Friday, August 3, 2012

Vaporizing the Earth

Friday, August 3, 2012

In science fiction novels, evil overlords and hostile aliens often threaten to vaporize the Earth. At the beginning of The Hitchhikers Guide to the Galaxy, the officiously bureaucratic aliens called Vogons, authors of the third-worst poetry in the universe, actually follow through on the threat, destroying the Earth to make way for a hyperspatial express route.

"We scientists are not content just to talk about vaporizing the Earth," says Bruce Fegley, professor of earth and planetary sciences at Washington University in St. Louis, tongue firmly in cheek. "We want to understand exactly what it would be like if it happened."

And in fact Fegley, PhD, and his colleagues Katharina Lodders, PhD, a research professor of earth and planetary sciences who is currently on assignment at the National Science Foundation, and Laura Schaefer, currently a graduate student at Harvard University, have vaporized the Earth ? if only by simulation, that is mathematically and inside a computer.

They weren't just practicing their evil overlord skills. By baking model Earths, they are trying to figure out what astronomers should see when they look at the atmospheres of super-Earths in a bid to learn the planets' compositions.

Super-earths are planets outside our solar system (exoplanets) that are more massive than Earth but less massive than Neptune and made of rock instead of gas. Because of the techniques used to find them, most of the detected super-Earths are those which orbit close to their stars ?within rock-melting distance.

Their NSF- and NASA-funded research, described in the August 10 issue of The Astrophysical Journal, show that Earth-like planets as hot as these exoplanets would have atmospheres composed mostly of steam and carbon dioxide, with smaller amounts of other gases that could be used to distinguish one planetary composition from another.

The WUSTL team is collaborating with Dr. Mark Marley's research group at the NASA Ames Research Center to convert the gas abundances they have calculated into synthetic spectra the planet hunters can compare to spectra they measure.

Motivated by degeneracy

Under favorable circumstances planet hunting techniques allow astronomers not just to find exoplanets but also to measure their average density.

The average density together with theoretical models lets the astronomers figure out the bulk chemical composition of gas giants, but in the case of rocky planets the possible variety of rocky ingredients can often add up several different ways to the same average density.

This is an outcome scientists, who would prefer one answer per question, call degeneracy.

If a planet passes in front of its star, so that astronomers can observe the light from the star filtered by the planet's atmosphere, they can determine the composition of the planet's atmosphere, which allows them to distinguish about alternative bulk planetary compositions.

"It's not crazy that astronomers can do this and more people are looking at the atmospheres of these transiting exoplanets," Fegley says. "Right now, there are eight transiting exoplanets where astronomers have done some atmospheric measurements and more will probably be reported in the near future."

"We modeled the atmospheres of hot super-Earths because that's what astronomers are finding and we wanted to predict what they should be looking for when they look at the atmospheres to decipher the nature of the planet," Fegley says.

Two model Earths

Even though the planets are called super-Earths, Fegley says, the term is a reference to their mass and makes no claim about their composition, much less their habitability. But, he says, you start with what you know.

The team ran calculations on two types of pseudo-Earths, one with a composition like that of the Earth's continental crust and the other, called the BSE (bulk silicate Earth), with a composition like the Earth's before the continental crust formed, which is the composition of the silicate portion of the primitive Earth before the crust formed.

The difference between the two models, says Fegley, is water. The Earth's continental crust is dominated by granite, but you need water to make granite. If you don't have water, you end up with a basaltic crust like Venus. Both crusts are mostly silicon and oxygen, but a basaltic crust is richer in elements such as iron and magnesium.

Fegley is quick to admit the Earth's continental crust is not a perfect analog for lifeless planets because it has been modified by the presence of life over the past four billion years, which both oxidized the crust and also led to production of vast reservoirs of reduced carbon, for example in the form of coal, natural gas, and oil.

Raining acid and rock

The super-Earths the team used as references are thought to have surface temperatures ranging from about 270 to 1700 degrees Celsius (C), which is about 520 to 3,090 degrees F. The Earth, in contrast, has a global average surface temperature of about 15 degrees C (59 degrees F) and the oven in your kitchen goes up to about 450 Fahrenheit.

Using thermodynamic equilibrium calculations, the team determined which elements and compounds would be gaseous at these alien temperatures.

"The vapor pressure of the liquid rock increases as you heat it, just as the vapor pressure of water increases as you bring a pot to boil," Fegley says. "Ultimately this puts all the constituents of the rock into the atmosphere."

The continental crust melts at about 940 C (1,720 F), Fegley says, and the bulk silicate Earth at roughly 1730 C (3,145 F). There are also gases released from the rock as it heats up and melts.

Their calculations showed that the atmospheres of both model Earths would be dominated over a wide temperature range by steam (from vaporizing water and hydrated minerals) and carbon dioxide (from vaporizing carbonate rocks).

The major difference between the models is that the BSE atmosphere is more reducing, meaning that it contains gases that would oxidize if oxygen were present. At temperatures below about 730 C (1,346 F) the BSE atmosphere, for example, contains methane and ammonia.

That's interesting, Fegley says, because methane and ammonia, when sparked by lighting, combine to form amino acids, as they did in the classic Miller-Urey experiment on the origin of life.

At temperatures above about 730 C, sulfur dioxide would enter the atmosphere, Fegley says. "Then the exoplanet's atmosphere would be like Venus's, but with steam," Fegley says.

The gas most characteristic of hot rocks, however, is silicon monoxide, which would be found in the atmospheres of both types of planets at temperatures of 1,430 C (2,600 F) or higher.

This leads to amusing possibility that as frontal systems moved through this exotic atmosphere, the silicon monoxide and other rock-forming elements might condense and rain out as pebbles.

Asked whether his team ever cranked the temperature high enough to vaporize the entire Earth, not just the crust and the mantle, Fegley admits that they did.

"You're left with a big ball of steaming gas that's knocking you on the head with pebbles and droplets of liquid iron," he says. "But we didn't put that into the paper because the exoplanets the astronomers are finding are only partially vaporized," he says.

###

Washington University in St. Louis: http://www.wustl.edu

Thanks to Washington University in St. Louis for this article.

This press release was posted to serve as a topic for discussion. Please comment below. We try our best to only post press releases that are associated with peer reviewed scientific literature. Critical discussions of the research are appreciated. If you need help finding a link to the original article, please contact us on twitter or via e-mail.

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Source: http://www.labspaces.net/122325/Vaporizing_the_Earth

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Thursday, August 2, 2012

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Source: http://answers.apostoliccm.com/2012/08/commercial-hard-money-loans-877-273-7823/

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Easy Solutions To Help You Get Through The Forex Market

?Forex? is the informal term for the foreign currency markets, which are extremely accessible to anyone with a computer. This article will give you a basic understanding of the forex market and how you earn income trading on forex.

Prepare yourself to face the truth about trading in the market. If you trade in the market for any length of time, you are going to experience losses. Many traders quit before even turning a profit, because they get scared away by early losses. When you are aware of the huge role persistence plays in your success, you can find the conviction to power through initial losses.

You should select a trading strategy that works well with your lifestyle. If the time you can devote to trading is limited, take this into consideration when developing your strategy and use delayed orders and daily or monthly time frames.

Try not to follow the leader in your Forex trading. Everyone is different, and their trading style may not suit your needs. Make your own trading decisions. You can avoid relying on analyses made by other traders by learning to analyze the market for yourself.

Forex trading requires keeping a cool head. Sticking to well defined parameters will prevent you from chasing lost money or investing in situations that seem too good to be true. Thinking through each trade will allow you to trade intelligently rather than impulsively.

There are four-hour as well as daily charts that you need to take advantage of when doing any type of trading with the Forex market. Because it moves fast and uses fast communications channels, forex can be charted right down to the quarter-hour. The downside of these rapid cycles is how much they fluctuate and reveal the influence of pure chance. By sticking with a longer cycle, you can avoid false excitement or needless stress.

The stop-loss or equity stop order can be used to limit the amount of losses you face. The equity stop order protects the trader by halting all trading activity once an investment falls to a certain point.

Make sure to celebrate your success. If you feel your trades are at their peak worth, withdraw your investment and look for other opportunities to invest. The whole reason to make money is to enjoy it, so take some of your Forex profits and splurge!

Indexes can be a great way to determine a particular market?s typical gains and losses. This won?t always predict your results, but it gives you a good overall picture of the market. Reconsider investing in any market that has not already proven to be profitable.

Five percent of the trading account total should be the maximum you trade at any one time. This keeps your liquidity high in case disaster strikes. And, if a trade goes wrong you will still have a lot of room to bounce back. It can be tempting to trade heavily as you become more active in watching the market. Always keep in mind, however, that slow and steady wins the race.

Stick to currency pairs that are traded often. If you stay with popular currency pairs, you will be able to buy and sell relatively quickly. If you trade a currency pair with low volume, there may not be anyone to buy your currency when you want to sell it.

A successful routine is easy to replicate over and over with Forex, but it may be to your advantage to occasionally experiment with methods such as scalping. This strategy deals with making trades quickly, in a very short period of time.

Make sure to practice trading and research forex before participating. Using a demo trading account is one of the best ways to familiarize yourself with the basics of forex trading.

Many traders who are new to forex are understandably excited, devoting lots of time and energy to the pursuit. Typically, most people only have a few hours of high level focus to apply towards trading. Step away for a little while when you start to feel yourself wavering. The money will still be ready to trade when you return.

There is no larger market than forex. This bet is safest for investors who study the world market and know what the currency in each country is worth. For uneducated amateurs, Forex trading can be very risky.

Check the HotForex review and forex trading tips for more info.

Filed under Forex by Andrew Rufus

Source: http://www.financerevealed.com/9275/easy-solutions-to-help-you-get-through-the-forex-market/?utm_source=rss&utm_medium=rss&utm_campaign=easy-solutions-to-help-you-get-through-the-forex-market

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Eight Badminton Players Disqualified From Olympics - Business ...

AP

Gold medal favorites Wang Xiaoli and Yu Yang discuss strategy

Eight women's doubles badminton players from China, South Korea, and Indonesia were disqualified today after throwing matches in order to manipulate future match-ups.

After the four women's pairs had qualified for the quarterfinals of the tournament, they began intentionally losing games in order to dictate a more favorable match-up in the next round.

The disqualified players included the world champions from China ? Wang Xiaoli and Yu Yang, as well as the bronze-medal favorites Ha Jung-eun and Kim Min Jung of South Korea.

So why in the world would they lose on purpose?

Basically, they wanted to avoid playing the 2nd best team in the world in the quarterfinals.

In Olympic badminton, there is a preliminary stage followed by a knockout stage. In the prelim stage, the teams are divided into four, four-team groups and play a round-robin. The top two teams from each group advance to an eight-team, bracket-style knockout tournament. In that knockout tournament, the team that came in 1st in Group A plays the team that came in 2nd in Group B, and so on.

The reason the pairs started losing games in the first place was that the second-best team in the world (Tian Qing & Zhao Yunlei of China) were upset in their group stage and came in 2nd instead of 1st. As a result, Wang/Yu and Ha/Kim tried to lose on purpose so they wouldn't win their group and have to play Tian/Zhao in the next round.

The same thing happened with the other two pairs that were DQ'd.

Ironically, the favorites to win gold now are China's Tian/Zhao, who inadvertently started this whole controversy.

The decision was made by the Badminton World Federation, and welcomed by the IOC. Here's what IOC vice president told the AP about the decision:

"Sport is competitive. If you lose the competitive element, then the whole thing becomes nonsense. You cannot allow a player to abuse the tournament like that, and not take firm action. So good on them."

Indonesia, which is appealing the decision, is calling out China for being serial cheaters. Here's what Indonesia Olympic team head Erick Thohir told the AP:

"China has been doing this so many times and they never get sanctioned by the BWF. On the first game yesterday when China did it, the BWF didn't do anything. If the BWF do something on the first game and they say you are disqualified, it is a warning for everyone."

UPDATE:

Here's video of the Wang/Yu v. Ha/Kim match. They are BOTH trying to lose, so they just keeping hitting it right into the net. The umpire tries to stop it, but just one point after he yells at the players, they starting throwing points again. The Korean team "won":

?

Don't Miss: The Most Amazing Moments In The History Of Olympic Gymnastics >

Source: http://www.businessinsider.com/eight-badminton-players-disqualified-from-olympics-2012-8

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Wednesday, August 1, 2012

Subway menu | ApostolicCM.com Answers

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More code cracking

More code cracking [ Back to EurekAlert! ] Public release date: 1-Aug-2012
[ | E-mail | Share Share ]

Contact: Megan Fellman
fellman@northwestern.edu
847-491-3115
Northwestern University

3 related studies help uncover the rules governing gene transcription

A trio of groundbreaking publications from researchers in Northwestern University's Physical Sciences-Oncology Center (PS-OC) report important methodological advances that will enable a better understanding of how gene expression is regulated, both in normal cells and in cancer cells. This knowledge could lead to the development of more effective therapeutic agents to treat cancer patients.

The three papers, published recently in the journals Nature Genetics, Nature Biotechnology and Nature, focus on nucleosomes, a basic unit of DNA packaging, and may help to uncover the rules governing gene transcription.

The late Jonathan Widom of Northwestern is senior author of the Nature paper that describes a new method for mapping nucleosomes. His longtime collaborator Eran Segal of the Weizmann Institute in Israel is senior author of two papers that build on his and Widom's earlier discovery of a "second DNA code."

"It is becoming increasingly clear that acquired mutations in the machinery that underlies the way in which DNA is packaged into chromatin are major drivers of the development of tumors in humans," said Jonathan Licht, M.D., the Northwestern PS-OC's senior investigator. Chromatin is a complex of DNA and proteins that when compacted forms chromosomes.

"The work of the PS-OC, including these new studies, has allowed the elucidation of the normal rules by which chromatin is arranged in the cell," he said. "This will help us to understand what's going wrong in cancer and how that might be remedied." Licht is the Johanna Dobe Professor and chief of the division of hematology/oncology at Northwestern's Feinberg School of Medicine and an associate director of the Robert H. Lurie Comprehensive Cancer Center of Northwestern University.

Six years ago, Widom and Segal reported in Nature the discovery of a second DNA code that explains the placement of nucleosomes, spool-like structures in which the DNA loops around a protein complex. (The first code is DNA's genetic code, which specifies the composition of cellular proteins.) Nucleosomes control access to the DNA. Widom and Segal found there are certain DNA sequences that favor or disfavor the location of these nucleosomes.

Widom, whose research focused on chromatin packaging and gene regulation, and Segal, a computational biologist, continued their studies on sequence preferences for nucleosome formation as part of a project funded by Northwestern's Physical Sciences-Oncology Center.

Widom directed the center until his untimely death last year and was the William Deering Professor of Molecular Biosciences in the Weinberg College of Arts and Sciences. Segal has been a member of the center since its inception in 2009.

"This new work of Jon Widom's lab, reported in Nature, adds greatly to the ability to measure the locations of nucleosomes with unprecedented accuracy, which is needed to decipher the code in the DNA as reported in our two recent papers," Segal said.

In the papers by the Segal group, one in Nature Genetics and the other in Nature Biotechnology, Segal and his colleagues developed an elegant experimental system that allows them to accurately measure the effects of DNA sequences that disfavor the formation of nucleosomes on transcriptional regulation.

The new technology makes it possible to simultaneously introduce tens of thousands of DNA regions into tens of thousands of living cells -- each region in a separate cell -- in a planned and systematic manner, and to measure the results of each such change with great precision and within a single experiment.

Using this system, the Segal group demonstrated that sequences favoring the formation of nucleosomes do indeed have a significantly negative impact on transcription. Transcription is the copying of specific sequences in the DNA into similar molecules called RNA, which are intermediaries in the flow of information between the DNA and protein production. Both of the Segal papers acknowledge the intellectual contribution of Widom to their work.

The third paper, published in Nature and reporting on work completed in the Widom laboratory after his death, describes another major methodological advance. This novel technique permits the location of nucleosomes in the genome to be mapped with much higher accuracy than was previously possible. Not only will this technique enable a much better understanding of transcriptional regulation, but it should also help scientists to understand other features of DNA biology.

Ji-Ping Wang, who directs the bioinformatics core of the PS-OC, played a major role in the development of this technique.

"This is another example of how Jon's great knowledge in biochemistry and biophysics allowed him to suggest a way to scale up an existing experimental technique into modern tools that would allow genome-wide mapping of nucleosomes," Segal said. "Jon also was closely involved in our work and provided invaluable insights and suggestions into all aspects of the research."

###

The Northwestern Physical Sciences-Oncology Center focuses on applying physical sciences approaches to understanding the fundamental principles underlying aberrant gene expression in cancer. Funded by the National Cancer Institute, the center is a collaboration of the Chemistry of Life Processes Institute and the Robert H. Lurie Comprehensive Cancer Center of Northwestern University.



[ Back to EurekAlert! ] [ | E-mail | Share Share ]

?


AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert! system.


More code cracking [ Back to EurekAlert! ] Public release date: 1-Aug-2012
[ | E-mail | Share Share ]

Contact: Megan Fellman
fellman@northwestern.edu
847-491-3115
Northwestern University

3 related studies help uncover the rules governing gene transcription

A trio of groundbreaking publications from researchers in Northwestern University's Physical Sciences-Oncology Center (PS-OC) report important methodological advances that will enable a better understanding of how gene expression is regulated, both in normal cells and in cancer cells. This knowledge could lead to the development of more effective therapeutic agents to treat cancer patients.

The three papers, published recently in the journals Nature Genetics, Nature Biotechnology and Nature, focus on nucleosomes, a basic unit of DNA packaging, and may help to uncover the rules governing gene transcription.

The late Jonathan Widom of Northwestern is senior author of the Nature paper that describes a new method for mapping nucleosomes. His longtime collaborator Eran Segal of the Weizmann Institute in Israel is senior author of two papers that build on his and Widom's earlier discovery of a "second DNA code."

"It is becoming increasingly clear that acquired mutations in the machinery that underlies the way in which DNA is packaged into chromatin are major drivers of the development of tumors in humans," said Jonathan Licht, M.D., the Northwestern PS-OC's senior investigator. Chromatin is a complex of DNA and proteins that when compacted forms chromosomes.

"The work of the PS-OC, including these new studies, has allowed the elucidation of the normal rules by which chromatin is arranged in the cell," he said. "This will help us to understand what's going wrong in cancer and how that might be remedied." Licht is the Johanna Dobe Professor and chief of the division of hematology/oncology at Northwestern's Feinberg School of Medicine and an associate director of the Robert H. Lurie Comprehensive Cancer Center of Northwestern University.

Six years ago, Widom and Segal reported in Nature the discovery of a second DNA code that explains the placement of nucleosomes, spool-like structures in which the DNA loops around a protein complex. (The first code is DNA's genetic code, which specifies the composition of cellular proteins.) Nucleosomes control access to the DNA. Widom and Segal found there are certain DNA sequences that favor or disfavor the location of these nucleosomes.

Widom, whose research focused on chromatin packaging and gene regulation, and Segal, a computational biologist, continued their studies on sequence preferences for nucleosome formation as part of a project funded by Northwestern's Physical Sciences-Oncology Center.

Widom directed the center until his untimely death last year and was the William Deering Professor of Molecular Biosciences in the Weinberg College of Arts and Sciences. Segal has been a member of the center since its inception in 2009.

"This new work of Jon Widom's lab, reported in Nature, adds greatly to the ability to measure the locations of nucleosomes with unprecedented accuracy, which is needed to decipher the code in the DNA as reported in our two recent papers," Segal said.

In the papers by the Segal group, one in Nature Genetics and the other in Nature Biotechnology, Segal and his colleagues developed an elegant experimental system that allows them to accurately measure the effects of DNA sequences that disfavor the formation of nucleosomes on transcriptional regulation.

The new technology makes it possible to simultaneously introduce tens of thousands of DNA regions into tens of thousands of living cells -- each region in a separate cell -- in a planned and systematic manner, and to measure the results of each such change with great precision and within a single experiment.

Using this system, the Segal group demonstrated that sequences favoring the formation of nucleosomes do indeed have a significantly negative impact on transcription. Transcription is the copying of specific sequences in the DNA into similar molecules called RNA, which are intermediaries in the flow of information between the DNA and protein production. Both of the Segal papers acknowledge the intellectual contribution of Widom to their work.

The third paper, published in Nature and reporting on work completed in the Widom laboratory after his death, describes another major methodological advance. This novel technique permits the location of nucleosomes in the genome to be mapped with much higher accuracy than was previously possible. Not only will this technique enable a much better understanding of transcriptional regulation, but it should also help scientists to understand other features of DNA biology.

Ji-Ping Wang, who directs the bioinformatics core of the PS-OC, played a major role in the development of this technique.

"This is another example of how Jon's great knowledge in biochemistry and biophysics allowed him to suggest a way to scale up an existing experimental technique into modern tools that would allow genome-wide mapping of nucleosomes," Segal said. "Jon also was closely involved in our work and provided invaluable insights and suggestions into all aspects of the research."

###

The Northwestern Physical Sciences-Oncology Center focuses on applying physical sciences approaches to understanding the fundamental principles underlying aberrant gene expression in cancer. Funded by the National Cancer Institute, the center is a collaboration of the Chemistry of Life Processes Institute and the Robert H. Lurie Comprehensive Cancer Center of Northwestern University.



[ Back to EurekAlert! ] [ | E-mail | Share Share ]

?


AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert! system.


Source: http://www.eurekalert.org/pub_releases/2012-08/nu-mcc080112.php

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