Showing posts with label cambodia. Show all posts
Showing posts with label cambodia. Show all posts

Monday, June 22, 2009

Recipe for the Perfect James Webb Space Telescope Mirror

Technicians examine JWST mirrors for contaminants. Ball technicians examine James Webb Space Telescope mirrors. They are looking for lint or dust that may have landed on the mirror surfaces during shipping to NASA's Marshall Space Flight Center in Huntsville, Ala. Credit: NASA/MSFC, E. Given
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Mirrors are a critical part of any space telescope, and the James Webb Space Telescope's mirrors are made of a special element that will enable it to withstand the rigors of space and see farther back in time/distance than any other telescope now in operation.

Space telescope mirrors must endure the extremely frigid temperatures in space, be highly reflective, lightweight and tough. Those are exactly the qualities that make up the 18 mirrors being developed for the Webb Telescope.

To collect as much light as possible to see galaxies from 13 billion light-years away, the Webb Telescope needs a large mirror but also needs to be lightweight enough to not weigh down the rocket carrying it into space. The answer was to make it out of beryllium.

Mirror History and Make-up

By definition, a mirror is an object with a surface that is smooth enough to form an image, such as a "plane mirror," which has a flat surface. Curved mirrors produce magnified or reduced images or focus light or simply distort the reflected image. Most mirrors are designed for visible light. There are, however, mirrors that work at other wavelengths of electromagnetic radiation, "such as X-ray, infrared, microwave, or even radio wavelengths.

Technicians prepare JWST mirrors for testing in a vacuum chamber. The Marshall Space Flight Center received two mirrors in the first shipment in December 2008. NASA and Ball Engineering technicians guide the mirrors into the center's X-ray and Cryogenic Facility's vacuum chamber for testing. Credit: NASA/MSFC, E. Given
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Mirrors on Earth have been made from many things. Europeans during the Renaissance coated glass with a tin-mercury amalgam. The silvered-glass mirror invented in 1835 involved the deposition of a thin layer of metallic silver onto glass through the chemical reduction of silver nitrate. Today, mirrors are often produced by the vacuum deposition of aluminum (or sometimes silver) directly onto the glass substrate.

Space Mirrors: What is Beryllium?

Mirrors for space telescopes require special materials. That's where beryllium comes in. Beryllium is a light metal (atomic symbol: Be) with many features that make it desirable to be used for the Webb Telescope's mirrors.

Beryllium is steel-gray in color, very strong for its weight and good at holding its shape across a range of temperatures, which is just what it would encounter in space. Beryllium is also a good conductor of electricity and heat and is not magnetic. It also has one of the highest melting points of the light metals.

What's also interesting is that beryllium is a relatively rare element in both the Earth and the universe, because stable forms of beryllium are not formed either in the atomic reactions inside stars or in the Big Bang. Instead, when carbon and oxygen atoms in the gas between the stars collide with each other or are struck by other particles, the nucleus of the atoms will occasionally break into up into the lighter elements lithium, beryllium and boron.

Here on Earth, most of the beryllium exists in minerals such as beryl and bertrandite. It is also a component of the precious gems aquamarine, red beryl and emerald. Currently, most industrial production of beryllium is accomplished by a chemical reaction between beryllium fluoride and magnesium metal.

Beryllium is used to develop parts for supersonic (faster-than-the-speed-of-sound) airplanes and the Space Shuttle, because it is both lightweight and strong. It is also used in gyroscopes, computer equipment, watch springs and instruments where light weight, rigidity and dimensional stability are needed.

Beryllium is actually highly toxic to plants, animals and humans. It's not necessary or useful for life. In fact, it has no known role in living organisms. So, during the manufacturing and handling, special care has to be taken when working with it, because it is unhealthy to breathe in or swallow beryllium dust.

How and Where the Beryllium Mirror is Made

The beryllium being used to make the Webb Telescope's mirrors was mined in Utah and then purified. The particular type of beryllium used in the Webb mirrors is called "O-30" and is a fine powder of high purity. The powder is then placed into a stainless steel canister and pressed into a flat shape. The steel canister is then removed and the resulting chunk of beryllium is cut in half to make two mirror blanks about 1.3 meters (4 feet) across. Each mirror blank will be used to make one mirror segment; the full Webb mirror will be made from 18 hexagonal (six-sided) segments.

Once the mirror blanks pass inspection, they are molded into their final shape, polished and temperature tested to ensure they can withstand the frigid temperatures of space.

Beryllium is much more capable than glass to handle the frigid cold of space. The James Webb Space Telescope will face a temperature of -240 degrees Celsius (33 Kelvin). Beryllium contracts and deforms less than glass -- and remains more uniform -- in such temperatures. For the same reason, the optics of the Spitzer Space Telescope were entirely built of beryllium metal. It is thanks to beryllium that the James Webb Space Telescope will be able to see further back into the universe and back in time than any other space telescope operating today.

The James Webb Space Telescope is expected to launch in 2013. NASA's Goddard Space Flight Center in Greenbelt, Md., is managing the overall development effort for the Webb Telescope. The telescope, being built by Northrop Grumman, is a joint project of NASA and many U.S. partners, the European Space Agency and the Canadian Space Agency.
Rob Gutro
NASA's Goddard Space Flight Center

With Every Beat, NASA Involved in How the Heart Behaves

"Who knows?" laughed Dr. Rob Bryant, the inventor of a NASA 'super plastic.' "The life I save might be my own."

Dr. Rob Bryant examines a laboratory model of a cardiac resynchronization therapy device

Rob Bryant, a senior researcher at NASA's Langley Research Center in Hampton, Va., examines a laboratory model of a cardiac resynchronization therapy (CRT) device. Bryant is the inventor of a high tech aerospace plastic called LaRC-SI that is the insulation material on one of the thinnest left-heart leads available for a CRT.
Credit: NASA/Sean Smith

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Then Bryant, a senior researcher at NASA Langley, takes a serious note, "Langley Research Center's Soluble Imide is an excellent example of how taxpayer investment in NASA materials research has resulted in a direct benefit beyond the aerospace sector by extending the quality of life through medical technology."

And heart failure, like structure failure on an aircraft, is serious business.

The plastic is an advanced aerospace resin, Langley Research Center's Soluble Imide, or LaRC-SI -- a highly flexible material, resistant to chemicals, and withstands extreme hot and cold temperatures. The technology was developed for an aerospace high-speed research program. But among its other applications, the material was also discovered to be biologically inert -- suitable for medical use including implantable devices.

For more about LaRC SI, visit:
› http://technologygateway.nasa.gov/Advanced_Materials.html
› http://www.sti.nasa.gov/tto/Spinoff2008/hm_4.html

The application is the insulation for leads to the human heart from a cardiac resynchronization therapy or CRT -- a stopwatch-sized device implanted into the chest. A lead is a special wire that delivers energy from a CRT to the heart muscle. Electrical impulses generated by CRTs resynchronize heartbeats and improve blood flow.

NASA licensed the patented LaRC-SI insulation technology in July 2004 to Medtronic Inc. -- a Minneapolis-based medical technology company -- who recognized the potential of the highly flexible resin for its Attain Ability left-heart lead cardiac CRT device.

Due in part to Langley Research Center's Soluble Imide, on April 6, 2009, the U.S. Food and Drug Administration approved a left-heart lead available for use with the new Medtronic CRT -- one of the thinnest available for heart failure patients. The use of this NASA-developed material in a medical implant is the latest in a long line of medical applications that have benefited from NASA technology.

Artist depiction of the placement of a Medtronic Inc. Attain Ability left-heart lead

Artist's depiction of the placement of a Medtronic Inc. Attain Ability left-heart lead to improve the heart's efficiency to increase blood flow to the body. The lead is one of the thinnest available because of NASA's LaRC SI, a high tech aerospace plastic used as the insulation material.
Credit: Medtronic, Inc.

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"One of the advantages of this material is that it lends itself to a variety of diverse applications, from mechanical parts and composites to electrical insulation and adhesive bonding," added Bryant.

Heart failure occurs when the heart muscle is unable to pump effectively to meet the body's need for blood and oxygen. It is a chronic and progressive condition that affects more than five million Americans and more than 22 million individuals worldwide. Cardiac resynchronization therapy, or CRT, is designed to coordinate the contraction of the heart's two lower chambers and improve the heart's efficiency to increase blood flow to the body.

The NASA insulation material makes possible the compact and flexible design of Medtronic's CRT lead, one of the thinnest left-heart leads available. Placing a lead in the heart is widely recognized by physicians as the most challenging aspect of implanting CRT devices. The narrow design allows physicians to choose between different sites on the heart to deliver optimal therapy. The lead is delivered by an inner catheter, a feature that helps physicians place the lead directly in difficult-to-reach areas of the heart. Clinical studies in the U.S. and Canada showed physicians were successful in placing the Attain Ability lead 96.4 percent of the time.

The Langley Research Center's Soluble Imide was featured in Spinoff 2008 -- NASA's annual premier publication featuring successfully commercialized NASA technology. For more than 40 years, the NASA Innovative Partnerships Program has facilitated the transfer of NASA technology to the private sector, benefiting global competition and the economy. Since 1976, Spinoff has featured 40 to 50 of these commercial products annually.

Friday, June 19, 2009

Quirky supernova could be something new


SUPERNOVA seen in 2005 may be a new type of cosmic explosion. What's more, similar explosions may have scattered antimatter throughout our galaxy.
"SN 2005E" exploded in a galaxy 100 million light years away. A team led by Hagai Perets at the Weizmann Institute of Science in Rehovot, Israel, has concluded that it does not look like either of the well-known kinds of supernova.
The most frequently observed form is a core-collapse supernova, which happens after a massive young star has formed a large core of iron that collapses under its own gravity, releasing radiation that blows the outer layers of the star apart. They almost always occur in regions where massive new stars are forming. By contrast, SN 2005E was in the dark outskirts of its galaxy, where few new stars are forming. Core-collapse supernovae also spit out much more debris than SN 2005E did.
To date, the only other known supernova mechanism is a type Ia supernova, in which a small, dense white dwarf star steals hydrogen gas from a larger companion star. The gas builds up, gradually compressing the white dwarf until it reaches a critical point at which carbon starts to burn in an explosive thermonuclear reaction. SN 2005E doesn't look like one of these explosions either - it faded much faster than a type Ia usually does, and the spectrum of its light reveals unusually high quantities of calcium in the explosion's ashes.
So what happened? Perets says the calcium and other chemicals could have been produced by a helium-fuelled explosion. One possibility is that SN 2005E started out as a white dwarf stealing helium gas from a neighbouring helium-rich star, and that the gas accumulated into a thick layer before exploding.
It may have started out as a white dwarf stealing helium gas from a neighbouring star
Astronomer Craig Wheeler at the University of Texas at Austin says Perets's hypothesis is plausible, but is not convinced that it represents a completely new type of stellar explosion.
If correct, however, the discovery could explain two astronomical anomalies. In the central bulge of our galaxy, astronomers see evidence of a surprisingly large quantity of positrons - the antimatter counterparts of electrons. Helium-powered supernovae might supply most of this antimatter, as they should produce large quantities of the radioactive isotope titanium-44, which emits positrons.
Furthermore, titanium-44 decays into calcium-44, an isotope that accounts for about 2 per cent of the calcium in our solar system - the origin of which has been hard to account for. Perhaps an explosion akin to SN 2005E supplied our solar system with its calcium-44.

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Thursday, June 18, 2009

RIM 1Q profit tops view, shares wobble on outlook


RIM 1Q profit tops view, shares wobble on outlook



TORONTO -

BlackBerry maker Research in Motion Ltd. on Thursday reported a better-than-expected 33 percent jump in first-quarter profit as the company continues to boost market share among non-corporate customers.

RIM's second-quarter outlook, however, sent shares tumbling almost 7 percent in aftermarket activity, but the stock regained most of its losses during the company's conference call as executives assuaged analysts' concerns.

The Waterloo, Ontario-based company earned $643 million, or $1.12 per share, in the quarter that ended May 30. That's up from $482.5 million, or 84 cents, in the year-ago period.

Excluding a $175.1 million tax benefit and other one-time items, RIM earned $564.4 million, or 98 cents per share, in the latest period — easily beating the average 94-cent estimate of analysts polled by Thomson Reuters.

Revenue rose 53 percent to $3.42 billion. RIM added 3.8 million net subscribers during the quarter — a bit less than the 3.9 million subscribers who joined up during the fiscal fourth quarter holiday season — bringing total accounts to 28.5 million.

Co-CEO Jim Balsillie said RIM's market share of the U.S. smart phone market has grown to 55 percent from 40 percent in the past two quarters. Balsillie said the BlackBerry Curve is the No. 1 selling smart phone in North America. RIM's competition includes Apple's new iPhone and $99 version, the new Palm Pre and the Google Android.

Eighty percent of new BlackBerry subscribers are non-corporate consumers, he said. The Canadian company has been targeting the consumer market after enjoying success in the corporate market for years.

In the second quarter, RIM forecast earnings of 94 cents to $1.03 per share on revenue of $3.45 billion to $3.7 billion. Analysts expected profit of 97 cents per share and $3.61 billion in revenue. RIM also said it expects to sell between 8.1 million and 8.7 million new units, compared with the range of 8.5 million to 8.9 million that some analysts expected.

That outlook drove the company's shares down more than 6 percent in aftermarket trading immediately after the earnings report was released, but the stock came back to trade down just 21 cents from the stock's $76.55 close. RIM's stock has more than doubled since bottoming at $35.05 in March.

Peter Misek, an analyst with Canaccord Adams, said the stock rallied after it became clear on the conference call that the guidance was a little better that initially thought.

"The average selling price wasn't discussed in the release and that's why the stock ripped after it," Misek said. "The guidance is a little better than initially thought from the report, but still others thought the numbers would be higher, so it's going to be a volatile name."

Genuity Capital Markets analyst Deepak Chopra also said the stock declined initially on higher expectations.

"They continue to do phenomenally well. There was obviously increased expectations. There was chatter that the numbers could even be bigger," Chopra said.

Balsillie said the summer season can mean slower sales, but believes the release of new devices and the public's growing adoption of smart phones will cause a surge in sales.

"The lineup for the next 14, 15 months is spectacular," Balsillie said. "We've got sector winds at our sails."