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Showing posts with label Experiment. Show all posts
Showing posts with label Experiment. Show all posts

Tuesday, December 20, 2011

"ROSETTA STONE" FOUND TO DECODE THE MYSTERY OF GAMMA RAY BURSTS


Scientists have pieced together the key elements of a gamma-ray burst, from star death to dramatic black hole birth, thanks to a March 29, 2003 explosion considered the "Rosetta stone" of such bursts.This telling March 29 burst in the constellation Leo, one of the brightest and closest on record, reveals for the first time that a gamma-ray burst and a supernova -- the two most energetic explosions known in the Universe -- occur essentially simultaneously, a quick and powerful one-two punch.
The results appear in the June 19 issue of Nature. The burst was detected by NASA's High-Energy Transient Explorer (HETE) and observed in detail with the European Southern Observatory's Very Large Telescope (VLT) at the Paranal Observatory in Chile.
"We've been waiting for this one for a long, long time," said Dr. Jens Hjorth, University of Copenhagen, lead author on one of three Nature letters. "The March 29 burst contains all the missing information. It was created through the core collapse of a massive star."
The team said that the Rosetta stone burst also provides a lower limit on how energetic gamma-ray bursts truly are and rules out most theories concerning the origin of "long bursts," lasting longer than two seconds.
Gamma-ray bursts temporarily outshine the entire Universe in gamma-ray light, packing the energy of over a million billion suns. Yet these explosions are fleeting -- lasting only seconds to minutes -- and occur randomly from all directions on the sky, making them difficult to study.
A supernova is associated with the death of a star about eight times as massive as the Sun or more. When such stars deplete their nuclear fuel, they no longer have the energy (in the form of radiation pressure outward) to support their mass. Their cores implode, forming either a neutron star or (if there is enough mass) a black hole. The surface layers of the star blast outward, forming the colorful patterns typical of supernova remnants.
Scientists have suspected gamma-ray bursts and supernovae were related, but they have had little observational evidence, until March 29.


 "The March 29 burst changes everything," said co-author Dr. Stan Woosley, University of California, Santa Cruz. Just as the Rosetta stone helped us understand a lost, ancient language, this burst will serve as a tool to decode gamma-ray bursts. It's now known for certain that at least some gamma-ray bursts are produced when black holes, or perhaps very unusual neutron stars, are born inside massive stars, according to the team GRB 030329, named after its detection date, occurred relatively close, approximately 2 billion light years away (at redshift 0.1685). The burst lasted over 30 seconds. ("Short bursts" are less than 2 seconds long.) GRB 030329 is among the 0.2% brightest bursts ever recorded. Its afterglow lingered for weeks in lower-energy X-ray and visible light.
With the VLT, Hjorth and his colleagues uncovered evidence in the afterglow of a massive, rapidly expanding supernova shell, called a hypernova, at the same position and created at the same time as the afterglow. The following scenario emerged: Thousands of years prior to this explosion, a very massive star, running out of fuel, let loose much of its outer envelope, transforming itself into a bluish Wolf-Rayet star. The Wolf-Rayet star -- containing about 10 solar masses worth of helium, oxygen and heavier elements -- rapidly depleted its fuel, triggering the Type Ic supernova / gamma-ray burst event. The core collapsed, without the star's outer part knowing. A black hole formed inside surrounded by a disk of accreting matter, and, within a few seconds, launched a jet of matter away from the black hole that ultimately made the gamma-ray burst.
The jet passed through the outer shell of the star and, in conjunction with vigorous winds of newly forged radioactive nickel-56 blowing off the disk inside, shattered the star. This shattering represents the supernova event. Meanwhile, collisions among pieces of the jet moving at different velocities, all very close to light speed, created the gamma-ray burst. This "collapsar" model, introduced by Woosley in 1993, best explains the observation of GRB 030329, as opposed to the "supranova" and "merging neutron star" models.
In previous gamma-ray bursts, scientists had found evidence of iron in the afterglow light, a signature of a star explosion. Also, the location of a supernova occurring in 1998, named SN1998bw, appeared to be in the same vicinity as a gamma-ray burst. The data was inconclusive, however, and many scientists remained skeptical of the association.
Supernova 1998bw whetted our appetite," said co-author Dr. Chryssa Kouveliotou of the NASA Marshall Space Flight Center in Huntsville, Ala. "But it took five more years before we could confidently say we found the smoking gun that nailed the association between gamma-ray bursts and supernovae, at least for some bursts."
"This does not mean that the gamma-ray burst mystery is solved," Woosley said. "We are confident that long bursts involve a core collapse, probably creating a black hole. We have convinced most skeptics. We cannot reach any conclusion yet, however, on what causes short gamma-ray bursts."
Short bursts might be caused by neutron star mergers. A NASA-led international satellite named Swift, to be launched in January 2004, will "swiftly" locate gamma-ray bursts and may capture short-burst afterglows, which have yet to be detected.
The VLT is the world's most advanced optical telescope, comprising four 8.2-meter reflecting Unit Telescopes and, in the future, four moving 1.8-meter Auxiliary Telescopes for interferometry. HETE was built by MIT as a mission of opportunity under the NASA Explorer Program, with collaboration among U.S. universities, Los Alamos National Laboratory, and scientists and organizations in Brazil, France, India, Italy and Japan.


Saturday, November 12, 2011

ScienceShot: How to Tame Lightning

Credit: Ryan van Herel and Stewart Hardie/ISNS/2011 AIP
Who at school didn't like to play with a Van de Graaff generator? Wind it up, put a finger close to the metal shell and—zap!—a spark jolts across the gap. Now imagine the length of that electrical discharge isn't a few millimeters, but 60 meters. That's the accomplishment of a team of electrical engineers, which has developed a new way to create electrical discharges, or "arcs." As they will report in an upcoming issue of the Journal of Applied Physics, the researchers hooked up a thin, 60-meter-long copper wire to the terminals of a 270-kilovolt electrical supply. When they turned it on, the wire exploded into several short sections, forming beads of plasma, or conductive gas. These plasma beads grew rapidly until they formed a channel, allowing the discharge of a striking white arc. The researchers believe this "exploding wire" method, which needs less than 5% of the electric field required for an arc without an initial wire, could be used to make record-breaking arcs, hundreds of meters long. One application might be to capture lightning from thunderclouds, to save it from striking manmade objects on the ground.

Tuesday, November 8, 2011

The four flavors of neutrinos?


ScienceDaily (Nov. 3, 2010).Results of an experimental physicist from Fermilab's leading seemed to confirm the existence of a strange discovery that has been aged 20 years, perforating the standard model, which leads to the existence of a new elementary particle: a fourth flavor of neutrino.
New results are then further describes the violation of fundamental symmetries of the universe, who thought that the anti-matter particles behave similar to the material.
Neutrinos are elementary particles are neutral and comes from the radioactive decay of other particles. "Flavours" another of the neutrino is a neutral pair of electrons and her cousins ​​the larger, muon and tau. Whatever the original flavors of neutrinos, particles are constantly moving from one type of flavor to another in a phenomenon called "neutrino flavor Oscillation."
An electron neutrino can change into muon neutrinos, and then back again into electron neutrinos. Scientists believe that there are three flavors of neutrinos. In the Mini Booster Neutrino experiments of this experiment, MiniBooNE abbreviated, scientists detected a displacement (oscillation) is more than that predicted if there were only three flavors.
"These results refer to the existence of either a new particle or styles that we've never imagined before," said Byron Roe, processor emeritus in the Department of Physics University of Michigan, and an author of a scientific paper on these results a new were recently published online by Physical Review Letters.
"The simplest explanation involves the addition of a neutrino-like particles, or sterile neutrinos, which do not have the normal weak interactions in neutrinos exist."
All three types of neutrinos are known to interact with matter primarily through the weak nuclear force (weak nuclear force), which causes them difficult to detect. And because it has been hypothesized that this fourth flavor will not interact through the weak force, which makes it increasingly difficult to find.
"The existence of sterile neutrinos may help to explain the composition of the universe," said William Louis, a scientist at Los Alamos National Laboratory who was a disciple of Roe apada S3 UM and is involved in the MiniBooNE experiment.
"Physicists and astronomers are looking for sterile neutrinos because they can explain some or even all of the dark matter (dark matter) in the universe," said Louis. "Sterile neutrinos may also help to explain the asymmetry of matter in the universe, or why the universe consists primarily of matter, not antimatter."
MiniBooNE experiment, a collaboration of 60 scientists at several institutions, conducted at Fermilab to check the results of the experiments the Liquid Scintillator Neutrino Detector (LSND), the fancy began in 1990. LSND is the first experiment to detect neutrino oscillations more than predicted by standard models.
Initial results from the MiniBooNE few years ago, based on data from a gunshot neutrino (open, shots antineutrino), does not support the results from LSND. Although, LSND experiments performed using antineutrino shots, so it is the next step for MiniBooNE.
These new results are based on data from the first three years on the antineutrino experiment with shots, and they give very different results from previous results. MiniBooNE antineutrino data shot turned out to support the results of the LSND findings. And the fact that the MiniBooNE experiments produced different results for the antineutrino and neutrino, in particular amaze the physicists.
"The fact that we see this influence on the antineutrino, and not in neutrinos make it more weird," says Roe. "These results mean that the addition of more serious on our standard model would be needed than the thought of the first results of LSND"
This result is like a violation of "charge-parity symmetry" of the universe, which states that the laws of physics run in the same way on the particle by particle pairs. Violation of this symmetry can only previously seen on the rare decay, but instead of neutrinos, Roe said.
Although these results hasi-a statistically significant and does support the LSND results, the researchers to carefully by stating that they need the results of a longer span of time, or additional experiments before physicists can leave the predictions of standard model
Scientific work is called "Event Excess in the MiniBooNE Search for?? ?? e oscillations. "Which will be published in the latest issue of Physical Review Letters.
The research was funded by Fermilab, the Department of Energy, and the National Science Foundation.

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