Tuesday, May 14, 2013

The mechanism that puts the curl in the curling stone revealed

The mechanism that puts the curl in the curling stone revealed [ Back to EurekAlert! ] Public release date: 13-May-2013
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Contact: Staffan Jacobson
staffan.jacobson@angstrom.uu.se
46-184-713-088
Uppsala University

Researchers from Uppsala University in Sweden can now reveal the mechanism behind the curved path of a curling stone. The discovery by the researchers, who usually study friction and wear in industrial and technical applications, is now published in the scientific journal Wear.

In the curling sport, the players shoot their stones along the ice so that they slowly slide towards the target area, almost 30 m away. The game has its name from the slightly curved "curled" path taken by the stone, when released with a slow rotation. This curled path is important since it is used to reach open spots behind previously played stones, or take out opponent stones behind hindering "guarding" stones. As soon as the player releases the stone, it is only affected by the friction against the ice. The friction can be slightly reduced, and therefore the sliding distance somewhat increased by intensively sweeping the ice just in front of the sliding stone.

If the player gives the stone a clockwise rotation as it is released, it curls to the right, while an anti clockwise rotating stone will curl to the left. The stone is heavy, almost 20 kg, and the rotation is very slow, typically 2-3 rotations during the roughly 25 seconds it takes to slide to the target. This is much too slow to cause the curved path taken by the ball in sports such as table tennis, tennis or soccer.

Despite years of speculations among the curlers and several scientific articles, so far no one has been able to present a good explanation to why the curling stones actually curl; "What puts the curl in the curling stone?". Interestingly, other rotating objects sliding over a surface curl in the opposite direction (make a simple test by sliding for example a glass turned upside down over a slippery floor).

However, the mechanism has now been revealed by researchers at Uppsala University in Sweden. Harald Nyberg, Sara Alfredsson, Sture Hogmark and Staffan Jacobson, who usually study friction and wear in technical and industrial material systems, describe in their article that the curved path is due to the microscopic roughness of the stone producing microscopic scratches in the ice sheet. As the stone slides over the ice the roughness on its leading half will produce small scratches in the ice. The rotation of the stone will give the scratches a slight deviation from the sliding direction. When the rough protrusions on the trailing half shortly pass the same area, they will cross the scratches from the front in a small angle. When crossing these scratches they will have a tendency to follow them. It is this scratch-guiding or track steering mechanism that generate the sideway force necessary to cause the curl.

The importance of having a proper roughness of the sliding surface on the stone to give it he expected trajectory, is since long known among curlers. However, this has not previously been coupled to the steering mechanism. While working on their model the Uppsala researchers experimented with pre-scratching of the ice in various ways, and could then observe that also non-rotating stones could be guided. Stones with very smooth, polished sliding surface were however not affected by the scratches. They also investigated the microscopic scratches made by the stones by moulding replicas of the ice, that were subsequently studied in microscopes.

###

The new results have been published in "The asymmetrical friction mechanism that puts the curl in the curling stone", Nyberg, H., S. Alfredsson, S. Hogmark, and S. Jacobson, Wear (2013), http://dx.doi.org/10.1016/j.wear.2013.01.051

The researchers have also published a validation of older models, showing why they cannot satisfactorily explain the curling mechanisms: H. Nyberg, S. Hogmark, and S. Jacobson, "Calculated trajectories of curling stones sliding under asymmetrical friction - validation of published models". Tribology Letters, on line DOI 10.1007/s11249-013-0135-9, (April 2013)

Read more about the research group: http://www.angstrom.uu.se/tribomaterials


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?


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.


The mechanism that puts the curl in the curling stone revealed [ Back to EurekAlert! ] Public release date: 13-May-2013
[ | E-mail | Share Share ]

Contact: Staffan Jacobson
staffan.jacobson@angstrom.uu.se
46-184-713-088
Uppsala University

Researchers from Uppsala University in Sweden can now reveal the mechanism behind the curved path of a curling stone. The discovery by the researchers, who usually study friction and wear in industrial and technical applications, is now published in the scientific journal Wear.

In the curling sport, the players shoot their stones along the ice so that they slowly slide towards the target area, almost 30 m away. The game has its name from the slightly curved "curled" path taken by the stone, when released with a slow rotation. This curled path is important since it is used to reach open spots behind previously played stones, or take out opponent stones behind hindering "guarding" stones. As soon as the player releases the stone, it is only affected by the friction against the ice. The friction can be slightly reduced, and therefore the sliding distance somewhat increased by intensively sweeping the ice just in front of the sliding stone.

If the player gives the stone a clockwise rotation as it is released, it curls to the right, while an anti clockwise rotating stone will curl to the left. The stone is heavy, almost 20 kg, and the rotation is very slow, typically 2-3 rotations during the roughly 25 seconds it takes to slide to the target. This is much too slow to cause the curved path taken by the ball in sports such as table tennis, tennis or soccer.

Despite years of speculations among the curlers and several scientific articles, so far no one has been able to present a good explanation to why the curling stones actually curl; "What puts the curl in the curling stone?". Interestingly, other rotating objects sliding over a surface curl in the opposite direction (make a simple test by sliding for example a glass turned upside down over a slippery floor).

However, the mechanism has now been revealed by researchers at Uppsala University in Sweden. Harald Nyberg, Sara Alfredsson, Sture Hogmark and Staffan Jacobson, who usually study friction and wear in technical and industrial material systems, describe in their article that the curved path is due to the microscopic roughness of the stone producing microscopic scratches in the ice sheet. As the stone slides over the ice the roughness on its leading half will produce small scratches in the ice. The rotation of the stone will give the scratches a slight deviation from the sliding direction. When the rough protrusions on the trailing half shortly pass the same area, they will cross the scratches from the front in a small angle. When crossing these scratches they will have a tendency to follow them. It is this scratch-guiding or track steering mechanism that generate the sideway force necessary to cause the curl.

The importance of having a proper roughness of the sliding surface on the stone to give it he expected trajectory, is since long known among curlers. However, this has not previously been coupled to the steering mechanism. While working on their model the Uppsala researchers experimented with pre-scratching of the ice in various ways, and could then observe that also non-rotating stones could be guided. Stones with very smooth, polished sliding surface were however not affected by the scratches. They also investigated the microscopic scratches made by the stones by moulding replicas of the ice, that were subsequently studied in microscopes.

###

The new results have been published in "The asymmetrical friction mechanism that puts the curl in the curling stone", Nyberg, H., S. Alfredsson, S. Hogmark, and S. Jacobson, Wear (2013), http://dx.doi.org/10.1016/j.wear.2013.01.051

The researchers have also published a validation of older models, showing why they cannot satisfactorily explain the curling mechanisms: H. Nyberg, S. Hogmark, and S. Jacobson, "Calculated trajectories of curling stones sliding under asymmetrical friction - validation of published models". Tribology Letters, on line DOI 10.1007/s11249-013-0135-9, (April 2013)

Read more about the research group: http://www.angstrom.uu.se/tribomaterials


[ 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/2013-05/uu-tmt051313.php

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Sunday, May 12, 2013

NASA astronauts fix leak on International Space Station

Astronauts Thomas Marshburn and Christopher Cassidy conducted a spacewalk Saturday to fix an ammonia leak. They replaced a suspected faulty pump on the International Space Station.?

By David Clark Scott,?Staff writer / May 11, 2013

The gloved hands of one of two astronauts working to replace a possible faulty pump on the International Space Station that was leaking ammonia.

NASA screenshot

Enlarge

UPDATED: 4:30 p.m., Saturday.

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As a nearly five-hour spacewalk Saturday morning drew to a close, the two astronauts replaced a suspected faulty pump in an effort to fix an ammonia coolant leak on the International Space Station.

Astronauts Thomas Marshburn and Christopher Cassidy began their spacewalk at 8:44 a.m. Saturday. The two successfully replaced a 60-pound pump box which NASA suspected was the source of the leaking ammonia coolant. They found no evidence of the frozen ammonia flakes that had originally led them to the pump box. The astronauts also found no evidence of damage to the pump box.

The walk was hastily planned after ISS crew members alerted Mission Control about the leak on Thursday when they spotted "snowflakes" of frozen ammonia floating near the pump box. NASA says that it has been aware of a slow ammonia leak, but the rate had jump to 5 pounds per day on Thursday.

The ammonia coursing through the plumbing is used to cool the space station's electronic equipment, according to the Associated Press. There are eight of these power channels, and all seven others were operating normally. As a result, life for the six space station residents was pretty much unaffected.

NASA's space station program manager Mike Suffredini said it's a mystery as to why the leak erupted on Thursday. One possibility is a micrometeorite strike.

By 1:20 p.m. Saturday, Cassidy and Marshburn were finished with the space walk, and were heading back to the airlock. They saw no sign of leaks coming from the new pump. NASA engineers continued to pressure check the system and be certain that the new pump is working properly.?

"We're happy, we're very happy [with the space walk]," said Joel Montalbano, Deputy ISS Program Manager, in a press conference in Houston after the space walk. "We didn't see any obvious signs of leaks," but added that testing would continue in the coming days and weeks.
?

If the old pump isn't the source of the leak, NASA's hunt for the source will continue. But that will be another crew's problem. Mashburn and Canadian commander, Chris Hadfield, are scheduled to head back to Earth on Monday.

The two men are experienced space walkers: this was their fourth working sojourn outside the space station. But as they worked, there were the occasional moments when they could pause to look at the view 255 miles above the Earth. "Did you see the moon? Oh my God! Burn that in your memory, said Cassidy.

After running through a system check, the following exchange was heard:

"Houston, if you're still there, I'm feelin great," said Cassidy.

"We're still there. Copy that on feelin great," responded Mike Fincke, an astronaut who was guiding the duo from NASA's Johnson Space Center in Houston.

NASA broadcast the spacewalk live on its website.

Source: http://rss.csmonitor.com/~r/feeds/science/~3/dSMc1UzbhSw/NASA-astronauts-fix-leak-on-International-Space-Station

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Prince Harry in Colo for wounded vet Warrior Games

COLORADO SPRINGS, Colo. (AP) ? Britain's Prince Harry, a veteran combat helicopter pilot, met Saturday with wounded service members competing in the Paralympic-style Warrior Games in Colorado.

The prince, wearing brown camouflage and boots, met with athletes on the United Kingdom team. He also plans to attend a volleyball match and the opening ceremonies at the Olympic training center in Colorado Springs.

The visit got underway Friday night when Harry charmed dozens of dignitaries, British expatriates, students and military officers at a cocktail party welcoming him to Colorado. He also joined the crowd in singing "Happy Birthday" to U.S. Olympic swimmer Missy Franklin, who was celebrating turning 18 at a golf club south of Denver.

A captain in Britain's Army Air Corps, Harry has deployed to Afghanistan twice. He's attending the Colorado games because he believes the wounded deserve recognition, according to a statement from St. James' Palace in London, the official residence of the royal family.

"He has said before how humbled he feels by the extraordinary courage and fortitude shown by those servicemen and women who have made huge sacrifices for their country, and to whom we all owe a considerable debt of gratitude," the statement said.

Harry returned to Britain in January after a 20-week deployment to Afghanistan as a co-pilot and gunner on an Apache helicopter.

He acknowledged to reporters he had targeted Taliban fighters, and when asked if he had killed anyone, said, "Yeah, so, lots of people have."

His first deployment to Afghanistan, as a forward air controller in 2007-2008, was cut short after 10 weeks when details of his whereabouts were disclosed in the media.

He caused a scandal on his last trip to the U.S. when he was photographed frolicking nude with an unidentified woman in a Las Vegas hotel suite in August.

"It was probably a classic example of me probably being too much army, and not enough prince," he said afterward.

The Warrior Games run through Thursday. They also include basketball, shooting, archery, swimming and track and field. About 260 athletes are expected.

___

Follow Dan Elliott at http://twitter.com/DanElliottAP

Source: http://news.yahoo.com/prince-harry-colo-wounded-vet-warrior-games-160652067.html

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Barns Are Red Because of How Stars Explode

We all know that barns are usually red. But why? Well, the answer is a little more complicated than you might think, but basically it's because of nuclear fusion.

Googler Yonatan Zunger took the time to explain the whole thing in great detail on Google+, and the train of thought goes a little something like this:

  • Barns are red because red paint is the cheapest and easiest to make.
  • Red paint is the cheapest and easiest to make because the ground is loaded with an iron-oxide compound called red orche. (or basically, rust)
  • The ground is loaded with red ochre because when stars die, physics dictates they generate a bunch of iron and explode.

It's that step where things get a little more complicated. Zunger explains it this way:

[When a star dies, it] starts to shrink. And as it shrinks, the pressure goes up, and the temperature goes up, until suddenly it hits a temperature where a new reaction can get started. These new reactions give it a big burst of energy, but start to form heavier elements still, and so the cycle gradually repeats, with the star reacting further and further up the periodic table, producing more and more heavy elements as it goes.

Until it hits 56. At that point, the reactions simply stop producing energy at all; the star shuts down and collapses without stopping. This collapse raises the pressure even more, and sets off various nuclear reactions which will produce even heavier elements, but they don?t produce any energy: just stuff.

This stuff-generation just continues for a while, churning out material with an atomic mass of around 56 (iron) until eventually, it meets its final demise and explodes (sometimes), seeding that material through out the cosmos.

It's that rusty startdust that litters the ground of this planet we live on and makes it cheap and easy to get a whole bunch of red paint for our barns. Crazy, right? You can dig waaaaaay deeper into the nitty gritty details by reading Zunger's wildly in-depth post. [Yonatan Zunger via Smithsonian Blog]

Image by MaxyM/Shutterstock

Source: http://gizmodo.com/barns-are-red-because-of-how-stars-explode-501906503

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Friday, May 3, 2013

Finding Nematostella: Ancient sea creature shines new light on how animals build an appendage

May 1, 2013 ? There's a new actor on the embryology stage: the starlet sea anemone Nematostella vectensis. Its career is being launched in part by Stowers Institute for Medical Research Associate Investigator Matt Gibson, Ph.D., who is giving it equal billing with what has been his laboratory's leading player, the fruit fly Drosophila melanogaster.

Gibson's lab investigates the cellular and molecular mechanisms used by cells to assemble into layers or clusters during embryogenesis. Those tissues, composed of densely packed cells known as epithelial cells, shape the body not only of simple creatures but also of mammals, where they line every body cavity from lung to intestine and form hormone- and milk-secreting glands. Unfortunately these cells have a dark side too- over 80% of human cancers, carcinomas, are of epithelial origin.

The Gibson lab has historically used the genetic powerhouse Drosophila to investigate the control of epithelial cell shape and proliferation during wing, leg and eye development. Breaking with tradition, their new study published in the May 15th, 2013 issue of Development, explains how developing sea anemone larvae construct an even more basic epithelial appendage, the tentacle. The paper charts how epithelial cell shape changes drive tentacle development and is also the first to identify candidate genes driving those changes. Most of all, by putting a new model organism representing one of the simplest animals center stage, the study illuminates some of the most fundamental principles animals use to construct a body.

Lacking even left-right symmetry, sea anemones are evolutionarily ancient. But during embryogenesis their larvae compensate for an uninspiring torso by sprouting tentacles from thickened epithelial buds surrounding their mouth. "Nematostella's body is basically a bag of epithelium," says Gibson. "And that simplicity makes it a great system for determining how epithelial cells act collectively to shape an appendage. Taking advantage of this fast, easy and cheap experimental system, we can quickly answer questions that give us deep insight into a process, at both the mechanistic and evolutionary levels."

The all-Stowers study, led by first author Ashleigh Fritz, a graduate student at the University of Kansas School of Medicine working in the Gibson lab, began by imaging Nematostella larvae at the cellular level before, during, and immediately after "juvenile" tentacles sprang from their body. Freshly hatched Nematostella larvae are under intense pressure to get their tentacles up and running, as they use them to pull food toward their mouths. The question was, what kind of cellular reshuffling drove these survival-dependent changes in morphology?

"We thought tentacle outgrowth might be driven by cell proliferation," says Fritz, noting that some of Nematostella's freshwater cousins sprout appendages by constant cell division. "Instead, we observed that cells begin thickened and then thin out as tentacles elongate." In other words, the process was driven not by cell duplication along a "tentacle axis" but rather by stretching a stockpile of cells.

Embryologists call the embryonic thickening of epithelial cells that provides raw material for a mature structure a placode. "Placodes have appeared over and over throughout evolution," says Gibson, noting that placodes give rise to wings or eyes in flies and feathers and teeth in vertebrates. "Discovering that placodes are also utilized in animals as seemingly primitive as Nematostella shows how fundamental this strategy is in evolution."

The group also showed that activation of a cellular receptor known as Notch was mandatory for tentacles to emerge from a placode. Newly hatched Nematostella larvae swimming in lab seawater laced with a drug that blocks Notch receptor activity failed to sprout tentacles.

The researchers also constructed microarrays from tissue isolated at early, mid, and late stages of tentacle extension, allowing global comparison of the collection of mRNAs, or the "transcriptome," at each stage. That effort, driven by Stowers Research Advisor Chris Seidel, Ph.D., and Ariel Paulson of the Stowers Computational Biology Core, is an obligatory step in pioneering any new model organism.

"Transcriptome analysis led us to identify novel tentacle markers," says Fritz, referring to molecular probes used to define a particular cell type. "Also gene expression patterns that we and others have identified allowed us to construct the first-ever molecular model of how tentacles are patterned."

In short, the study not only suggests universal principles underlying sculpting of epithelial structures from a placode, but also provides investigators with a toolkit to test whether specific genes drive the process.

An added bonus is that in 2007 a consortium of researchers sequenced the Nematostella genome and reported it to be more "human-like" in size and structure than that of Drosophila or another widely used model system, the nematode C. elegans. As a result, Gibson thinks that for many key questions, Nematostella may represent a better laboratory model than either.

"The common ancestor of sea anemones, flies, and humans likely had a surprisingly complex genome," he says, explaining that over millions of years of evolution flies and worms might have lost some genomic complexity. "As a result, these seemingly simple animals share some key genomic characteristics with humans and other vertebrates."

The Gibson laboratory continues to use both flies and sea anemones to ask how epithelial proliferation is controlled and why epithelial placode formation is so prevalent in developing embryos. Their next task is to develop molecular approaches to test how specific genes govern Nematostella embryogenesis. "Right now we are actively working on experimental tools, including techniques to knockout, edit or overexpress genes in Nematostella," says Gibson. "This paper opens up new ground and lays foundation for a next round of more deeply mechanistic studies."

In addition to Seidel and Paulson, Gibson lab postdoctoral fellow Aissam Ikmi, Ph.D., also contributed to the study.

The study was funded by the Stowers Institute for Medical Research and the Burroughs Wellcome Fund.

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Story Source:

The above story is reprinted from materials provided by Stowers Institute for Medical Research.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.


Journal Reference:

  1. A. E. Fritz, A. Ikmi, C. Seidel, A. Paulson, M. C. Gibson. Mechanisms of tentacle morphogenesis in the sea anemone Nematostella vectensis. Development, 2013; 140 (10): 2212 DOI: 10.1242/dev.088260

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.

Source: http://feeds.sciencedaily.com/~r/sciencedaily/top_news/top_environment/~3/ipGF0K7T51c/130502093513.htm

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Sunday, February 24, 2013

San Bernardino hire has twice declared bankruptcy

LOS ANGELES - The bankrupt city of San Bernardino has hired a new city manager who, according to court filings, has twice declared personal bankruptcy and was recently ousted from the board of a small community's water company after being sued by shareholders.

The city council voted unanimously on Tuesday night to hire Allen J. Parker, 71, as its city manager on an annual salary of almost $222,000. He replaces an interim city manager who resigned last month because, according to friends, she was exasperated by the city's internal divisions.

The interim city manager, Andrea Travis-Miller, could not be reached for comment.

Pat Morris, the mayor of the city in California, praised Parker's "wealth of city management experience" and expressed "great confidence" in his ability to oversee the city's affairs. Parker, who began working in the job on Wednesday, will be crucial in guiding the city of 210,000 people through municipal bankruptcy, in a case that could set a national precedent for Wall Street bondholders and pension funds in future municipal bankruptcies.

The mayor and council members knew about both of Parker's personal bankruptcies -- the first in 1991 and the second in 2011 -- and the litigation surrounding his water board tenure before they interviewed him, according to the mayor's chief of staff. They discussed both issues with him when they interviewed Parker last Friday. They say the issues were no impediment: the council interviewed two final candidates but voted unanimously to hire him.

The California newspaper The Press-Enterprise reported on Thursday that Parker filed in 2011 for personal bankruptcy. In comments to the paper, Parker said that his bankruptcy and his ability to handle the city's fiscal problems were "apples and oranges."

Calls and emails to Parker asking about his bankruptcy filings and his tenure on the water board went unanswered. An email to Parker asking if his wife Sara, with whom he jointly filed for bankruptcy in the 2011 petition, would comment also did not elicit a response.

The bankruptcy of San Bernardino, a city 65 miles east of Los Angeles, is a national test case as to whether the pensions of government workers take precedence over other payments in a municipal bankruptcy -- a high stakes issue for pension plans and their beneficiaries, and for the Wall Street bondholders who lend money to governments.

City managers are central to any city's quest to seek bankruptcy protection, because they have a pivotal role in answering questions from creditors and the court. The judge overseeing San Bernardino's case must still rule on whether the city is eligible for bankruptcy before the case proceeds.

Legal dispute
A 2009 lawsuit brought by a shareholder in the Banning Heights Mutual Water Company, where Parker was a director and then president of the board between 2004 and 2010, resulted in Parker being voted off the board in February 2010 after a court-ordered special election.

Banning Heights is a tiny unincorporated community 85 miles east of Los Angeles. The water company was formed in 1913 to provide water and today it serves about 250 residents.

Despite its small size, the water rights and land upon which the community sits are worth millions of dollars, according to John McClendon, the water board's general counsel. At one point under Parker's tenure on the water board, an entity called The Tahiti Group had placed $7 million in an escrow account to purchase the company, according to correspondence attached to court filings.

Court filings in the 2009 lawsuit, and a subsequent separate lawsuit brought by the water company allege that Parker, along with others, used their position on the board to try to sell the water company, against the wishes of shareholders.

Parker and others were also accused of withholding information from shareholders, according to those court filings. The shareholder sued in 2009 because he said Parker and others ignored the results of previous shareholder elections when they were voted off the board. Parker is not a defendant in the second lawsuit which is still active.

According to one court filing by the water company dated September 20, 2010, when shareholders gained access to the water company's office after Parker and others were voted off the board, computers were missing, hard drives had been wiped and bags of shredded documents sat on the floor.

In a deposition dated November 9, 2010 relating to the 2009 lawsuit, Parker said he never shredded documents and did not believe anyone "during our regime" on the water board shredded any documents.

After a judge ruled against Parker and others in the 2009 lawsuit and ordered a special shareholder election, they were voted off the board by shareholders in February 2010.

Background check
According to his resume, which does not mention Banning Heights Water Company, Parker has long experience as a local manager in several other California cities such as East Palo Alto, Half Moon Bay, Seal Beach and Compton.

Jim Morris, the son and chief of staff to Pat Morris, San Bernardino's mayor, said the city had done its own thorough background check on Parker before he was interviewed by the council, last Friday. His bankruptcies, and the Banning Heights Mutual Water Company litigation, were known about by the time the interview took place, Morris said.

"We talked to the attorneys involved, and pulled the court filings. These were disputes over election results," Morris said. He said the Banning Heights litigation did not involve serious issues, and that such disputes occur on small entities such as the water board all the time.

Morris said there was no reason why Parker should have included his tenure on the water board on his resume. "He wasn't employed by the water board," Morris said. "His resume was an employment resume. If someone was a member of their local homeowners' association you wouldn't expect that to be on their resume."

Parker filed for personal bankruptcy in 1991 in San Mateo, Calif., according to court records. No further details were available. In February 2011, he filed for bankruptcy with his wife, in the U.S. Bankruptcy Court, Central District of California.

According to the 2011 bankruptcy filing, Parker and his wife listed among their debts two home mortgages with unsecured balances of $267,500, as well as bank and credit card debt of $137,252.

Copyright 2013 Thomson Reuters.

Source: http://www.nbcnews.com/business/bankrupt-san-bernardino-picks-twice-bankrupt-manager-1C8499972

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Vibrant mix of marine life found at extreme ocean depths

Feb. 21, 2013 ? The first scientific examinations of data recorded during a record-setting expedition have yielded new insights about the diversity of creatures that live and thrive in the cold, dark, and highly pressurized habitats of the world's deepest points and their vastly unexplored ecosystems.

Natalya Gallo of Scripps Institution of Oceanography at UC San Diego will present preliminary findings from the DEEPSEA CHALLENGE expedition, a project led by James Cameron in collaboration with Scripps, and supported by National Geographic and Rolex, on Feb. 22 (GS09: Community Ecology Session, 8:45 a.m. PST) at the 2013 Aquatic Sciences Meeting of the Association for the Sciences of Limnology and Oceanography in New Orleans.

Gallo, a graduate student with biological oceanographer Lisa Levin's group, analyzed 25 hours of video captured during Cameron's historic March 26, 2012, solo dive 11 kilometers (6.8 miles) below the ocean surface to the Challenger Deep in the Pacific Ocean's Mariana Trench, as well as separate dives (also during the DEEPSEA CHALLENGE expedition) to the New Britain Trench and Ulithi, also in the Pacific Ocean. The footage was taken from five cameras equipped on the DEEPSEA CHALLENGER submersible that Cameron piloted to the Challenger Deep. Additional footage came from specialized "lander" deep ocean vehicles developed in collaboration with Scripps engineer Kevin Hardy that captured samples at various depths.

Early results of Gallo's analysis reveal a vibrant mix of organisms, different in each trench site. The Challenger Deep featured fields of giant single-cell amoebas called "xenophyophores," sea cucumbers, and enormous shrimp-like crustaceans called amphipods. The New Britain Trench featured hundreds of stunning stalked anemones growing on pillow lavas at the bottom of the trench, as well as a shallower seafloor community dominated by spoon worms, burrowing animals that create a rosette around them by licking organic matter off the surrounding sediment with a tongue-like proboscis. In contrast, Ulithi's seafloor ecosystem in the Pacific atolls featured high sponge and coral biodiversity.

As the submersible and landers pushed into deeper waters, the variety of species declined, with each depth dominated by a handful of key organisms. At shallow depths in the New Britain Trench, Gallo observed strange rotund but graceful animals called sea cucumbers swimming in the water column. Different species of sea cucumbers were present even in the great depths of the Challenger Deep but appear to have adapted to these depths by decreasing in size, not swimming, and feeding by orienting themselves with the currents. The sea cucumbers seen in the Challenger Deep at approximately 11 kilometers (approximately 36,000 feet) likely represent a new species and are the first recorded abundant population of the animals found in the deepest part of the ocean.

Proximity to land also played a role in the makeup of the deep-sea environment. Deep in the New Britain Trench, located near Papua New Guinea, Gallo identified palm fronds, leaves, sticks, and coconuts-terrestrial materials known to influence seafloor ecosystems. The Challenger Deep and Ulithi, both more removed from terrestrial influence, were absent of such evidence. Gallo also spotted a dive weight in the Challenger Deep footage, likely used as ballast on another deep-submergence vehicle.

"These data add valued information to our limited understanding of deep-sea and trench biology," said Gallo. "Only a small fraction of the deep seafloor has been fully explored, so this expedition allows us to better understand these unique deep-sea ecosystems."

Gallo and Ralph Pace, a master's student in the Center for Marine Biodiversity and Conservation at Scripps, are compiling an image reference collection of all organisms identified during these dives to help expand the scientific impact of the expedition.

"New knowledge about life in the deep sea becomes increasingly important as humans ramp up their exploitation of the fish, energy, mineral, and genetic resources of the deep sea," said Levin. "Natalya's observation of a dive weight from a past expedition in the Challenger Deep reminds us that our presence in the ocean is pervasive."

Gallo noted that her findings were largely consistent with discoveries made in the 1950s, '60s, and '70s, the first "golden age" of deep-sea exploration. New high-definition video capabilities used during Deepsea Challenge expand exploration potential by allowing scientists to view organisms in their natural habitat and observe how these unique biological communities function, she said.

"The DEEPSEA CHALLENGE expedition made possible the discovery of the deepest examples of gigantism known thus far," said Doug Bartlett, a Scripps marine microbiologist and chief scientist of the expedition. "Among the many values of collecting deep-sea samples is the possible isolation of microbes adapted to the extreme conditions of life in the trenches. These microbes inform us of the evolution, diversity, and adaptations of life and perhaps even life's origins and its possible presence elsewhere in the solar system."

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