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Showing posts with label pattern. Show all posts
Showing posts with label pattern. Show all posts

Warm U.S. West, cold East: 4,000-year pattern; Global warming may bring more curvy jet streams during winter

These maps show winter temperature patterns (top) and winter precipitation patterns (bottom) associated with a curvy jet stream (not shown) that moves north from the Pacific to the Yukon and Alaska, then plunges down over the Canadian plains and into the eastern United States. A University of Utah-led study shows that starting 4,000 years ago, the jet stream tended to become curvier than it was between 8,000 and 4,000 years ago, and suggests global warming will enhance such curviness and thus frigid weather in the eastern states similar to this past winter's. The curvy jet stream brought abnormally warm temperatures (red and orange) to the West and Alaska and an abnormal deep freeze (blue) to the East this past winter, similar to what is shown in the top map, except the upper Midwest was colder than shown. The bottom map of a typical curvy jet stream precipitation pattern shows how that normally brings dry winters to reddish-orange areas and wet winters to blue regions. Precipitation patterns this winter matched the bottom map in many regions, except California was drier than expected and the upper Midwest was wetter than expected.Credit: Zhongfang Liu, Tianjin Normal University, China. Last winter's curvy jet stream pattern brought mild temperatures to western North America and harsh cold to the East. A University of Utah-led study shows that pattern became more pronounced 4,000 years ago, and suggests it may worsen as Earth's climate warms.

"If this trend continues, it could contribute to more extreme winter weather events in North America, as experienced this year with warm conditions in California and Alaska and intrusion of cold Arctic air across the eastern USA," says geochemist Gabe Bowen, senior author of the study.

The study was published online April 16 by the journal Nature Communications.

"A sinuous or curvy winter jet stream means unusual warmth in the West, drought conditions in part of the West, and abnormally cold winters in the East and Southeast," adds Bowen, an associate professor of geology and geophysics at the University of Utah. "We saw a good example of extreme wintertime climate that largely fit that pattern this past winter," although in the typical pattern California often is wetter.

It is not new for scientists to forecast that the current warming of Earth's climate due to carbon dioxide, methane and other "greenhouse" gases already has led to increased weather extremes and will continue to do so.

The new study shows the jet stream pattern that brings North American wintertime weather extremes is millennia old -- "a longstanding and persistent pattern of climate variability," Bowen says. Yet it also suggests global warming may enhance the pattern so there will be more frequent or more severe winter weather extremes or both.

"This is one more reason why we may have more winter extremes in North America, as well as something of a model for what those extremes may look like," Bowen says. Human-caused climate change is reducing equator-to-pole temperature differences; the atmosphere is warming more at the poles than at the equator. Based on what happened in past millennia, that could make a curvy jet stream even more frequent and-or intense than it is now, he says.

Bowen and his co-authors analyzed previously published data on oxygen isotope ratios in lake sediment cores and cave deposits from sites in the eastern and western United States and Canada. Those isotopes were deposited in ancient rainfall and incorporated into calcium carbonate. They reveal jet stream directions during the past 8,000 years, a geological time known as middle and late stages of the Holocene Epoch.

Next, the researchers did computer modeling or simulations of jet stream patterns -- both curvy and more direct west to east -- to show how changes in those patterns can explain changes in the isotope ratios left by rainfall in the old lake and cave deposits.

They found that the jet stream pattern -- known technically as the Pacific North American teleconnection -- shifted to a generally more "positive phase" -- meaning a curvy jet stream -- over a 500-year period starting about 4,000 years ago. In addition to this millennial-scale change in jet stream patterns, they also noted a cycle in which increases in the sun's intensity every 200 years make the jet stream flatter.

Bowen conducted the study with Zhongfang Liu of Tianjin Normal University in China, Kei Yoshimura of the University of Tokyo, Nikolaus Buenning of the University of Southern California, Camille Risi of the French National Center for Scientific Research, Jeffrey Welker of the University of Alaska at Anchorage, and Fasong Yuan of Cleveland State University.

The study was funded by the National Science Foundation, National Natural Science Foundation of China, Japan Society for the Promotion of Science and a joint program by the society and Japan's Ministry of Education, Culture, Sports, Science and Technology: the Program for Risk Information on Climate Change.

Sinuous Jet Stream Brings Winter Weather Extremes

The Pacific North American teleconnection, or PNA, "is a pattern of climate variability" with positive and negative phases, Bowen says.

"In periods of positive PNA, the jet stream is very sinuous. As it comes in from Hawaii and the Pacific, it tends to rocket up past British Columbia to the Yukon and Alaska, and then it plunges down over the Canadian plains and into the eastern United States. The main effect in terms of weather is that we tend to have cold winter weather throughout most of the eastern U.S. You have a freight car of arctic air that pushes down there."

Bowen says that when the jet stream is curvy, "the West tends to have mild, relatively warm winters, and Pacific storms tend to occur farther north. So in Northern California, the Pacific Northwest and parts of western interior, it tends to be relatively dry, but tends to be quite wet and unusually warm in northwest Canada and Alaska."

This past winter, there were times of a strongly curving jet stream, and times when the Pacific North American teleconnection was in its negative phase, which means "the jet stream is flat, mostly west-to-east oriented," and sometimes split, Bowen says. In years when the jet stream pattern is more flat than curvy, "we tend to have strong storms in Northern California and Oregon. That moisture makes it into the western interior. The eastern U.S. is not affected by arctic air, so it tends to have milder winter temperatures."

The jet stream pattern -- whether curvy or flat -- has its greatest effects in winter and less impact on summer weather, Bowen says. The curvy pattern is enhanced by another climate phenomenon, the El Nino-Southern Oscillation, which sends a pool of warm water eastward to the eastern Pacific and affects climate worldwide.

Traces of Ancient Rains Reveal Which Way the Wind Blew

Over the millennia, oxygen in ancient rain water was incorporated into calcium carbonate deposited in cave and lake sediments. The ratio of rare, heavy oxygen-18 to the common isotope oxygen-16 in the calcium carbonate tells geochemists whether clouds that carried the rain were moving generally north or south during a given time.

Previous research determined the dates and oxygen isotope ratios for sediments in the new study, allowing Bowen and colleagues to use the ratios to tell if the jet stream was curvy or flat at various times during the past 8,000 years.

Bowen says air flowing over the Pacific picks up water from the ocean. As a curvy jet stream carries clouds north toward Alaska, the air cools and some of the water falls out as rain, with greater proportions of heavier oxygen-18 falling, thus raising the oxygen-18-to-16 ratio in rain and certain sediments in western North America. Then the jet stream curves south over the middle of the continent, and the water vapor, already depleted in oxygen-18, falls in the East as rain with lower oxygen-18-to-16 ratios.

When the jet stream is flat and moving east-to-west, oxygen-18 in rain is still elevated in the West and depleted in the East, but the difference is much less than when the jet stream is curvy.

By examining oxygen isotope ratios in lake and cave sediments in the West and East, Bowen and colleagues showed that a flatter jet stream pattern prevailed from about 8,000 to 4,000 years ago in North America, but then, over only 500 years, the pattern shifted so that curvy jet streams became more frequent or severe or both. The method can't distinguish frequency from severity.

The new study is based mainly on isotope ratios at Buckeye Creek Cave, W. Va.; Lake Grinell, N.J.; Oregon Caves National Monument; and Lake Jellybean, Yukon.

Additional data supporting increasing curviness of the jet stream over recent millennia came from seven other sites: Crawford Lake, Ontario; Castor Lake, Wash.; Little Salt Spring, Fla.; Estancia Lake, N.M.; Crevice Lake, Mont.; and Dog and Felker lakes, British Columbia. Some sites provided oxygen isotope data; others showed changes in weather patterns based on tree ring growth or spring deposits.

Simulating the Jet Stream

As a test of what the cave and lake sediments revealed, Bowen's team did computer simulations of climate using software that takes isotopes into account.

Simulations of climate and oxygen isotope changes in the Middle Holocene and today resemble, respectively, today's flat and curvy jet stream patterns, supporting the switch toward increasing jet stream sinuosity 4,000 years ago.

Why did the trend start then?

"It was a when seasonality becomes weaker," Bowen says. The Northern Hemisphere was closer to the sun during the summer 8,000 years ago than it was 4,000 years ago or is now due to a 20,000-year cycle in Earth's orbit. He envisions a tipping point 4,000 years ago when weakening summer sunlight reduced the equator-to-pole temperature difference and, along with an intensifying El Nino climate pattern, pushed the jet stream toward greater curviness.


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Weather pattern could fuel more Ala. tornadoes

HUNTSVILLE, Ala. (AP) – This isn't a tornado warning, nor is the siren about to go screaming across the Tennessee Valley.

A tornado roars through Tuscaloosa, Ala., in April 2011. Dusty Compton, AP

A tornado roars through Tuscaloosa, Ala., in April 2011.

Dusty Compton, AP

A tornado roars through Tuscaloosa, Ala., in April 2011.

But the potential and the indicators are in place to make the upcoming spring tornado season a rocky one to ride out.

This follows a storm season in 2011 that saw several killer tornadoes lash Alabama.

John Christy, the state climatologist and director of the Earth System Science Center at the University of Alabama in Huntsville, cited the presence of the La Niña weather pattern as a cause for tornado apprehension this spring.

"In a La Niña type year, we tend to have more of these types of experiences with the trailing cold front creating the opportunity for those specific ingredients to provide the high contrast between cold and warm," Christy said.

"We are still in La Niña pattern. The long-range forecast for the spring is for warmer than usual. So that sets up an opportunity for a contrast along the way for these ingredients to come together."

If it happens, Kevin Knupp will be ready. A professor of atmospheric sciences at UAH who studies tornadoes, Knupp is working on research about the influence gravity waves have on tornadoes.

Knupp compared the gravity waves to the way water moves across a lake. As the gravity waves encounter a potential tornado, it can enhance the likelihood of a twister developing, according to Knupp's theory.

"When the waves intersect the storm, oftentimes - not always but most of the time - there is a response from the storm," Knupp said. "If there is an existing circulation, it intensifies that existing circulation there and if there is no tornado genesis, the formation of a tornado can occur at that time."

Watching gravity waves -- which is easier in a humid climate like Alabama -- can aid forecasters in identifying tornadoes. Knupp said the National Weather Service in Huntsville was already using gravity waves among its tools for distinguishing tornadoes.

"We can be more specific on when and where it might form," said Knupp, who is also studying the impact topography has on the intensity of tornadoes. "We want to do that because the false alarm rate on tornado warnings has been so high in this area."

So what's on the horizon for the Tennessee Valley as prime tornado season approaches in March and April?

"From a historical standpoint, Alabama gets about 60 tornadoes a year," Christy said. "Most of them come in the spring. So by any standard measure, you should be ready for something to happen this spring.

"With the way the global atmosphere circulation is set up (with the La Niña pattern), there is a bit more chance that number will be higher than average this spring."

The La Niña pattern, Christy and Knupp said, brings cold air from the Pacific Ocean into close proximity with warm air from the Gulf of Mexico. Christy described it as an "opportunity" for the two air masses to "collide" over Alabama and that's when the atmosphere becomes unstable.

But Christy downplayed any seeming increase in tornadoes in recent years.

"We still have just as many tornadoes as we've ever had," he said. "We just put more stuff in their way to hit. So the damage from tornadoes will just continue to rise."

Of course, weather experts are loathe to look farther into the future than absolutely necessary. But history, in a sense, can be a crystal ball with a peek at what's to come.

"If it happened before, it'll happen again and probably worse," Christy said. "That's my general rule of climate."

Said Knupp, "I remember that word for word and that's what I tell my students."

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La Nina weather pattern may be factor in more tornadoes (Reuters)

CHICAGO (Reuters) – La Nina, a weather pattern characterized by colder ocean temperatures in the eastern equatorial Pacific, may be playing a part in the high number of U.S. tornadoes this spring, according to an AccuWeather meteorologist.

"La Nina typically has a more active southern jet stream. This spring that has played a role in the severe weather," said Mark Paquette, meteorologist for AccuWeather.com.

Another factor may be warmer temperatures in the Gulf of Mexico, which helped contribute to a warm and muggy air mass in the south, Paquette said.

But meteorologists said it was impossible to determine if climate change is responsible for the surge in natural disasters.

Weather experts agree that the deadly nature of this year's tornadoes is mostly due to bad luck and population sprawl -- as some tornadoes have hit densely populated areas in Missouri and Minnesota over the weekend and Alabama in April.

"We have people where there used to be farmland," said Paquette.

This year has seen an unusually high number of tornadoes, with 1,168 as of May 22, compared to an average of about 671 by this time, according to Joshua Wurman, president of the Center for Severe Weather Research in Boulder, Colo.

This year's tornado season has been exceptionally deadly -- the most recent example being the tornado that hit Joplin, Missouri Sunday, killing at least 116 people.

The U.S. is on pace to break the record for deaths from tornadoes this season, the National Weather Service said on Monday.

CLIMATE CHANGE A FACTOR?

Tornadoes typically form in the spring months as a result of cool air clashing with warm, humid weather. The conditions this spring have been "very favorable" for tornado formation, noted Wurman. He said that these conditions occur in some years with La Nina, but these conditions also can occur without La Nina.

Wurman said scientists are leery of drawing connections between tornadoes and long-term climate change, for a few reasons. One reason is that if something is attributable to a long-term change in climate, it would have to happen repeatedly. Last year was not a high year for tornadoes.

Scientists also do not have a good feel theoretically for what climate change would likely do to the frequency and intensity of tornadoes, Wurman said. While nearly all scientists agree climate change is occurring and globally average temperatures will probably go up, they do not know what that means for tornadoes.

"It could be climate change might cause more tornadoes, or less tornadoes, or there might be no change," Wurman said.

The tornadoes that hit the south in April were exceptional in their number, according to weather experts. What was unusual about Sunday's Missouri tornado was that it made a direct hit on a small city.

"It's bad luck," said Paquette. "Sometimes you have tornadoes that hit in the cornfields of Kansas or Nebraska or Iowa and the only person affected is that farmer and it doesn't even hit his house. But here we have a tornado that hit a hospital."

The expanding population of the United States, with accompanying suburban sprawl, has created more areas for tornadoes to cause serious damage.

Wurman noted that the tornado could have been worse if it hit an even more populated urban area, like the Chicago suburbs. "A tornado doesn't really care what's underneath it," said Wurman.

Wurman said that while it is easier for tornadoes to cause expensive and deadly damage because of sprawl, warnings also are better than they used to be. Thirty years ago, people only got an average of 3 minutes of warning before a tornado hit, now the average is 13 minutes.

"We'd like to get that up to 30 or 40 minutes," Wurman said.

He said he also would like to get the false alarm rate down because 70-75 percent of tornado warnings are false alarms, so people do not always seek shelter in time.

(Writing and reporting by Mary Wisniewski; Editing by Greg McCune)


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