for dense water to enter its solid phase [ice] than maintain the more energetic liquid phase [water].”
Sandia is a National Nuclear Security Administration (NNSA) laboratory.

In the Z experiment, the volume of water shrank abruptly and discontinuously, consistent with the formation of almost every known form of ice except the ordinary kind, which expands. (One might wonder why this ice shrank instead of expanding, given the common experience of frozen water expanding to wreck garden hoses left out over winter. The answer is that only “ordinary” ice expands when water freezes. There are at least 11 other known forms of ice occurring at a variety of temperatures and pressures.)

“This work,” says Dolan, “is a basic science study that helps us understand materials at extreme conditions.”

But it has potential practical value. The work, which appears online March 11 in Nature Physics, was undertaken partly because phase diagrams that predict water’s state at different temperatures and pressures are not always correct — a fact worrisome to experimentalists working at extreme conditions, as well as those having to work at distances where direct measurement is impractical.
Source

The multifunctional Z machine never fails to amaze me. This type of basic research produces information that can be very useful in the future.

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08 March 2006

Hotter Than the Sun--Z Pinch Points to Small Nuclear Fusion Generators


In an earlier posting here, I briefly mentioned the Z Pinch machine at Sandia Labs. Now the Z machine has achieved plasma temperatures hotter than the interior of a star. This finding suggests that smaller than predicted fusion generators may be possible.

ALBUQUERQUE, N.M. -- Sandia's Z machine has produced plasmas that exceed temperatures of 2 billion degrees Kelvin -- hotter than the interiors of stars.

The unexpectedly hot output, if its cause were understood and harnessed, could eventually mean that smaller, less costly nuclear fusion plants would produce the same amount of energy as larger plants.

The phenomena also may explain how astrophysical entities like solar flares maintain their extreme temperatures.

The very high radiation output also creates new experimental environments to help validate computer codes responsible for maintaining a reliable nuclear weapons stockpile safely and securely -- the principle mission of the Z facility.

"At first, we were disbelieving," says Sandia project lead Chris Deeney. "We repeated the experiment many times to make sure we had a true result and not an 'Ooops'!"

The results, recorded by spectrometers and confirmed by computer models created by John Apruzese and colleagues at Naval Research Laboratory, have held up over 14 months of additional tests.

A description of the achievement, as well as a possible explanation by Sandia consultant Malcolm Haines, well-known for his work in Z pinches at the Imperial College in London, appeared in the Feb. 24 Physical Review Letters.

Sandia is a National Nuclear Security Administration laboratory.

What happened and why?

Z's energies in these experiments raised several questions.

First, the radiated x-ray output was as much as four times the expected kinetic energy input.

Ordinarily, in non-nuclear reactions, output energies are less -- not greater -- than the total input energies. More energy had to be getting in to balance the books, but from where could it come?

Second, and more unusually, high ion temperatures were sustained after the plasma had stagnated -- that is, after its ions had presumably lost motion and therefore energy and therefore heat -- as though yet again some unknown agent was providing an additional energy source to the ions.

Sandia's Z machine normally works like this: 20 million amps of electricity pass through a small core of vertical tungsten wires finer than human hairs. The core is about the size of a spool of thread. The wires dissolve instantly into a cloud of charged particles called a plasma.

The plasma, caught in the grip of the very strong magnetic field accompanying the electrical current, is compressed to the thickness of a pencil lead. This happens very rapidly, at a velocity that would fly a plane from New York to San Francisco in several seconds.

At that point, the ions and electrons have nowhere further to go. Like a speeding car hitting a brick wall, they stop suddenly, releasing energy in the form of X-rays that reach temperatures of several million degrees -- the temperature of solar flares.

The new achievement -- temperatures of billions of degrees -- was obtained in part by substituting steel wires in cylindrical arrays 55 mm to 80 mm in diameter for the more typical tungsten wire arrays, approximately only 20 mm in diameter. The higher velocities achieved over these longer distances were part of the reason for the higher temperatures.

(The use of steel allowed for detailed spectroscopic measurements of these temperatures impossible to obtain with tungsten.)

Haines theorized that the rapid conversion of magnetic energy to a very high ion plasma temperature was achieved by unexpected instabilities at the point of ordinary stagnation: that is, the point at which ions and electrons should have been unable to travel further. The plasma should have collapsed, its internal energy radiated away. But for approximately 10 nanoseconds, some unknown energy was still pushing back against the magnetic field.

Haines' explanation theorizes that Z's magnetic energies create microturbulences that increase the kinetic energies of ions caught in the field's grip. Already hot, the extra jolt of kinetic energy then produces increased heat, as ions and their accompanying electrons release energy through friction-like viscous mixing even after they should have been exhausted.

High temperatures previously had been assumed to be produced entirely by the kinetic flight and intersection of ions and electrons, unaided by accompanying microturbulent fields.

Z is housed in a flat-roofed building about the size and shape of an aging high-school gymnasium.

This work has already prompted other studies at Sandia and at the University of Nevada at Reno.


The Z pinch has figured in some fascinating speculation, concerning potential nuclear fusion, and hyperspace star drives. Achieving temperatures this high should stimulate a good deal of further research. Where it eventually leads is impossible to say.

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05 January 2006

2nd Star To the Right then Straight on 'til Morning

Where would you go if you could go anywhere? Micah at Event Horizon Blog, pointed to this suite of NASA sites discussing space travel options.

A recent article in the Scotsman newspaper looks at another idea, "AN EXTRAORDINARY "hyperspace" engine that could make interstellar space travel a reality by flying into other dimensions is being investigated by the United States government.

The hypothetical device, which has been outlined in principle but is based on a controversial theory about the fabric of the universe, could potentially allow a spacecraft to travel to Mars in three hours and journey to a star 11 light years away in just 80 days, according to a report in today's New Scientist magazine.

The theoretical engine works by creating an intense magnetic field that, according to ideas first developed by the late scientist Burkhard Heim in the 1950s, would produce a gravitational field and result in thrust for a spacecraft. "
Hat tip to we make money not art.com.

A slightly older article from livescience.com discusses the z-machine as of a year ago.

Burkhard Heim proposed this general concept back in the 1950s. Some friends and I in graduate school developed a mathematical model on paper for this type of drive, but decided it would have to wait for a fusion power source. Reportedly, the Z pinch has achieved some limited fusion reactions when deuterium was added to the experimental apparatus.

Update 6 Jan 06: Here is a link to the New Scientist article that goes into a bit more detail than the Scotsman account.

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