2013年8月9日星期五

Power Asymmetric dual channel n-channel mosfets switch 20A in 3x3mm package

Power Asymmetric dual channel n-channel mosfets switch 20A in 3x3mm package

2013/08/09

21aug13AP6950GYT 300

From Taiwanese firm Advanced Power Electronics, the AP6950GYT is aimed at implementing both the main switch and synchronous rectifier in dc-dc buck converters. As such, gate charge, RDSon and IDmax are customised for their specific tasks.

21aug13AP6950GYTCombined in a 3x3mm package, the high-side mosfet has 18mΩ (max, at 10Vgs) on-resistance, 4.2nC (typ) total gate charge and 21A capacity; and the low-side rectifier fet is 10.5mΩ 7.5nC and 39A.

Both are rated at 30V.

Devices are RoHS-compliant and halogen-free.


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Business Strong July for TSMC and UMC

Business Strong July for TSMC and UMC

2013/08/09

TSMC had July revenue of $1.74 billion up 7.3% on July 2012 but down from the $1.77 billion of June 2013.

TSMC had sales of $1.73 billion in May – a slight rise on April’s $1.7 billion and 17% up on May 2012. April 2013 was 23.5% up on April 2012.

TSMC’s Q2 sales hit $5.2 billion – up 17% on Q1, and H1 sales were $9.7 billion

UMC had July 2013 revenues of $386 million, 11.6% up on July 2012.

UMC had Jan-July revenues of $2.4 billion up 6.3% from the $2.34 billion of Jan-July 2012.

UMC had June 2013 sales of $368 million which were 0.94% down on May but 11% up on June 2012.

UMC had May sales of  $361 million – up 5% on April’s $336 million. UMC’s January to May sales were $1.6 billion-  up 4.17% on the same period last year.

UMC had H1 revenues of $2 billion which were 5.4% up on H1 2012.


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Business Government offers cash prize for demand-side management innovation

Business Government offers cash prize for demand-side management innovation

2013/08/09

The Dynamic Demand Challenge Prize is £50,000 waiting for a person or organisation that can improve demand-side management on the electricity grid.

In particular, the judges are looking for: “new or improved products, technologies or services; a demonstrable shift in demand to off-peak times and/or towards renewable energy generation; and potential for scale and with market potential,” said the UK’s National Physical Laboratory (NPL).

NPL is one of the supporting bodies, alongside European public-private partnership Climate-KIC, and the National Grid. The whole thing is being run by Government innovation funding body Nesta, through its Centre for Challenge Prizes.

The challenge is open to entries from the EU, but the solution must be applied within a UK context.

Entry deadline is 9 September 2013 and application is through dynamicdemand.nesta.org.uk

Before final judgement, short-listed entrants will get free help test their ideas at NPL’s Centre for Carbon Measurement, as well as assistance from Imperial College’s design engineering group and its business school.

“It will allow applicants with ideas to develop them into close-to-market products,” claimed NPL.

Help for the short-list is being paid for by a £125,000 grant from Climate-KIC, through the Climate Market Accelerator programme.

Following this, the entries and their business plans will be assessed by the judging panel and the main £50,000 prize “will be awarded to the solution that demonstrates the most significant impact,” said NPL.

“The £50,000 prize will deliver a significant boost to the prospects of the winning idea. However, thanks to the support from Imperial and NPL, most of the finalists should have developed their ideas to the point that it is attractive option for buyers or investors,” said Constance Agyeman, development manager at Nesta’s Centre for Challenge Prizes.


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Scientists visualize how cancer chromosome abnormalities form in living cells

Scientists visualize how cancer chromosome abnormalities form in living cells

Chromosomes are thread-like structures inside cells that carry genes and function in heredity. Human chromosomes each contain a single piece of DNA, with the genes arranged in a linear fashion along its length.

Chromosome translocations have been found in almost all cancer cells, and it has long been known that translocations can play a role in cancer development. However, despite many years of research, just exactly how translocations form in a cell has remained a mystery. To better understand this process, the researchers created an experimental system in which they induced, in a controlled fashion, breaks in the DNA of different chromosomes in living cells. Using sophisticated imaging technology, they were then able to watch as the broken ends of the chromosomes were reattached correctly or incorrectly inside the cells.

Translocations are very rare events, and the scientists' ability to visualize their occurrence in real time was made possible by recently available technology at NCI that enables investigators to observe changes in thousands of cells over long time periods. "Our ability to see this fundamental process in cancer formation was possible only because of access to revolutionary imaging technology," said the study's senior author, Tom Misteli, Ph.D., Laboratory of Receptor Biology and Gene Expression, Center for Cancer Research, NCI.

The scientists involved with this study were able to demonstrate that translocations can occur within hours of DNA breaks and that their formation is independent of when the breaks happen during the cell division cycle. Cells have built-in repair mechanisms that can fix most DNA breaks, but translocations occasionally occur.

To explore the role of DNA repair in translocation formation, the researchers inhibited key components of the DNA damage response machinery within cells and monitored the effects on the repair of DNA breaks and translocation formation. They found that inhibition of one component of DNA damage response machinery, a protein called DNAPK-kinase, increased the occurrence of translocations almost 10-fold. The scientists also determined that translocations formed preferentially between pre-positioned genes.

"These observations have allowed us to formulate a time and space framework for elucidating the mechanisms involved in the formation of chromosome translocations," said Vassilis Roukos, Ph.D., NCI, and lead scientist of the study.

"We can now finally begin to really probe how these fundamental features of cancer cells form," Misteli added.

This research was supported by the Intramural Research Program of the NCI's Center for Cancer Research.


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Terahertz technology fights fashion fraud

Terahertz technology fights fashion fraud

Scientists from the National Physical Laboratory (NPL) have published research in Applied Optics that demonstrates how a technique called terahertz time-domain spectroscopy could be used to help spot fakes and combat textile counterfeiting.

This technique requires the generation of a beam of terahertz radiation, which is a band of electromagnetic radiation that falls between microwaves and infrared light. A sample of fabric is then placed within this beam and the properties of the terahertz waves are detected after passing through the fabric.

The composition and structure of the different types of fabric give rise to different rates of beam scattering and absorption. This means that each type of fabric has a distinct transmission profile associated with it, essentially giving it a signature. The detection of this signature could indicate whether or not the fabric in question is counterfeit.

This research examined fabrics made from wool, cotton, linen, silk and mixed fibres, all of which demonstrated distinct terahertz transmission properties. The technique could clearly distinguish between fabrics that looked and felt similar but that had different compositions. It could, for example, tell the difference between plain wool and the more expensive merino wool, as well as between natural and synthetic silk.

These results demonstrate the potential of terahertz spectroscopy to identify different textiles and help prevent fraud. The next stage will be to test batches of the same type of fabric from the same manufacturer in a potential collaboration. It is also necessary to create a database of the terahertz transmission properties of many different fabrics and to study further the relationship between these and the properties of the fabrics themselves.

John Molloy, who worked on the project at NPL, said: "Counterfeit clothes can look and feel almost exactly like the real thing and so customs officials need technological assistance to spot them. Terahertz spectroscopy is a fast, safe and reliable test that could help safeguard one of the UK's most valuable industries."

The research was carried out in collaboration with the Institute of Monitoring of Climatic and Ecological Systems in Russia.

NPL is also working with Technitex, the premier research and knowledge transfer organisation for the UK's technical textiles and advanced materials sector, on terahertz spectroscopy to help with quality control and characterisation of non-fashion fabrics used in industry, sports, medical and other assorted applications.


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Robot treats brain clots with steerable needles

Robot treats brain clots with steerable needles

Aug. 8, 2013 — Surgery to relieve the damaging pressure caused by hemorrhaging in the brain is a perfect job for a robot.


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That is the basic premise of a new image-guided surgical system under development at Vanderbilt University. It employs steerable needles about the size of those used for biopsies to penetrate the brain with minimal damage and suction away the blood clot that has formed.

The system is described in an article accepted for publication in the journal IEEE Transactions on Biomedical Engineering. It is the product of an ongoing collaboration between a team of engineers and physicians headed by Assistant Professor Robert J. Webster III and Assistant Professor of Neurological Surgery Kyle Weaver.

Brain clots are leading cause of death, disability

The odds of a person getting an intracerebral hemorrhage are one in 50 over his or her lifetime. When it does occur, 40 percent of the individuals die within a month. Many of the survivors have serious brain damage.

"When I was in college, my dad had a brain hemorrhage," said Webster. "Fortunately, he was one of the lucky few who survived and recovered fully. I'm glad I didn't know how high his odds of death or severe brain damage were at the time, or else I would have been even more scared than I already was."

Steerable needle could prevent "collateral damage" during surgery

Operations to "debulk" intracerebral hemorrhages are not popular among neurosurgeons: They know their efforts are not likely to make a difference, except when the clots are small and lie on the brain's surface where they are easy to reach. Surgeons generally agree that there is a clinical benefit from removing 25-50 percent of a clot but that benefit can be offset by the damage that is done to the surrounding tissue when the clot is removed. Therefore, when a serious clot is detected in the brain, doctors take a "watchful waiting" approach -- administering drugs that decrease the swelling around the clot in hopes that this will be enough to make the patient improve without surgery.

For the last four years, Webster's team has been developing a steerable needle system for "transnasal" surgery: operations to remove tumors in the pituitary gland and at the skull base that traditionally involve cutting large openings in a patient's skull and/or face. Studies have shown that using an endoscope to go through the nasal cavity is less traumatic, but the procedure is so difficult that only a handful of surgeons have mastered it.

Last summer, Webster attended a conference in Italy where one of the speakers, Marc Simard, a neurosurgeon at the University of Maryland School of Medicine, ran through his wish list of useful imaginary neurosurgical devices, hoping that some engineer in the audience might one day be able to build one of them. When he described his wish to have a needle-sized robot arm to reach deep into the brain to remove clots, Webster couldn't help smiling because the steerable needle system he had been developing was perfect for the job.

Webster's design, which he calls an active cannula, consists of a series of thin, nested tubes. Each tube has a different intrinsic curvature. By precisely rotating, extending and retracting these tubes, an operator can steer the tip in different directions, allowing it to follow a curving path through the body. The single needle system required for removing brain clots was actually much simpler than the multi-needle transnasal system.

I think this can save a lot of lives.When Webster returned, he told Weaver about the potential new application. The neurosurgeon was quite supportive: "I think this can save a lot of lives. There are a tremendous number of intracerebral hemorrhages and the number is certain to increase as the population ages."

Graduate student Philip Swaney, who is working on the system, likes the fact it is closest to commercialization of all the projects in Webster's Medical and Electromechanical Design Laboratory. "I like the idea of working on something that will begin saving lives in the very near future," he said.

Active cannula removed 92 percent of clots in simulations

The brain-clot system only needs two tubes: a straight outer tube and a curved inner tube. Both are less than one twentieth of an inch in diameter. When a CT scan has determined the location of the blood clot, the surgeon determines the best point on the skull and the proper insertion angle for the probe. The angle is dialed into a fixture, called a trajectory stem, which is attached to the skull immediately above a small hole that has been drilled to enable the needle to pass into the patient's brain.

The surgeon positions the robot so it can insert the straight outer tube through the trajectory stem and into the brain. He also selects the small inner tube with the curvature that best matches the size and shape of the clot, attaches a suction pump to its external end and places it in the outer tube.

Guided by the CT scan, the robot inserts the outer tube into the brain until it reaches the outer surface of the clot. Then it extends the curved, inner tube into the clot's interior. The pump is turned on and the tube begins acting like a tiny vacuum cleaner, sucking out the material. The robot moves the tip around the interior of the clot, controlling its motion by rotating, extending and retracting the tubes. According to the feasibility studies the researchers have performed, the robot can remove up to 92 percent of simulated blood clots.

"The trickiest part of the operation comes after you have removed a substantial amount of the clot. External pressure can cause the edges of the clot to partially collapse making it difficult to keep track of the clot's boundaries," said Webster.

The goal of a future project is to add ultrasound imaging combined with a computer model of how brain tissue deforms to ensure that all of the desired clot material can be removed safely and effectively.

Other members of the research team are Jessica Burgner, formerly a postdoctoral fellow at Vanderbilt and now executive director of the Hannover University Center for Mechatronics in Germany, and Ray Lathrop, a graduate student at Vanderbilt.

The research was supported by National Science Foundation CAREER Award IIS-1054331 and Graduate Research Fellowship as well as a grant from the German Academic Exchange Service.



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Atomic clock can simulate quantum magnetism

Atomic clock can simulate quantum magnetism

Atomic clocks now join a growing list of physical systems that can be used for modeling and perhaps eventually explaining the quantum mechanical behavior of exotic materials such as high-temperature superconductors, which conduct electricity without resistance. All but the smallest, most trivial quantum systems are too complicated to simulate on classical computers, hence the interest in quantum simulators. Sharing some of the features of experimental quantum computers -- a hot research topic -- quantum simulators are "special purpose" devices designed to provide insight into specific challenging problems.

JILA is operated jointly by the National Institute of Standards and Technology (NIST) and the University of Colorado Boulder.

As described in the Aug. 9 issue of Science, the JILA experiment was performed with an atomic clock made of about 2,000 neutral strontium atoms trapped in intersecting laser beams. The researchers were surprised to discover that, under certain conditions, the clock atoms interact like atoms in magnetic materials.

"This was completely unexpected," JILA/NIST Fellow Jun Ye says. "We were not looking for this at all, we were just naively trying to understand the particle interactions as part of our effort to further improve the clock. We were pleasantly surprised to find we can now use a clock as a powerful quantum apparatus to study magnetic spin interactions."

The strontium clock atoms are arranged like a stack of 100 pancakes, each containing about 20 atoms. Normally the atoms react individually to red laser pulses, switching between two energy levels. But researchers discovered the atoms also can interact with each other, first in pairs and eventually all together. Until now researchers were trying to eliminate these interactions, which are undesirable in atomic clocks but they can turn into a powerful feature for a quantum simulator.

Strontium atoms have two energy levels used for clock purposes, each with a particular configuration of electrons. In the JILA simulation, all the atoms start out at the same energy level with the same electron configuration, also called a spin-down state. A quick pulse from a very stable red laser places all the atoms in a "superposition" of spins pointing both up and down at the same time. The possibility of superposition is one of the most notable features of the quantum world. When the laser is turned off, the atoms start to interact. One second later another pulse from the same laser hits the atoms to prepare them for collective spin measurement, and then a different laser measures, based on any detected fluorescence, the final spin states of all the atoms.

In the world of classical physics such measurements would have definite results, without any "noise," or uncertainty. However, in the quantum world a spin measurement usually has a random amount of noise. In the JILA experiment, correlations appear over time between the noise patterns of some of the atoms' spins. Ye says these correlations suggest the atoms become entangled, another unusual quantum feature that links the properties of separated particles. JILA researchers have not yet performed the definitive test proving entanglement, however.

JILA theorist Ana Maria Rey helped to explain what Ye's experimental team observed. For small numbers of particles, about 30 atoms, Rey calculated that the clock atom interactions obey mathematical formulas similar to those describing the behavior of electrons in magnetic materials. But if more atoms are included, classical calculations would not keep up with the experimental results. In the future the JILA team hopes to perform more complicated simulations while continuing to develop a theory explaining the findings.


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Investigational malaria vaccine found safe and protective

Investigational malaria vaccine found safe and protective

Aug. 8, 2013 — An investigational malaria vaccine has been found to be safe, to generate an immune system response, and to offer protection against malaria infection in healthy adults, according to the results of an early-stage clinical trial published Aug. 8 in the journal Science.


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The vaccine, known as PfSPZ Vaccine, was developed by scientists at Sanaria Inc., of Rockville, Md. The clinical evaluation was conducted by researchers at the National Institute of Allergy and Infectious Diseases (NIAID), part of the National Institutes of Health, and their collaborators at the Walter Reed Army Institute of Research and the Naval Medical Research Center, both in Silver Spring, Md.

Malaria is transmitted to humans by the bite of an infected mosquito. After the bite occurs, infectious malaria parasites in the immature, sporozoite stage of their life cycle first travel to the liver, where they multiply, and then spread through the bloodstream, at which time symptoms develop.

The PfSPZ Vaccine is composed of live but weakened sporozoites of the species Plasmodium falciparum, the most deadly of the malaria-causing parasites.

"The global burden of malaria is extraordinary and unacceptable," said NIAID Director Anthony S. Fauci, M.D. "Scientists and health care providers have made significant gains in characterizing, treating and preventing malaria; however, a vaccine has remained an elusive goal. We are encouraged by this important step forward."

The Phase I trial, which took place at the NIH Clinical Center in Bethesda, received informed consent from and enrolled 57 healthy adult volunteers ages 18 to 45 years who never had malaria. Of these, 40 participants received the vaccine and 17 did not. To evaluate the vaccine's safety, vaccinees were split into groups receiving two to six intravenous doses of PfSPZ Vaccine at increasing dosages. After vaccination, participants were monitored closely for seven days. No severe adverse effects associated with the vaccine occurred, and no malaria infections related to vaccination were observed.

Based on blood measurements, researchers found that participants who received a higher total dosage of PfSPZ Vaccine generated more antibodies against malaria and more T cells -- a type of immune system cell -- specific to the vaccine.

To evaluate whether and how well the PfSPZ Vaccine prevented malaria infection, each participant -- the vaccinees as well as the control group that did not receive vaccine -- was exposed to bites by five mosquitoes carrying the P. falciparum strain from which the PfSPZ Vaccine was derived. This controlled human malaria infection procedure -- a standard process in malaria vaccine trials -- took place three weeks after participants received their final vaccination. Participants were monitored as outpatients for seven days and then admitted to the NIH Clinical Center, where they stayed until they were diagnosed with malaria, treated with anti-malarial drugs and cured of infection, or shown to be free of infection.

The researchers found that the higher dosages of PfSPZ Vaccine were associated with protection against malaria infection. Only three of the 15 participants who received higher dosages of the vaccine became infected, compared to 16 of 17 participants in the lower dosage group who became infected. Among the 12 participants who received no vaccine, 11 participants became infected after mosquito challenge.

"In this trial, we showed in principle that sporozoites can be developed into a malaria vaccine that confers high levels of protection and is made using the good manufacturing practices that are required for vaccine licensure ," said Robert A. Seder, M.D., chief of the Cellular Immunology Section of the NIAID Vaccine Research Center and principal investigator of the trial.

An important challenge in the continued development of PfSPZ Vaccine is that the vaccine currently is administered intravenously -- a rare delivery route for vaccines. Previous studies at lower doses have shown that the more common intradermal (into the skin) and subcutaneous (under the skin) routes did not yield as strong an immune response as the intravenous route.

"Despite this challenge, these trial results are a promising first step in generating high-level protection against malaria, and they allow for future studies to optimize the dose, schedule and delivery route of the candidate vaccine," said Dr. Seder.

A number of follow-up studies are planned, including research to evaluate the vaccine's different dose schedules, possible protection against other Plasmodium strains and the durability of protection. The researchers may also evaluate whether higher doses administered subcutaneously or intradermally provide the same level of protection as that found in this study.



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Pass the salt: Common condiment could enable new high-tech industry -- silicon nanostructures

Pass the salt: Common condiment could enable new high-tech industry -- silicon nanostructures

This extraordinary compound is called table salt.

Simple sodium chloride, most frequently found in a salt shaker, has the ability to solve a key problem in the production of silicon nanostructures, researchers just announced in Scientific Reports, a professional journal.

By melting and absorbing heat at a critical moment during a "magnesiothermic reaction," the salt prevents the collapse of the valuable nanostructures that researchers are trying to create. The molten salt can then be washed away by dissolving it in water, and it can be recycled and used again.

The concept, surprising in its simplicity, should open the door to wider use of these remarkable materials that have stimulated scientific research all over the world.

"This could be what it takes to open up an important new industry," said David Xiulei Ji, an assistant professor of chemistry in the OSU College of Science. "There are methods now to create silicon nanostructures, but they are very costly and can only produce tiny amounts.

"The use of salt as a heat scavenger in this process should allow the production of high-quality silicon nanostructures in large quantities at low cost," he said. "If we can get the cost low enough many new applications may emerge."

Silicon, the second most abundant element in Earth's crust, has already created a revolution in electronics. But silicon nanostructures, which are complex structures much smaller than a speck of dust, have potential that goes far beyond the element itself.

Uses are envisioned in photonics, biological imaging, sensors, drug delivery, thermoelectric materials that can convert heat into electricity, and energy storage.

Batteries are one of the most obvious and possibly first applications that may emerge from this field, Ji said. It should be possible with silicon nanostructures to create batteries -- for anything from a cell phone to an electric car -- that last nearly twice as long before they need recharging.

Existing technologies to make silicon nanostructures are costly, and simpler technologies in the past would not work because they required such high temperatures. Ji developed a methodology that mixed sodium chloride and magnesium with diatomaceous earth, a cheap and abundant form of silicon.

When the temperature reached 801 degrees centigrade, the salt melted and absorbed heat in the process. This basic chemical concept -- a solid melting into a liquid absorbs heat -- kept the nanostructure from collapsing.

The sodium chloride did not contaminate or otherwise affect the reaction, researchers said. Scaling reactions such as this up to larger commercial levels should be feasible, they said.

The study also created, for the first time with this process, nanoporous composite materials of silicon and germanium. These could have wide applications in semiconductors, thermoelectric materials and electrochemical energy devices.

Funding for the research was provided by OSU. Six other researchers from the Department of Chemistry and the OSU Department of Chemical Engineering also collaborated on the work.


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Belief in precognition increases sense of control over life

Belief in precognition increases sense of control over life

One group of study participants read a paragraph stating that researchers had found evidence supporting the existence of precognition, while another group read a related paper that refuted these findings. Both papers were published in the same issue of a scientific journal. On a subsequent survey, people who read the paper confirming our ability to predict the future agreed more strongly with statements like "I am in control of my own life," "My life is determined by my own actions" and "I am able to live my life how I wish" than the group who read a paper denying the existence of precognition.

In a second experiment, participants who were made to feel a loss of control and then asked to read the same pieces reported feeling an increased sense of control after reading about the existence of precognition, but not when they read that it did not exist. People who were made to feel more in control of their lives before reading and answering questions reported no difference in their subsequent sense of control. Based on these studies, the researchers conclude that psychic predictability can provide the psychological system with a compensatory boost in perceived control. As Greenaway explains, "Humans are predisposed towards prediction; we like to know what is going to happen in our lives. Belief in paranormal abilities like precognition can help people meet this need for predictability by making us feel as though we can control our destiny."

The study concludes, "We found that people were drawn to predictability when they experienced loss of control-even to the extent of endorsing seemingly irrational beliefs about precognition."


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SUV System Ltd is ISO 90012008 Certified electronics distributor with 10 years of experiences.

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Ozone hole might slightly warm planet, computer model suggests

Ozone hole might slightly warm planet, computer model suggests

Aug. 8, 2013 — A lot of people mix up the ozone hole and global warming, believing the hole is a major cause of the world's increasing average temperature. Scientists, on the other hand, have long attributed a small cooling effect to the ozone shortage in the hole.


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Now a new computer-modeling study suggests that the ozone hole might actually have a slight warming influence, but because of its effect on winds, not temperatures. The new research suggests that shifting wind patterns caused by the ozone hole push clouds farther toward the South Pole, reducing the amount of radiation the clouds reflect and possibly causing a bit of warming rather than cooling.

"We were surprised this effect happened just by shifting the jet stream and the clouds," said lead author Kevin Grise, a climate scientist at Lamont-Doherty Earth Observatory of Columbia University in New York City.

Grise notes this small warming effect may be important for climatologists trying to predict the future of Southern Hemisphere climate.

The work is detailed in Geophysical Research Letters, a journal of the American Geophysical Union. Grise collaborated on the study with Lorenzo Polvani of Columbia University, George Tselioudis of NASA Goddard Institute for Space Studies, Yutian Wu of New York University, and Mark Zelinka of Lawrence Livermore National Laboratory.

Hole in the sky

Each ozone molecule consists of three oxygen atoms bound together. These ozone molecules gather in the lower portion of the stratosphere about 20 to 30 kilometers (12 to 19 miles) above the ground -- about twice as high as commercial airliners fly.

Thankfully for the living things below, this layer of ozone shields Earth from some of the hazardous ultraviolet radiation barraging the atmosphere. Unchecked, these ultraviolet rays can cause sunburns, eye damage and even skin cancer.

In the 1980s, scientists discovered thinning of the ozone layer above Antarctica during the Southern Hemisphere's spring months. The cause of this "hole" turned out to be chlorofluorocarbons, such as Freon, from cooling systems, aerosols cans and degreasing solvents, which break apart ozone molecules. Even though the1987 Montreal Protocol banned these chlorofluorocarbons worldwide, the ozone hole persists decades later.

Many people falsely equate the ozone hole to global warming. In a 2010 Yale University poll, 61 percent of those surveyed believed the ozone hole significantly contributed to global warming. Additionally, 43 percent agreed with the statement "if we stopped punching holes in the ozone layer with rockets, it would reduce global warming."

An actual consequence of the ozone hole is its odd effect on the Southern Hemisphere polar jet stream, the fast flowing air currents encircling the South Pole. Despite the ozone hole only appearing during the spring months, throughout each subsequent summer the high-speed jet stream swings south toward the pole.

"For some reason when you put an ozone hole in the Southern Hemisphere during springtime, you get this robust poleward shift in the jet stream during the following summer season," said Grise. "People have been looking at this for 10 years and there's still no real answer of why this happens."

Cloud reflection

The team of scientists led by Grise wondered if the ozone hole's impacts on the jet stream would have any indirect effects on the cloud cover. Using computer models, they worked out how the clouds would react to changing winds.

"Because the jet stream shifts, the storm systems move along with it toward the pole," said Grise. "If the storm systems move, the cloud system is going to move with it."

High- and mid-level clouds, the team discovered, traveled with the shifting jet stream toward the South Pole and the Antarctic continent. Low-level cloud coverage dropped in their models throughout the Southern Ocean. While modeling clouds is a difficult task due to the variety of factors that guide their formation and movement, Grise noted that observational evidence from the International Satellite Cloud Climatology Project, a decades-long NASA effort to map global cloud distributions, supports their theory of migrating cloud coverage.

When the cloud cover moves poleward, the amount of energy the clouds can reflect drops, which increases the amount of radiation reaching the ground. "If you shift the reflector poleward," Grise explained, "you've moved it somewhere there is less radiation coming in."

In 2007, the Intergovernmental Panel on Climate Change reported a direct cooling effect from the thinning ozone layer -- specifically, a reduction of about 0.05 watts per square meter's worth of energy reaching the ground. However, Grise and his colleagues estimated the indirect effect of the shifting cloud coverage to be an increase of approximately 0.2 watts per square meter. Their result not only suggests that warming rather than cooling would be taking place, but also that there's a larger influence overall. Since the jet stream only shifts during the summer months, the warming only takes place in those months.

"Theoretically this net radiation input into the system should give some sort of temperature increase, but it's unknown if that signal could be detected or what the magnitude of it would be," said Grise. For comparison, worldwide, an average of about 175 watts per square meter reaches the ground from sunlight, according to the George Washington University Solar Institute.

Dennis Hartmann, an atmospheric scientist at the University of Washington in Seattle unrelated with the project, points out that since predicting cloud behavior is so challenging, the model used in Grise's study could be underestimating clouds north of the jet stream being pulled toward the equator and in turn reflecting more light, potentially reducing or even negating the warming effect. Hartmann added that he also has some concerns about the modeling of the low-level cloud response.

Still, "this is certainly a very interesting topic and potentially important from a practical perspective of predicting Southern Hemisphere climate and even global warming rates," he commented.

Climate tug-of-war

Looking toward the future, the jet stream should do less and less shifting to the south during the summer months as the ozone layer above the South Pole recovers. However, increasing levels of greenhouse gases can also change mid-latitude wind patterns and push the jet stream poleward, creating a complicated scenario which Grise said he plans to study in future work.

"You have sort of this tug-of-war between the jet being pulled equator-ward during the summer because of the ozone recovery and the greenhouse gases pulling the jet further poleward," said Grise. "What the clouds do in that scenario is an open question."

Funding for the research was provided by the National Science Foundation and by the U.S. Department of Energy's Office of Science.



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SUV System Ltd is ISO 90012008 Certified electronics distributor with 10 years of experiences.

We have built up long term business relationship with about many companies which are stockers and authorized agents. we have a steady and reliable supply to meet customer's demands to the greatest extent .Confidently, we are able to lower your cost and support your business with our years of professional service.

SUV System Ltd is Electronic Components Distributor Supplies,Find Quality Electronic Components Supplies Products IC(Integrated Circuits),Connectors,Capacitor,Resistors,Diodes,Transistors,LED at Suvsystem.com. Sourcing Other Energy, Environment, Excess Inventory Products from Manufacturers and Suppliers at Suvsystem.com

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