Showing posts with label Health. Show all posts
Showing posts with label Health. Show all posts

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From Our Vault: Busy Postman on Break, 1951


The United States Post Office announced this week that it intends to stop Saturday letter delivery beginning in August, 32 years after Congress mandated a sixth day of mail service.

First class mail volume has been dropping by about five billion pieces annually since 2007. And the USPS operated almost $16 billion dollars in the red in 2012.

In the 1950s, when this photo was taken, the federal agency was more flush with money. Five hundred thousand employees carried 54 billion items when National Geographic magazine published the article "Everyone's Servant, the Post Office" in July of 1954. Mail volume had doubled since the previous decade, and was growing at a rate of about seven percent a year.

This photo from 1951 didn't make it into that article, landing instead in the National Geographic image archive. Working during the postal boom years, this mailman delivering to houses in Hays, Kansas, likely didn't have time to notice the slight.

National Geographic photographer John E. Fletcher explained the mailman's decision to lunch in a mailbox in a note on the back of the photo.

"He told me that a new regulation from the Washington headquarters of the U.S. Post Office required that postmen while on delivery at noontime must stop and have their lunch at the spot, rather than taking time off to go home and eat," Fletcher wrote.

"This mailman told me that each day his wife would drive to this particular corner and meet him and hand him his lunch box," he continued. "The most convenient spot that he could find to eat his lunch was to open a storage mail box, get himself comfortably seated, and eat his lunch right on the street corner."

Editor's note: This is the first in a series of pieces that looks at the news through the lens of the National Geographic photo archives.


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Severed Heads Were Sacrifices in Ancient Mexico


Archaeologists have uncovered the remains of more than 150 skulls from an ancient shrine in central Mexico—evidence of one of the largest mass sacrifices of humans in pre-Hispanic Mesoamerica.

The skulls, many facing east, lay beneath a crude, slightly elevated mound of crushed stone on what was once an artificial island in a vast shallow lake, now completely dry.

"The site is barely a bump on the horizon in the middle of nowhere," said lead archaeologist Christopher Morehart, of Georgia State University. And that was baffling. Previous evidence of such sacrifices came from grand pyramids in large ceremonial centers.

The discovery suggests that the site—near the town of Xaltocan (named after the ancient lake)—played a significant role in the political turmoil during the period between the years 650 and 800. The great city of Teotihuacan, only nine miles (15 kilometers) away, had suddenly begun to collapse, and the power it once exerted over the region was slipping away. Many experts believe this turn of events was triggered by a massive drought.

What followed was a time of  "political, cultural, and demographic change," according to Morehart, a National Geographic research grantee. As people left Teotihuacan and moved to the surrounding areas, new communities formed and new leaders competed for power. "There's a good chance that the sacrifices are related to these competitions," Morehart said.

The sacrificed individuals could even have been war captives—often the case in Mesoamerican cultures. The site itself was probably not a battlefield, though. It was a sacred space that was specially prepared for rituals.

The people who lived in this area appear to have performed elaborately choreographed rituals at the shrine before the fall of Teotihuacan, but they didn't include human sacrifice. Because of its water-bound location and the presence of freshwater springs nearby, the shrine was likely the site of ceremonies that petitioned gods associated with rain and fertility. Artifacts uncovered include clay images of Tlaloc, a rain god.

The rituals began to include sacrifices, though, as power struggles gripped the parched region. Morehart and his colleagues from the National University of Mexico believe that victims were first killed and dismembered. The body parts may then have been thrown into the lake, while the heads were carefully arranged and buried. Incense was burned during this ceremony, along with the resinous wood of pine trees. Flowers added their own perfume to the fragrant smoke, and foods such as ritually burned maize were presented as additional offerings.

Over the following centuries, new peoples arrived in the area and political power ebbed and shifted, yet the sacred nature of the site persisted. Morehart and his team found evidence for rituals here during both the Aztec and colonial periods, and they even came across a recent offering.

"As we were digging we found a black plastic bag. Inside was a hardboiled egg, a black candle, and some photos of people," he said. "It's a fascinating example of continued ritual activity in a place despite dramatic changes in social, political, and cultural contexts."


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Confirmed: Couch Potatoes Have Lower Sperm Counts


Men, here's another reason to work up a sweat: It boosts your sperm count.

According to new research, couch potatoes who watch lots of TV have fewer sperm than men who exercise moderately or vigorously each week.

Sperm count is a measure of semen quality, which has mysteriously declined in U.S. men in recent decades. Low sperm count is linked to infertility as well as testicular cancer, prostate cancer, and cardiovascular problems later in life.

(Related: "Deep-Voiced Men Have Lower Sperm Counts, Study Says.")

That's why scientists have been searching for ways that men can improve their sperm—including changing daily behaviors.

"We know little about how lifestyle may impact semen quality," said study leader Audrey Jane Gaskins, a doctoral student in nutrition at the Harvard School of Public Health.

Her discovery that two changeable behaviors—exercise and TV watching—"could have a big impact on sperm count is pretty exciting," she said.

"Impressive" Sperm Finds

For the study, Gaskins and colleagues asked 189 young men, mostly college students from the University of Rochester in New York, to fill out questionnaires on their physical activity, diet, stress, and other lifestyle factors.

Each man then provided a semen sample in a medical clinic. (See "Sperm Recognize 'Brothers,' Team Up for Speed.")

The results showed that the men who reported exercising more than 15 hours a week had 73 percent higher sperm counts than men who exercised fewer than 5 hours a week. And men who watched more than 20 hours of TV had 44 percent lower sperm counts than men who watched little to no TV.

These are "pretty impressive differences," said Gaskins, whose study appeared February 4 in the British Journal of Sports Medicine.

The team also ruled out smoking and being overweight—two clinical causes of low sperm counts—as contributing factors among participants in its study.

Why couch potatoes produce less sperm is unknown, although there are two theories, Gaskins said. One is that exercise produces more antioxidant enzymes that can prevent a natural process called oxidative stress from damaging cell membranes in the body. This damage can disrupt the creation of new sperm cells. (Find out how a man produces 1,500 sperm a second.)

The other reason is somewhat controversial: That when men watch TV, their scrotums get squished against their bodies, making that region hotter and possibly preventing new sperm from being made.

Some research has shown that sperm production slows if the scrotum temperature rises 1.8 to 3.6ºF (1 to 2ºC) above normal body temperature, Gaskins said. But other studies have also shown that warmer scrotums have no bearing on sperm creation.

Get Moving, Men

But the study also raises some more questions about sperm count, experts noted.

Oddly, the sedentary subjects' sperm didn't show any changes in their physical structures or in how well they swam—two soft indicators of sperm health, noted Phillip Mucksavage, a urologist at Pennsylvania Hospital in Philadelphia who was not involved in the study. (See "Sperm Tracked in 3-D-A First.")

Though there are fewer of them, "the sperm that are there still look good."

Mucksavage added that the study's results would have been stronger if the scientists had found other sedentary activities—such as sitting at a computer or reading a book—had the same affect on sperm count as did watching TV.

What's more, said T. Mike Hsieh, a urologist at the University of California, San Diego, the study doesn't have any implications for fertility, one of the main reasons men are concerned about sperm count.

That's because one semen sample is not enough to determine fertility. That requires a more thorough analysis, including multiple semen samples and blood work, said Hsieh, who wasn't involved in the study.

It's not like if you "stop watching TV you'd go from infertile to fertile," he said.

But all the experts agreed on one thing: you should get active if you aren't already.

Said Hsieh: "I would use this as a piece of evidence to motivate my patients to get off the couch and start working out."


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Life Found Deep Under Antarctic Ice For First Time?


For the first time, scientists believe they have collected life-forms from deep under the Antarctic ice.

Last week, a team found and collected microbes in a lake hidden under more than a half-mile of ice. (Related: "Race Is On to Find Life Under Antarctic Ice.")

Among other things, the discovery may shed light on what lies under the icy moons of Jupiter and Saturn.

The newfound life-forms have little connection to life on the earth's surface and many apparently survive by "eating rocks," team member Brent Christner said in an interview from the U.S. McMurdo Station, after spending several weeks working at a remote field site at Lake Whillans.

That may explain how life on other celestial objects—such as on the moons of Jupiter and Saturn—survive in the absence of carbon.

"The conditions faced by organisms in Lake Whillans are quite parallel to what we think it would be like on those icy moons," Christner said.

"What we found tells us a lot about extreme life on Earth, and also how similar life might make a living beyond Earth."

Making a Living in Ice

A 50-member U.S. team broke through to the 20-square-mile (50-square-kilometer) subglacial lake on January 28, and had two days of 24-hour sunlight to bring up samples before the borehole began to close. A day of reaming the hole was followed by two more days of sample collection.

The scientists are now returning with a four-day haul of lake water, lake bottom sediments, and hundreds of dishes of living organisms that are being cultured for intensive study in the United States.

An early task will be to make sure the newfound microbes were not introduced while drilling through the ice into the lake, which involved a hot-water drilling technique designed to greatly reduce or eliminate any contamination that might come from other kerosene-based drilling technology, Christner said.

Christner said that a commonly used dye was added to the water to illuminate the DNA of the microscopic organisms, and a substantial green glow told scientists that microbes were indeed present. Many of the organisms are likely chemolithotrophs, which rely on inorganic compounds of iron, sulfur, and other elements for nourishment.

Montana State's John Priscu, chief biologist of the Whillans Ice Stream Subglacial Access Research Drilling (WISSARD) program, said lab work at the drill site determined that microbial cells were present—and that they were alive. (Take an Antarctic quiz.)

"I believe it is safe to say that subglacial lake beneath the Whillans Ice Stream supports a microbial assemblage that is growing within this dark and cold habitat" of 31 degrees Fahrenheit (-0.5 Celsius), he wrote in an email.

DNA sequencing in the U.S. "will tell us who they are and, together with other experiments, tell us how they make a living."

Hidden Lakes

The U.S. team is one of three digging into what is now known to be a vast system of lakes and streams deep below the surface of Antarctica. (See "Chain of Cascading Lakes Discovered Under Antarctica.")

A British team attempting to drill into much deeper Lake Ellsworth had to return home in December because of equipment failure, but a Russian team is also at work now retrieving a core of water from Lake Vostok.

With much fanfare, the Lake Vostok core was pulled up last year from more than 2.5 miles (4 kilometers) below the frigid surface. Vostok is much deeper and larger than any other Antarctic lake, and both it and Ellsworth lie under much colder ice and are believed to have less deep subsurface water flowing in and out than does Whillans.

The existence of subglacial lakes and streams in Antarctica is a relatively new discovery, and the size of this wet world under the ice has only been grasped in recent years. (See Antarctic pictures by National Geographic readers.)

Helen Fricker, a glaciologist at the Scripps Institution of Oceanography and a principal investigator of the Whillans team, first described Lake Whillans in 2007.

Using satellite data, she and her colleagues discovered a periodic rising and falling of the ice surface above the Whillans Ice Stream between 2003 and 2006, and concluded that a lake was likely underneath.

The dynamics of Antarctic ice has taken on a much greater significance in the era of global warming, since some 90 percent of Earth's fresh water sits on the continent.

Although the lakes themselves are not affected by warming, how they interact with the region's ice is important to predicting the future behavior of the ice sheets.

For instance, understanding whether the ice is moving more quickly toward the surrounding ocean is a key goal of the WISSARD project, which is part of a larger U.S. National Science Foundation project to understand the ice movements, glaciers, and biology of the ice sheet of West Antarctica.

More Work to Be Done

For Christner, a specialist in Antarctic biology at Louisiana State University, the work has only just begun. (Also see "Pictures: 'Extreme' Antarctic Science Revealed.")

Two labs were brought to the Whillans site by a caravan of trucks from McMurdo: One to perform a quick analysis of the lake water, and the other to examine sediment.

Christner's team is charged with culturing samples in dishes so they can be studied more extensively later. He said some of the microbe species, including bacteria and archaea, may be unique, but many may well be found elsewhere—at great ocean depths and deep underground.


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What Caused the Super Bowl Blackout?


All that is known so far about the Mercedes-Benz Superdome power outage that temporarily halted last night's Super Bowl game is that a crucial piece of sensing equipment operated exactly as designed: It turned the electricity off.

But officials at the Superdome and its energy company, Entergy, said further investigation is needed to get at the root cause of the electricity abnormality that plunged half of the recently renovated stadium into darkness and forced a 34-minute delay of one of the world's most watched sporting events. (See related quiz: "What You Don't Know About Electricity.")

So while sports analysts dissect how the Baltimore Ravens held off the rallying San Francisco 49ers in the second half to secure their 34-31 victory, this year's postgame analysis will include scrutiny by teams of electrical engineers and stadium systems experts.

Despite much online speculation on the subject, it's unlikely that the scale of Beyoncé's dazzling, hologram-assisted halftime show was to blame for the outage, says James L. Kirtley Jr., professor of electrical engineering at the Massachusetts Institute of Technology.

It's possible, he said, that the cause was a simple overload, like what happens in a kitchen when a coffee pot and microwave are run at the same time. "The stadium system is, of course, a lot bigger, but fundamentally [it is] very similar" to a household circuit panel, Kirtley explained.

However, based on public statements from Entergy and the Superdome, Kirtley suspects that "some other piece of equipment failed and put a short circuit across the power circuit, causing a circuit breaker to open and disconnect power to some part of the stadium circuits."

After the stadium went dark, Entergy, which supplies electricity to 2.8 million utility customers throughout the Gulf Coast, quickly announced via its Twitter feed that its service to the stadium had not been interrupted. The problem, Entergy tweeted, was on "the customer's side." A later joint statement from Entergy and Superdome managers said the problems began when a piece of equipment designed to monitor electrical load "sensed an abnormality in the system."

"Once the issue was detected, the sensing equipment operated as designed and opened a breaker, causing power to be partially cut to the Superdome in order to isolate the issue," the statement said. "The fault-sensing equipment activated where the Superdome equipment intersects with Entergy's feed into the facility."

It is standard—in fact, usually required by law—for electrical systems to include circuit breakers that automatically shut off power to prevent wires from overheating and causing a fire. Circuit breakers can trip when there is too much load on a circuit, but a power outage also can be caused by a short circuit or other type of fault.

It's not known how much electricity the Superdome was drawing when the power outage occurred; Entergy said in response to a query that it was confidential "customer" information.

It is known that energy use from the Super Bowl was estimated in advance to be 4,600 megawatts, but that included the power for the NFL hotels and Morial Convention Center during the week of the game. Entergy had agreed in advance to donate carbon credits, or investments in carbon-capture projects, to offset the carbon emissions caused by that energy use—3.8 million pounds of carbon dioxide emissions—as part of a wide-ranging "greening" effort around the game. (See related photos: "Super Bowl Caps Banner Season in NFL Green Drive.") That's as much carbon as 359 U.S. passenger cars typically emit in a year.

Superdome officials had hoped the Super Bowl would showcase to the world the $336 million in renovations that have been made to the stadium since it sustained massive water and wind damage in 2005 due to Hurricane Katrina. Some $156 million of the cost of the renovation was paid by the U.S. Federal Emergency Management Agency. That renovation included work on the stadium's electrical and lighting system, as the Superdome now has a 26,000-LED lighting fixture on 96 concave aluminum panels that ring the building's exterior, a system supported by more than five miles of copper wiring. This system, which draws no more power than a small home, won the 2012 "Excellence in Design" award in the Architainment category from Live Design Magazine, an architecture, design, and event production publication.

LED lights, in addition to being efficient, would be capable of coming on instantly after such an outage. But they are not bright enough to illuminate a field, so they provide only accent lighting. Most stadiums rely on high-intensity gas discharge fixtures for the main lighting of the venue. Such lights take some time to power up to full brightness—a half hour is common.

After emergency generators restored power to the playing field, fans still had to cope with reduced power, with escalators and credit-card machines shut down, and walkways lighted by small banks of light. Broadcasters and NFL officials also had to scramble.

This story is part of a special series that explores energy issues. For more, visit The Great Energy Challenge.


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Pictures We Love: Best of January

Photograph by Dieu Nalio Chery, AP

The magnitude 7 earthquake that struck near Port au Prince, Haiti, in January 2010 so devastated the country that recovery efforts are still ongoing.

Professional dancer Georges Exantus, one of the many casualties of that day, was trapped in his flattened apartment for three days, according to news reports. After friends dug him out, doctors amputated his right leg below the knee. With the help of a prosthetic leg, Exantus is able to dance again. (Read about his comeback.)

Why We Love It

"This is an intimate photo, taken in the subject's most personal space as he lies asleep and vulnerable, perhaps unaware of the photographer. The dancer's prosthetic leg lies in the foreground as an unavoidable reminder of the hardships he faced in the 2010 earthquake. This image makes me want to hear more of Georges' story."—Ben Fitch, associate photo editor

"This image uses aesthetics and the beauty of suggestion to tell a story. We are not given all the details in the image, but it is enough to make us question and wonder."—Janna Dotschkal, associate photo editor

Published February 1, 2013

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Pictures We Love: Best of January

Photograph by Dieu Nalio Chery, AP

The magnitude 7 earthquake that struck near Port au Prince, Haiti, in January 2010 so devastated the country that recovery efforts are still ongoing.

Professional dancer Georges Exantus, one of the many casualties of that day, was trapped in his flattened apartment for three days, according to news reports. After friends dug him out, doctors amputated his right leg below the knee. With the help of a prosthetic leg, Exantus is able to dance again. (Read about his comeback.)

Why We Love It

"This is an intimate photo, taken in the subject's most personal space as he lies asleep and vulnerable, perhaps unaware of the photographer. The dancer's prosthetic leg lies in the foreground as an unavoidable reminder of the hardships he faced in the 2010 earthquake. This image makes me want to hear more of Georges' story."—Ben Fitch, associate photo editor

"This image uses aesthetics and the beauty of suggestion to tell a story. We are not given all the details in the image, but it is enough to make us question and wonder."—Janna Dotschkal, associate photo editor

Published February 1, 2013

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Best Science Pictures of 2012 Announced

Image courtesy Pupa U.P.A. Gilbert and Christopher E. Killian, U.W. Madison via Science/AAAS

A micrograph, or microphotograph, of a sea urchin's crystalline tooth won first place and people's choice for photography in the 2012 International Science and Engineering Visualization Challenge.

Colors applied with Photoshop reveal the interlocking crystals that form the choppers of Arbacia punctulata. The biomineral crystals, captured by biophysicists from the University of Wisconsin, Madison, grow and intertwine to reinforce and sharpen a sea urchin's teeth. Made of calcite, which is also found in limestone and seashells, the crystals are tough enough to grind holes in rocks to create shelters.

"These winners continue to amaze me every year," said Monica M. Bradford, executive editor of the journal Science, in a statement. "The visuals are not only novel and captivating, but they also draw you into the complex field of science in a simple and understandable way."

Sponsored by Science and the National Science Foundation (NSF), the international competition honors recipients who use visual media to promote understanding of scientific research. Judging criteria included visual impact, effective communication, freshness, and originality. (See some of the 2011 winners.)

Lacey Gray and Katia Andreassi

Published February 1, 2013

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How Drought on Mississippi River Impacts You


Woe is the Mississippi. A barge carrying light crude hit a bridge near Vicksburg, Mississippi, on Sunday, causing an oil spill.

But if you think that is the worst thing that's happened this winter to the river, you'd be wrong.

The middle Mississippi—the 200-mile (322-kilometer) stretch from St. Louis to Cairo, Illinois—is experiencing drought conditions unrivaled in the last 50 years. That's been the case  since November.

From December to March, this part of the river is always at its lowest because extra feed from the Missouri is cut off when that river's navigation season ends. The Mississippi typically loses about three feet at St. Louis as a result.

But this winter the river has lost more depth, since spring ice melt and rains weren't forthcoming and reservoirs that help feed the river didn't get filled.

The result is that transport along the Mississippi is down dramatically. In December, total barge cargo was down more than 1,100 kilotons from December 2011. (Video: Drought 101)

Barges have had to lighten their loads considerably to avoid bottoming out. Right now barges on the middle Mississippi can only afford to sink 9 feet (2.7 meters) into the water, some only 8 feet (2.4 meters). They usually run 12 feet (3.7 meters) deep, more laden with goods to get them to market faster and cheaper.

If that doesn't sound like a lot, consider that barges lose about a hundred tons of capacity for each 6 inches (15 centimeters) less deep they can sink in the water.

According to the American Waterways Operators (AWO), in December and January alone more than $7 billion worth of goods was at risk of not reaching their destination.

"It's not like someone is going to put up a sign and say the Mississippi River is closed, but there's not very many vessels that can move in those conditions," says AWO spokesperson Ann McCulloch.  (Read "Road Trip on the Northern Mississippi.)

One of the effects is that farmers on the middle Mississippi, the drought-strapped area, are paying a dollar more to ship each bushel of crops than are farmers on the lower Mississippi, who can fully load barges before sending them down the river, says Joe Kellett, deputy district engineer at the U.S. Army Corps of Engineers' St. Louis District.

For middle Miss farmers, it's more trips—so higher fuel costs—with less cargo.

Spreading the Costs of Drought

If you don't live along the waterway, likely you don't think often of the Mississippi beyond its Huckleberry Finn-fueled place in American mythology.

But you should be thinking of Big Muddy in more concrete terms. If you live in the United States and many other parts of the world, the Mississippi carries an awful lot of stuff you use every day—corn, cement, coal, and crude oil, among other things.

And the Mississippi is more central on the world stage than those who don't live beside it realize.

"Harvest to market also means Centralia, Illinois, to Tokyo," says Mike Peterson, a spokesman with the Army Corps of Engineers, which constructs and maintains the riverbed of the Mississippi, kind of like a watery Department of Transportation. He notes that Japan gets 90 percent of its livestock feed off the river.

When one of the river lock's gates broke during the 1997 harvest season, Jack Yui of Japan's Zen-Noh grain corporation sent a fax to the corps' lockmaster: "I need to know when lock and dam 27 will be repaired to know if the government will need to release the grain reserves of Japan," it read. Yui wanted a daily report.

He likely wasn't the only one. Sixty percent of farm exports for the entire U.S.—largely corn and soybeans—move along the Mississippi.

"We are blessed to have our great breadbasket and river system line up," says Dave Busse, the chief of engineering and construction for the corps' St. Louis District.  "In Brazil, they grow soybeans but spend a lot to get it to the water. The Nile [and] Congo don't have much grain around them."

And choked-off agricultural exports can affect Americans  too. If Kobe cattle can't get their feed, for instance, fancy burger prices would soar in the U.S.

There are plenty of other domestic implications. If road salt, shipped only in the winter months, can't shimmy northward, northern towns are hard-pressed to deal with icy streets. Fertilizer can't make it to farms for spring planting.

As the oil spill suggests, the Mississippi is carting petroleum and crude, too. Barges and tankers carried almost 48,000 barrels from the Midwest to the Gulf Coast in 2011, nearly double the amount in 2007.

It's important for other energy sources as well. If the river doesn't run at full capacity, coal from West Virginia is slow to get to St. Louis, where it fuels the power plant that fires the Anheuser-Busch factory there, one of only a handful of places in the U.S. where Budweiser gets made.

There are dozens of other power plants that pepper the river's shores that also rely on it to get coal.

How to Run a River

The Army Corps of Engineers is tasked by Congress to maintain the Mississippi as a channel that's 9 feet (2.7 meters) deep and 300 feet (91 meters) wide.

It's often a bit wider in the bends: Tugs have to tow through bends sideways, a process called planking, then let the flow turn the barges straight.

Tugs pulling rafts of 15 barges at a time—three wide and five deep—can fit through the middle Mississippi simultaneously and often do.

During winter the river is typically helped by a system of reservoirs, which allows the corps to keep the Mississippi running at its prescribed height and depth.

Water control managers make decisions on whether and how much to tap reservoirs every two hours, all day, every day.

They have to be vigilant. Water levels in the last year have dropped more than 30 feet (9 meters) from 2011's flood to current conditions.

The drought is challenging reservoirs already stretched to their limit; they didn't get enough rain to fill them enough to start with. "There's an entire ballet going on to squeeze every last drop out of the system to make sure the river stays open without impacting the other purposes of those reservoirs," says Kellett.

During a drought, the corps' annual dredging is even more important. The typical dredging season in St. Louis runs from July to December, when flow is at its lightest, to keep sediments deposited by the flow from building up.

"It's repetitive," says Busse. "The next time the water comes up, all that work disappears."

This year's dredging is more intense. "We're gathering close to twice as much as a regular year, and we're going out earlier and staying out later," says Petersen.

As a more drastic measure, the corps is in the process of lowering the river bottom at Thebes, Illinois, removing limestone and shale pinnacles that range in size from that of a bowling ball to that of a small car and that can make navigation impossible if the water goes any lower.

In the meantime, engineers have been releasing just enough extra water from reservoirs to keep navigation moving. "It was a fight of inches," says Busse.

There is 12 days-worth left of supplemental water. Busse says pinnacle removal should be completed before that water runs out. For now at least, engineering seems to be outpacing natural disaster.

Kellett notes that current low water levels are not unprecedented in the modern era. The year 1963 saw a similar low.

"The river is cyclical—in the '40s, the '60s, the '80s, the early 2000s—every other decade or so we have hit these levels of lows," he says. "What I don't know is the role that climate change is playing here."

The long-term National Weather Service forecast is for temperatures above normal, which dry out soil and evaporate more water.

"What we know is that droughts rarely occur for only one year," says Busse.

What Might the Oil Spill Do?

The lower Mississippi—the stretch from Cairo, Illinois, south to the Gulf of Mexico—had been running at normal capacity because it's fed by the Ohio River, a healthy-size tributary.

But that's the part affected by Sunday's spill.

The barge was carrying 80,000 gallons (303,000 liters) of light crude. About 7,000 gallons (26,000 liters) of oil wasn't in the tank where it should be; it's undetermined how much seeped into Big Muddy.

The Coast Guard, the river's traffic cop, closed the waterway for the cleanup.

Compared to drought effects, the spill is a shorter-term problem. The last oil spill on the Mississippi, 10,000 gallons (38,000 liters) last February, was resolved in less than a day. In 2008, 283,000 gallons (1 million liters) shut off the waterway for just six days.

This week, 5,300 feet (1615 meters) of booms helped block flow downstream toward the Gulf, and workers have skimmed 7,650 gallons (29,000 liters) of oil-and-water mixture so far.

But the cleanup has slowed traffic on the Mississippi even more.

"It will stay closed until we can safely move traffic without impeding the cleanup efforts," said chief petty officer Bobby Nash of the U.S. Coast Guard on Tuesday. The 16-mile affected stretch opened with restrictions at 7:00 p.m. on Wednesday.

As of Thursday afternoon, 52 tugs bearing 844 barges—377 headed north and 467 south—were sitting and waiting.


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Water Demand for Energy to Double by 2035

Marianne Lavelle and Thomas K. Grose



The amount of fresh water consumed for world energy production is on track to double within the next 25 years, the International Energy Agency (IEA) projects.


And even though fracking—high-pressure hydraulic fracturing of underground rock formations for natural gas and oil—might grab headlines, IEA sees its future impact as relatively small.


By far the largest strain on future water resources from the energy system, according to IEA's forecast, would be due to two lesser noted, but profound trends in the energy world: soaring coal-fired electricity, and the ramping up of biofuel production.



Two pie charts show the share of different fuels for water consumption, as projected by the International Energy Agency.

National Geographic



If today's policies remain in place, the IEA calculates that water consumed for energy production would increase from 66 billion cubic meters (bcm) today to 135 bcm annually by 2035.


That's an amount equal to the residential water use of every person in the United States over three years, or 90 days' discharge of the Mississippi River. It would be four times the volume of the largest U.S. reservoir, Hoover Dam's Lake Mead.


More than half of that drain would be from coal-fired power plants and 30 percent attributable to biofuel production, in IEA's view. The agency estimates oil and natural gas production together would account for 10 percent of global energy-related water demand in 2035. (See related quiz: "What You Don't Know About Biofuel.")


Not everyone agrees with the IEA's projections. The biofuel industry argues that the Paris-based agency is both overestimating current water use in the ethanol industry, and ignoring the improvements that it is making to reduce water use. But government agencies and academic researchers in recent years also have compiled data that point to increasingly water-intensive energy production. Such a trend is alarming, given the United Nations' projection that by 2025, 1.8 billion people will be living in regions with severe water scarcity, and that two-thirds of the world's population could be living under water-stressed conditions.


"Energy and water are tightly entwined," says Sandra Postel, director of the Global Water Policy Project, and National Geographic's Freshwater Fellow. "It takes a great deal of energy to supply water, and a great deal of water to supply energy. With water stress spreading and intensifying around the globe, it's critical that policymakers not promote water-intensive energy options."


Power Drunk


The IEA, established after the oil shocks of the 1970s as a policy adviser on energy security, included a warning on water in a special report within its latest World Energy Outlook released late last year. "A more water-constrained future, as population and the global economy grow and climate change looms, will impact energy sector reliability and costs," the agency said.


National Geographic News obtained from IEA a detailed breakdown of the figures, focusing on the agency's "current policies" scenario—the direction in which the world is heading based on current laws, regulations, and technology trends.


In the energy realm, IEA sees coal-powered electricity driving the greatest demand for water now and in the future. Coal power is increasing in every region of the world except the United States, and may surpass oil as the world's main source of energy by 2017. (See related interactive map: The Global Electricity Mix.)


Steam-driven coal plants always have required large amounts of water, but the industry move to more advanced technologies actually results in greater water consumption, IEA notes. These advanced plants have some environmental advantages: They discharge much less heated water into rivers and other bodies of water, so aquatic ecosystems are protected. But they lose much more water to evaporation in the cooling process.


The same water consumption issues are at play in nuclear plants, which similarly generate steam to drive electric turbines. But there are far fewer nuclear power plants; nuclear energy generates just 13 percent of global electricity demand today, and if current trends hold, its share will fall to about 10 percent by 2035. Coal, on the other hand, is the "backbone fuel for electricity generation," IEA says, fueling 41 percent of power in a world where electricity demand is on track to grow 90 percent by 2035. Nuclear plants account for just 5 percent of world water consumption for energy today, a share that is on track to fall to 3 percent, IEA forecasts. (See related quiz: "What You Don't Know About Water and Energy.")


If today's trends hold steady on the number of coal plants coming on line and the cooling technologies being employed, water consumption for coal electricity would jump 84 percent, from 38 to 70 billion cubic meters annually by 2035, IEA says. Coal plants then would be responsible for more than half of all water consumed in energy production.


Coal power producers could cut water consumption through use of "dry cooling" systems, which have minimal water requirements, according to IEA. But the agency notes that such plants cost three or four times more than wet cooling plants. Also, dry cooling plants generate electricity less efficiently.


The surest way to reduce the water required for electricity generation, IEA's figures indicate, would be to move to alternative fuels. Renewable energy provides the greatest opportunity: Wind and solar photovoltaic power have such minimal water needs they account for less than one percent of water consumption for energy now and in the future, by IEA's calculations. Natural gas power plants also use less water than coal plants. While providing 23 percent of today's electricity, gas plants account for just 2 percent of today's energy water consumption, shares that essentially would hold steady through 2035 under current policies.


The IEA report includes a sobering analysis of the water impact of carbon capture and sequestration (CCS) technology. If the world turns to CCS as a way to cut greenhouse gas emissions from coal plants, IEA's analysis echoes that of outside researchers who have warned that water consumption will be just as great or worse than in the coal plants of today. "A low-carbon solution is not necessarily a low-water solution," says Kristen Averyt, associate director for science at the Cooperative Institute for Research in Environmental Sciences at the University of Colorado. However, based on current government policies, IEA forecasts that CCS would account for only 1.3 percent of the world's coal-fired generation in 2035. (See related story: "Amid Economic Concerns, Carbon Capture Faces a Hazy Future.")


Biofuel Thirst


After coal power, biofuels are on track to cause the largest share of water stress in the energy systems of the future, in IEA's view. The agency anticipates a 242 percent increase in water consumption for biofuel production by 2035, from 12 billion cubic meters to 41 bcm annually.


The potential drain on water resources is especially striking when considered in the context of how much energy IEA expects biofuels will deliver—an amount that is relatively modest, in part because ethanol generally produces less energy per gallon than petroleum-based fuels. Biofuels like ethanol and biodiesel now account for more than half the water consumed in "primary energy production" (production of fuels, rather than production of electricity), while providing less than 3 percent of the energy that fuels cars, trucks, ships, and aircraft. IEA projects that under current government policies, biofuels' contribution will edge up to just 5 percent of the world's (greatly increased) transportation demand by 2035, but fuel processed from plant material will by then be drinking 72 percent of the water in primary energy production.


"Irrigation consumes a lot of water," says Averyt. Evaporation is the culprit, and there is great concern over losses in this area, even though the water in theory returns to Earth as precipitation. "Just because evaporation happens here, does not mean it will rain here," says Averyt. Because irrigation is needed most in arid areas, the watering of crops exacerbates the uneven spread of global water supply.


Experts worry that water demand for fuel will sap water needed for food crops as world population is increasing. "Biofuels, in particular, will siphon water away from food production," says Postel. "How will we then feed 9 billion people?" (See related quiz: "What You Don't Know About Food, Water, and Energy.")


But irrigation rates vary widely by region, and even in the same region, farming practices can vary significantly from one year to the next, depending on rainfall. That means there's a great deal of uncertainty in any estimates of biofuel water-intensity, including IEA's.


For example, for corn ethanol (favored product of the world's number one biofuel producer, the United States), IEA estimates of water consumption can range from four gallons to 560 gallons of water for every gallon of corn ethanol produced. At the low end, that's about on par with some of the gasoline on the market, production of which consumes from one-quarter gallon to four gallons water per gallon of fuel. But at the high end, biofuels are significantly thirstier than the petroleum products they'd be replacing. For sugar cane ethanol (Brazil's main biofuel), IEA's estimate spans an even greater range: from 1.1 gallon to 2,772 gallons of water per gallon of fuel.


It's not entirely clear how much biofuel falls at the higher end of the range. In the United States, only about 18 to 22 percent of U.S. corn production came from irrigated fields, according to the U.S. Department of Agriculture. And the remaining water in ethanol production in the United States—the amount consumed in the milling, distilling, and refining processes—has been cut in half over the past decade through recycling and other techniques, both industry sources and government researchers say. (One industry survey now puts the figure at 2.7 gallons water per gallon of ethanol.) A number of technologies are being tested to further cut water use.


"It absolutely has been a major area of focus and research and development for the industry over the past decade," says Geoff Cooper, head of research and analysis for the Renewable Fuels Association, the U.S.-based industry trade group. "Our member companies understand that water is one of those resources that we need to be very serious about conserving. Not only is it a matter of sustainability; it's a matter of cost and economics."


One potential solution is to shift from surface spraying to pumped irrigation, which requires much less water, says IEA. But the downside is those systems require much more electricity to operate.


Water use also could be cut with advanced biofuels made from non-food, hardy plant material that doesn't require irrigation, but so-called cellulosic ethanol will not become commercially viable under current government policies, in IEA's view, until 2025. (If governments enacted policies to sharply curb growth of greenhouse gas emissions, IEA's scenarios show cellulosic ethanol could take off as soon as 2015.)


Fracking's Surge


Fracking and other unconventional techniques for producing oil and natural gas also will shape the future of energy, though in IEA's view, their impact on water consumption will be less than that of biofuels and coal power. Water consumption for natural gas production would increase 86 percent to 2.85 billion cubic meters by 2035, when the world will produce 61 percent more natural gas than it does today, IEA projects. Similarly, water consumption for oil production would slightly outpace oil production itself, growing 36 percent in a world producing 25 percent more oil than today, under IEA's current policies scenario.


Those global projections may seem modest in light of the local water impact of fracking projects. Natural gas industry sources in the shale gas hot spot of Pennsylvania, for instance, say that about 4 million gallons (15 million liters) of water are required for each fracked well, far more than the 100,000 gallons (378,540 liters) conventional Pennsylvania wells once required. (Related: "Forcing Gas Out of Rock With Water")


IEA stresses that its water calculations are based on the entire production process (from "source to carrier"); water demand at frack sites is just one part of a large picture. As with the biofuel industry, the oil and gas industry is working to cut its water footprint, IEA says. "Greater use of water recycling has helped the industry adapt to severe drought in Texas" in the Eagle Ford shale play, said Matthew Frank, IEA energy analyst, in an email.


"The volumes of water used in shale gas production receive a lot of attention (as they are indeed large), but often without comparison to other industrial users," Frank added. "Other sources of energy can require even greater volumes of water on a per-unit-energy basis, such as some biofuels. The water requirements for thermal power plants dwarf those of oil, gas and coal production in our projections."


That said, IEA does see localized stresses to production of fossil fuels due to water scarcity and competition—in North Dakota, in Iraq, in the Canadian oil sands. "These vulnerabilities and impacts are manageable in most cases, but better technology will need to be deployed and energy and water policies better integrated," the IEA report says. (See related story: "Natural Gas Nation: EIA Sees U.S. Future Shaped by Fracking.")


Indeed, in Postel's view, the silver lining in the alarming data is that it provides further support for action to seek alternatives and to reduce energy use altogether. "There is still enormous untapped potential to improve energy efficiency, which would reduce water stress and climate disruption at the same time," she says. "The win-win of the water-energy nexus is that saving energy saves water."


This story is part of a special series that explores energy issues. For more, visit The Great Energy Challenge.


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What Does First-century Roman Graffiti Say?

A.R. Williams


A facelift of the Colosseum in Rome that began last fall has revealed centuries of graffiti. Removing the accumulated grime and calcification, experts discovered layers of inscriptions on the section of a wall seen here—designs in red and faded gray from antiquity, and lettering in black left by visitors in modern times.

Built in the first century, the Colosseum may have held crowds as large as 50,000 people. Its numbered entrances and covered passages were designed to get spectators in and out quickly and to separate the high and mighty from the hoi polloi. (Read about Rome's border walls in National Geographic Magazine.)

The wall in this picture flanked a passage that led to an upper tier. There, women, children, and slaves perched in the cheap seats to watch the bloody spectacle of gladiators and wild beasts battling for their lives on the arena floor 60 feet (18 meters) below.

Even in the dim light of this passage, the designs painted in red would have been easy to see against a background of white plaster. Today, the meaning of the designs in this particular spot is a mystery, though patches of newly cleaned plaster on other parts of the wall show a palm frond in red (a symbol of victory) and the letters "VIND," which may be part of the word vindicatio, or vengeance. (See photo of street art graffiti)

In the area above what looks like the large "S," meanwhile, Roman graffiti expert Rebecca Benefiel sees the faint gray profile of a face. "That was the single most popular image to draw in ancient graffiti," she says.

In the Roman period people rarely wrote their messages on top of existing graffiti. "There was a different understanding of writing on a wall," said Benefiel, a classics professor at Washington and Lee University. "You left space."

By the 19th century, the Colosseum was a famous monument, and its graffiti had become a tangled, overwritten record of tourists' visits. "Writers were aware of being in a historic place," said Benefiel. "They were making a mark to emphasize their presence."

Names and dates were important. So was place of origin. On this wall, in 1892, J. Milber wanted the world to know that he had traveled from the city of Strasbourg.

Officials in Rome say they plan to open this passage to the public once the restoration work is done. Presumably some kind of barrier will prevent future tourists from adding their own autographs for posterity.


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Urban Heat May Warm Faraway Places


The massive amounts of heat produced by cities may be heating up rural areas 1,000 miles (1,600 kilometers) away, atmospheric researchers have found in a new modeling study.

Scientists have long invoked the "urban island heat effect" to explain why cities are generally hotter than suburban and rural areas. More people, as well as more cars, houses, and paved surfaces, turn energy into heat, which is radiated into the atmosphere.

But new modeling research from the Scripps Institution of Oceanography at the University of California, San Diego, suggests that cities in the Northern Hemisphere can also increase the heat of faraway rural places up to 1.8ºF (1°C)—a substantial aggregate increase.

The reason comes down to global air flow.

Heat produced by cars and people travels about 2,500 feet (4,023 kilometers) into the atmosphere, where it disturbs part of the jet stream that continually circulates a belt of cool air around the top of the planet. When hot air intercepts the jet stream, it pushes the belt upward, allowing warmer air from the Equator to come farther north, warming parts of northern Europe and North America that normally would have been cooler.

Over the Northern Hemisphere, 86 major metropolitan areas cover only 1.27 percent of the Earth's surface. But those areas consume 6.7 terawatts of energy annually—representing 42 percent of annual global consumption.

Those cities' influence on global climate is therefore magnified, according to the study, published Sunday in the journal Nature Climate Change.

Until now, climate researchers have mostly pointed to greenhouse gasses as the sole cause of climate change. But the planet has been warming in some areas faster than models have predicted.

The impacts of urban heat produced by energy consumption may account for some of that extra warming, said Guang Zhang, a meteorologist at Scripps who conducted the study: "Essentially, we are now able to account for a missing part of the warming."

Zhang found that the areas most significantly impacted by this urban heat effect were Siberia and northern Canada, which can see temperatures rise 1.4º to 1.8°F (0.8° to 1°C) due to urban heat in faraway cities like New York or San Francisco.

Further south, areas like Minnesota and Michigan might see a 0.5°F (0.3°C) increase. The modeling was conducted with data from the National Center for Atmospheric Research, a leading source of global climate data.

While it's true that the Earth's aggregate climate affects every spot on the planet, the impacts of city heat were most pronounced in the Northern Hemisphere, where nearly 90 percent of the global population lives. And the most dramatic cool usually comes in the fall, the researchers said, for reasons that can't yet be fully explained.


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Pictures: The Story Behind Sun Dogs, Penitent Ice, and More

Photograph by Art Wolfe, Getty Images

If you want the beauty of winter without having to brave the bone-chilling temperatures blasting much of the United States this week, snuggle into a soft blanket, grab a warm beverage, and curl up with some of these natural frozen wonders.

Nieve penitente, or penitent snow, are collections of spires that resemble robed monks—or penitents. They are flattened columns of snow wider at the base than at the tip and can range in height from 3 to 20 feet (1 to 6 meters). The picture above shows the phenomenon in central Chile. (See pictures of the patterns in snow and ice.)

Nieve penitente tend to form in shallow valleys where the snow is deep and the sun doesn't shine at too steep an angle, said Kenneth Libbrecht, a physicist at the California Institute of Technology in Pasadena who studies ice crystal formation.

As the snow melts, dirt gets mixed in with the runoff and collects in little pools here and there, he said. Since the dirt is darker in color than the surrounding snow, the dirty areas melt faster "and you end up digging these pits," explained Libbrecht.

"They tend to form at high altitude," he said. But other than that, no one really knows the exact conditions that are needed to form penitent snow.

"They're fairly strong," Libbrecht said. "People have found [the spires] difficult to hike through."

Jane J. Lee

Published January 25, 2013

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Pictures: The Story Behind Sun Dogs, Penitent Ice, and More

Photograph by Art Wolfe, Getty Images

If you want the beauty of winter without having to brave the bone-chilling temperatures blasting much of the United States this week, snuggle into a soft blanket, grab a warm beverage, and curl up with some of these natural frozen wonders.

Nieve penitente, or penitent snow, are collections of spires that resemble robed monks—or penitents. They are flattened columns of snow wider at the base than at the tip and can range in height from 3 to 20 feet (1 to 6 meters). The picture above shows the phenomenon in central Chile. (See pictures of the patterns in snow and ice.)

Nieve penitente tend to form in shallow valleys where the snow is deep and the sun doesn't shine at too steep an angle, said Kenneth Libbrecht, a physicist at the California Institute of Technology in Pasadena who studies ice crystal formation.

As the snow melts, dirt gets mixed in with the runoff and collects in little pools here and there, he said. Since the dirt is darker in color than the surrounding snow, the dirty areas melt faster "and you end up digging these pits," explained Libbrecht.

"They tend to form at high altitude," he said. But other than that, no one really knows the exact conditions that are needed to form penitent snow.

"They're fairly strong," Libbrecht said. "People have found [the spires] difficult to hike through."

Jane J. Lee

Published January 25, 2013

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Pictures: Inside the Lives of Albinos in Tanzania

Photograph by Jacquelyn Martin, AP

Being an albino can be a death sentence in Tanzania. Since 2006, 71 people with no pigment in their skin, hair, or eyes have been killed there. Another 29 have been attacked.

The genetic condition is believed to have been born in this East African nation. Today, 1 in every 1,400 Tanzanians has it (the world average is 1 in 20,000). Nevertheless, misinformation abounds. Some locals believe albinos are ghosts that can’t die. Others think they were born into cursed families. And—most chillingly—witch doctors want to hack off  their limbs to put in magic potions promising prosperity and healing. A complete albino “set”—ears, tongue, nose, genitals, all four limbs—can sell for $75,000.

As a result, many of Tanzania’s 17,000 albinos have been hidden away by the government. In this image, Bestida Salvatory is reunited with her 17-year-old daughter, Angel, at the Kabanga Protectorate Center. Angel, who has skin cancer, was forced to flee their home four years ago, after Angel’s own father led a group of men to attack her. Here Angel also visits her one-year-old half-brother, Ezekiel.

Published January 25, 2013

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10 Ways Obama Could Fight Climate Change


One of the biggest surprises of President Barack Obama's inaugural address on Monday was how much he focused on fighting climate change, spending more time on that issue than any other.

"We will respond to the threat of climate change, knowing that the failure to do so would betray our children and future generations," Obama said.

The President pointed out that recent severe weather supplied an urgent impetus for energy innovation and staked the nation's economic future on responding to a changing climate.

"We cannot cede to other nations the technology that will power new jobs and new industries—we must claim its promise," Obama said. "That's how we will maintain our economic vitality and our national treasure—our forests and waterways; our croplands and snowcapped peaks. That is how we will preserve our planet, commanded to our care by God."

So what could the President reasonably do to deliver on that vow? National Geographic asked experts in climate research, energy innovation, and oceanography. Here are ten of their suggestions:

1. Sunset coal with new incentives and regulations. "Provide incentives to phase out the oldest, most polluting power plants," said Robert Jackson, a climate scientist at Duke University. It's already happening, to some degree, as more of the nation transitions to natural gas. Earth scientist Bill Chameides, dean of Duke's Nicholas School of the Environment and a former chief scientist at the Environmental Defense Fund, urges the administration to use its Clean Air Act authority to promulgate carbon regulations for existing power plants like it has for new ones: "Doing that will force fuel switching from coal to natural gas." (Related: "6 Ways Climate Change Will Affect You.")

2. Invest federal stimulus money in nuclear power. It's hardly a perfect fuel, as accidents like Japan's Fukushima fallout have shown, but with safety precautions new nuclear plants can meaningfully offset dirtier types of energy, supporters say. "Nuclear is the only short- to medium-term way to really get away from fossil fuels," said Peter Raven, president emeritus of the Missouri Botanical Garden. He said the damage done by relentless global warming will far exceed the damage done by faults in the nuclear system.

3. Kill the Keystone pipeline. The controversial Keystone XL oil pipeline is up for review again by the White House this year. "The first thing he should do to set the tone to a lower carbon economy is to reject the Keystone pipeline," said Raymond Pierrehumbert, a geophysical scientist at the University of Chicago. The pipeline was never going to be a major driver of global emissions, but Pierrehumbert and some other environmentalists say that by killing it the President would send a clear message about America's intent to ramp down fossil fuels. (See pictures of the animals that helped kill the Keystone pipeline.)

4. Protect the oceans by executive order. Land use is complicated, but large swaths of oceans can be protected by executive fiat. Just as President George W. Bush designated the world's largest marine monument northwest of Hawaii in 2006, Obama could single-handedly protect other areas. National Geographic Explorer-in-Residence Sylvia Earle said the President should focus on parts of the Arctic that are under U.S. control, putting them off limits to energy production, commercial fishing, and mineral exploration. Marine sanctuaries won't stop climate change, but they can give marine species a better chance of adapting to it by reducing the other man-made threats the animals face. (Read about the many benefits of marine reserves.)

5. Experiment with capturing carbon. Huge untapped reserves of natural gas and oil make it unlikely that the U.S. will transition away from fossil fuels in the immediate future. Instead, said Wallace Broecker, geology professor at Columbia University's Lamont-Doherty Earth Observatory, we should attack the atmosphere's carbon surplus directly. "[Obama] could make available funds to build and test prototype air capture units" to capture and store CO2, said Broecker. Removing some carbon from the atmosphere could buy valuable time as policy makers and scientists explore more permanent solutions.

6. Grow government research for new energy sources. The Department of Energy has a nimble program that's tasked with innovative energy research—the Advanced Research Projects Agency-Energy. The ARPA-E funds research in biofuels, transmission, and battery storage, with an annual budget of $275 million. Last year, DOE officials requested at least $75 million more. Increasing funding for ARPA-E, said Rafe Pomerance, former deputy assistant secretary of state for environment and development and currently an environmental consultant, "you get new technologies that undercut coal, oil, and gas." Plus, he said, you get a competitive advantage if American researchers uncover the next big idea in new energy.

7. Tax carbon. Congress would have to agree, but many climate experts say that the most meaningful way to tackle emissions is to set a price on carbon. "We should be asking people to pay the cost of putting carbon into the atmosphere as they buy the fuel," said Josh Willis, climate scientist and oceanographer at NASA's Jet Propulsion Laboratory. To gain political support for the idea, Obama would probably have to show that the tax would help accelerate technology, grow new industries, and pay down the deficit.

8. Dial back the federal government's energy use. With more than 1.8 million employees, $500 billion in annual purchasing power, and 500,000 buildings to operate, the federal government has been a leader in reducing energy use since Obama signed a 2009 executive order to cut waste. "I would urge him to keep using the power of government to promote energy conservation," said Syndonia Bret-Harte, an Arctic biologist who studies climate change at the University of Alaska, Fairbanks.

9. Build a scientific clearinghouse for climate information. "I advocate for building a better information system on what is happening and why," said Kevin Trenberth, head of the Climate Analysis Section at the U.S. National Center for Atmospheric Research. That involves compiling observations related to climate change from around the world and using the data to refine climate modeling. Think of it as a one-stop, user-friendly website that clearly demonstrates how weather data from around the globe are influenced by broader shifts in the planet's climate.

10. Keep talking. Despite a consensus among top scientists, the world still needs some convincing on climate change. A CNN poll last week found that just 49 percent of Americans agree that global warming is real and is due to human activities. "The most important thing the President can do is to build on his inaugural comments to heighten the sense of urgency about rapid climate destabilization and clarify its connection to virtually every other issue on the national agenda," said David Orr, environmental studies professor at Oberlin College. That means using the bully pulpit to show how a more volatile climate affects everything from agriculture to transportation to 21st-century warfare.

Christine Dell'Amore, Rob Kunzig, and Jane J. Lee contributed reporting.


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Space Pictures This Week: Solar Tantrum, Petroglyphs at Night

Photograph by Tony Rowell, Your Shot

This image of Native American petroglyphs, or rock art, shot against the Milky Way, was taken in California's eastern Sierra Nevada on January 14.

Petroglyphs—one of many forms of rock art—are created by scraping, rubbing, or chiseling designs into the patina coating desert rocks. Depending on the conditions surrounding a piece of rock art, these designs can endure for hundreds to thousands of years. (Watch a video about Arizona's rock art.)

Erosion and natural processes, such as plant growth, can fade or destroy the designs. They can also fall victim to vandalism and theft.

According to news reports, one of the most recent incidences was discovered in late October 2012. Unknown perpetrators hacked six petroglyphs out of the cliff face at the Eastern Sierra Volcanic Tableland near Bishop, California (map). They damaged others using saws and hammers.

Published January 22, 2013

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Attack at Algeria Gas Plant Heralds New Risks for Energy Development



The siege by Islamic militants at a remote Sahara desert natural gas plant in Algeria this week signaled heightened dangers in the region for international oil companies, at a time when they have been expanding operations in Africa as one of the world's last energy frontiers. (See related story: "Pictures: Four New Offshore Drilling Frontiers.")


As BP, Norway's Statoil, Italy's Eni, and other companies evacuated personnel from Algeria, it was not immediately clear how widely the peril would spread in the wake of the hostage-taking at the sprawling In Amenas gas complex near the Libyan border.



A map of disputed islands in the East and South China Seas.

Map by National Geographic



Algeria, the fourth-largest crude oil producer on the continent and a major exporter of natural gas and refined fuels, may not have been viewed as the most hospitable climate for foreign energy companies, but that was due to unfavorable financial terms, bureaucracy, and corruption. The energy facilities themselves appeared to be safe, with multiple layers of security provided both by the companies and by government forces, several experts said. (See related photos: "Oil States: Are They Stable? Why It Matters.")


"It is particularly striking not only because it hasn't happened before, but because it happened in Algeria, one of the stronger states in the region," says Hanan Amin-Salem, a senior manager at the industry consulting firm PFC Energy, who specializes in country risk. She noted that in the long civil war that gripped the country throughout the 1990s, there had never been an attack on Algeria's energy complex. But now, hazard has spread from weak surrounding states, as the assault on In Amenas was carried out in an apparent retaliation for a move by French forces against the Islamists who had taken over Timbuktu and other towns in neighboring Mali. (See related story: "Timbuktu Falls.")


"What you're really seeing is an intensification of the fundamental problem of weak states, and empowerment of heavily armed groups that are really well motivated and want to pursue a set of aims," said Amin-Salem. In PFC Energy's view, she says, risk has increased in Mauritania, Chad, and Niger—indeed, throughout Sahel, the belt that bisects North Africa, separating the Sahara in the north from the tropical forests further south.


On Thursday, the London-based corporate consulting firm Exclusive Analysis, which was recently acquired by the global consultancy IHS, sent an alert to clients warning that oil and gas facilities near the Libyan and Mauritanian borders and in Mauritania's Hodh Ech Chargui province were at "high risk" of attack by jihadis.


"A Hot Place to Drill"


The attack at In Amenas comes at a time of unprecedented growth for the oil industry in Africa. (See related gallery: "Pictures: The Year's Most Overlooked Energy Stories.") Forecasters expect that oil output throughout Africa will double by 2025, says Amy Myers Jaffe, executive director of the energy and sustainability program at the University of California, Davis, who has counted 20 rounds of bidding for new exploration at sites in Africa's six largest oil-producing states.


Oil and natural gas are a large part of the Algerian economy, accounting for 60 percent of government budget revenues, more than a third of GDP and more than 97 percent of its export earnings. But the nation's resources are seen as largely undeveloped, and Algeria has tried to attract new investment. Over the past year, the government has sought to reform the law to boost foreign companies' interests in their investments, although those efforts have foundered.


Technology has been one of the factors driving the opening up of Africa to deeper energy exploration. Offshore and deepwater drilling success in the Gulf of Mexico and Brazil led to prospecting now under way offshore in Ghana, Mozambique, and elsewhere. (See related story: "New Oil—And a Huge Challenge—for Ghana.") Jaffe says the Houston-based company Anadarko Petroleum has sought to transfer its success in "subsalt seismic" exploration technology, surveying reserves hidden beneath the hard salt layer at the bottom of the sea, to the equally challenging seismic exploration beneath the sands of the Sahara in Algeria, where it now has three oil and gas operations.


Africa also is seen as one of the few remaining oil-rich regions of the world where foreign oil companies can obtain production-sharing agreements with governments, contracts that allow them a share of the revenue from the barrels they produce, instead of more limited service contracts for work performed.


"You now have the technology to tap the resources more effectively, and the fiscal terms are going to be more attractive than elsewhere—you put these things together and it's been a hot place to drill," says Jaffe, who doesn't see the energy industry's interest in Africa waning, despite the increased terrorism risk. "What I think will happen in some of these countries is that the companies are going to reveal new securities systems and procedures they have to keep workers safe," she says. "I don't think they will abandon these countries."


This story is part of a special series that explores energy issues. For more, visit The Great Energy Challenge.


Read More..

Attack at Algeria Gas Plant Heralds New Risks for Energy Development



The siege by Islamic militants at a remote Sahara desert natural gas plant in Algeria this week signaled heightened dangers in the region for international oil companies, at a time when they have been expanding operations in Africa as one of the world's last energy frontiers. (See related story: "Pictures: Four New Offshore Drilling Frontiers.")


As BP, Norway's Statoil, Italy's Eni, and other companies evacuated personnel from Algeria, it was not immediately clear how widely the peril would spread in the wake of the hostage-taking at the sprawling In Amenas gas complex near the Libyan border.



A map of disputed islands in the East and South China Seas.

Map by National Geographic



Algeria, the fourth-largest crude oil producer on the continent and a major exporter of natural gas and refined fuels, may not have been viewed as the most hospitable climate for foreign energy companies, but that was due to unfavorable financial terms, bureaucracy, and corruption. The energy facilities themselves appeared to be safe, with multiple layers of security provided both by the companies and by government forces, several experts said. (See related photos: "Oil States: Are They Stable? Why It Matters.")


"It is particularly striking not only because it hasn't happened before, but because it happened in Algeria, one of the stronger states in the region," says Hanan Amin-Salem, a senior manager at the industry consulting firm PFC Energy, who specializes in country risk. She noted that in the long civil war that gripped the country throughout the 1990s, there had never been an attack on Algeria's energy complex. But now, hazard has spread from weak surrounding states, as the assault on In Amenas was carried out in an apparent retaliation for a move by French forces against the Islamists who had taken over Timbuktu and other towns in neighboring Mali. (See related story: "Timbuktu Falls.")


"What you're really seeing is an intensification of the fundamental problem of weak states, and empowerment of heavily armed groups that are really well motivated and want to pursue a set of aims," said Amin-Salem. In PFC Energy's view, she says, risk has increased in Mauritania, Chad, and Niger—indeed, throughout Sahel, the belt that bisects North Africa, separating the Sahara in the north from the tropical forests further south.


On Thursday, the London-based corporate consulting firm Exclusive Analysis, which was recently acquired by the global consultancy IHS, sent an alert to clients warning that oil and gas facilities near the Libyan and Mauritanian borders and in Mauritania's Hodh Ech Chargui province were at "high risk" of attack by jihadis.


"A Hot Place to Drill"


The attack at In Amenas comes at a time of unprecedented growth for the oil industry in Africa. (See related gallery: "Pictures: The Year's Most Overlooked Energy Stories.") Forecasters expect that oil output throughout Africa will double by 2025, says Amy Myers Jaffe, executive director of the energy and sustainability program at the University of California, Davis, who has counted 20 rounds of bidding for new exploration at sites in Africa's six largest oil-producing states.


Oil and natural gas are a large part of the Algerian economy, accounting for 60 percent of government budget revenues, more than a third of GDP and more than 97 percent of its export earnings. But the nation's resources are seen as largely undeveloped, and Algeria has tried to attract new investment. Over the past year, the government has sought to reform the law to boost foreign companies' interests in their investments, although those efforts have foundered.


Technology has been one of the factors driving the opening up of Africa to deeper energy exploration. Offshore and deepwater drilling success in the Gulf of Mexico and Brazil led to prospecting now under way offshore in Ghana, Mozambique, and elsewhere. (See related story: "New Oil—And a Huge Challenge—for Ghana.") Jaffe says the Houston-based company Anadarko Petroleum has sought to transfer its success in "subsalt seismic" exploration technology, surveying reserves hidden beneath the hard salt layer at the bottom of the sea, to the equally challenging seismic exploration beneath the sands of the Sahara in Algeria, where it now has three oil and gas operations.


Africa also is seen as one of the few remaining oil-rich regions of the world where foreign oil companies can obtain production-sharing agreements with governments, contracts that allow them a share of the revenue from the barrels they produce, instead of more limited service contracts for work performed.


"You now have the technology to tap the resources more effectively, and the fiscal terms are going to be more attractive than elsewhere—you put these things together and it's been a hot place to drill," says Jaffe, who doesn't see the energy industry's interest in Africa waning, despite the increased terrorism risk. "What I think will happen in some of these countries is that the companies are going to reveal new securities systems and procedures they have to keep workers safe," she says. "I don't think they will abandon these countries."


This story is part of a special series that explores energy issues. For more, visit The Great Energy Challenge.


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