Saturday, May 28, 2016

[Geology2] How a huge landslide shaped Zion National Park



How a huge landslide shaped Zion National Park

Study dates slide to 4,800 years ago, creating lake for 700 years

Date:
May 26, 2016
Source:
University of Utah
Summary:
A Utah mountainside collapsed 4,800 years ago in a gargantuan landslide known as a 'rock avalanche,' creating the flat floor of what is now Zion National Park by damming the Virgin River to create a lake that existed for 700 years.

A computer-simulated time sequence of the gargantuan Sentinel landslide in Zion Canyon 4,8000 years ago is shown here. The first six frames show the progress of the rock-avalanche landslide, which lasted about a minute. Darker brown indicates thicker slide deposits, while yellow indicates thinner deposits. The last two frames compare the slide after it was at a complete standstill after 200 seconds with a reconstruction of the actual landslide deposit based on geological mapping. That shows the simulation is close to reality.
Credit: Jeff Moore, University of Utah

A Utah mountainside collapsed 4,800 years ago in a gargantuan landslide known as a "rock avalanche," creating the flat floor of what is now Zion National Park by damming the Virgin River to create a lake that existed for 700 years.

Those are key conclusions of a new University of Utah study that provides the first definitive date for the landslide and estimates its size and dynamics, including a speed likely as fast as 180 mph. The study of the slide was published today and featured on the cover of the June issue of the Geological Society of America's journal GSA Today.

"The ancient Zion landslide would cover New York City's Central Park with 275 feet of debris," says Jeff Moore, the new study's senior author and an assistant professor of geology and geophysics at the University of Utah. "And you would need 90 times the volume of concrete in Hoover Dam to recreate the mountainside that failed."

The Sentinel rock avalanche also "would bury Salt Lake City's Liberty Park 2,340 feet deep, which is almost a half mile," Moore adds.

The huge landslide had a volume of 286 million cubic meters or 10.1 billion cubic feet -- 4.4 times bigger than Utah's 2013 Bingham Canyon copper mine landslide, one of North America's largest historic, nonvolcanic landslides, with a volume of 65 million cubic meters or 2.3 billion cubic feet.

The Sentinel, at 7,157 feet elevation on the west side of Zion Canyon, was bigger before the slide 4,800 years ago, "but a large portion of it is now gone," Moore says.

Computer simulations matched known landslide deposits and show the huge slide rushed southeast across Zion Canyon in about 20 seconds, with an average speed of 112 mph and a peak speed of 180 to 200 mph. "It was certainly moving more than 150 mph when the huge wall and peak crashed down," Moore says. Then, for 30 more seconds, the slide debris spread up and down Zion Canyon. "By a minute it was pretty much done."

"The original deposit was 2 miles long and just under a mile wide," with a maximum thickness of 650 feet and average thickness of 310 feet, he says, adding the landslide's lower end is at the road junction "right at the mouth of Zion Canyon."

"This catastrophic landslide of massive proportions had two effects," he says. "One was constructive -- creating paradise through cataclysm. More than 3.6 million people last year enjoyed the flat and tranquil valley floor of Zion Canyon, which owes its existence to this landslide. The other aspect is the extreme hazard that a similar event would pose if it happened today."

Moore says that "within the relatively small confines of Zion National Park, there is evidence for several deposits of large valley-blocking landslides," two within the past 5,000 years or so: The Sentinel slide and another, about one-fifth as big, in Hop Valley in the northern part of the park some 2,600 years ago.

Despite such severe, large prehistoric landslides, they are extremely infrequent and "we have no evidence that something like this is imminent," Moore says.

The 4,800-year-old landslide deposit still produces many smaller slides, including one in 1995 that damaged the road between the visitor center and the lodge, Moore says.

Dating a disaster

Moore defines a rock avalanche as "a very large failure of a solid-rock slope -- as opposed to soil -- with characteristic very fast, long and flowlike movement. Because of their large volume, they are relatively rare." Both the Sentinel and Bingham Canyon slides were rock avalanches.

Some people initially thought Zion Canyon was flat because of glacial debris, like Yosemite Valley in California. It is unclear when the Sentinel landslide was discovered, but it first was described in a scientific paper in 1945.

"We have conducted a rigorous and complete analysis of this landslide for the first time," Moore says. The study concluded the landslide most likely happened 4,800 years ago as single event, with a range of uncertainty so that it could have happened as early as 5,200 years ago or as recently as 4,400 years ago.

The method exploits the fact that after a landslide, boulders atop the slide have surfaces exposed to the sky for the first time. Particles from incoming cosmic rays begin to hit the boulder surfaces, creating beryllium-10. The longer a boulder is exposed, the greater the amount of beryllium-10, allowing scientists to determine when the boulder's surface first was exposed by the landslide.

With permission from the National Park Service, Moore and colleagues sampled 12 boulders from the landslide's surface, crushed the notebook-sized rock samples and analyzed their beryllium-10 content.

Moore says previous estimates of the landslide's date were from indirect methods, including radiocarbon dating of lake sediments that gave ages of 3,900 and 4,300 years. Another study estimated the slide was 7,900 years old.

Scientists don't know what caused the giant landside. "We found no evidence indicating there was an ancient earthquake at the time, but there's not a detailed record of paleoearthquakes in the Zion area," Moore says. "Rock avalanches frequently occur with an earthquake trigger but just as often occur with no apparent trigger at all."

The collapsed peak included sandstones from the Navajo and Kayenta formations, and the latter includes some weak shale layers that might have aided the slide.

Zion Lodge site once underwater

To determine the rock avalanche's volume of 286 million cubic meters, Moore and colleagues used a computer and "our best geological judgment to recreate what the canyon looked like before the slide." In a similar way, they then reconstructed the top surface of the landslide before it began to erode.

The landslide dammed the Virgin River, and "there was a lake in Zion Canyon for approximately 700 years," Moore says.

He calculates that if the river's discharge was similar to today's, it would have taken five to 10 years for the lake to fill. The long, narrow lake covered 2.4 square miles and extended from the north end of the rock avalanche deposit -- which is less than a mile south of present-day Zion Lodge -- northward almost to The Narrows. With the initial lake surface at 4,658 feet elevation, the site of the lodge was under 380 feet of water.

Then the lake breached the top of the landslide dam, the lake surface fell to 4,413 feet in elevation and the lake's area shrank to about 1.2 square miles, no longer extending to The Narrows but only 4.3 miles to the Temple of Sinawava.

Sediment amounts produced today by a nearby fork of the Virgin River suggest the lake filled with sediment in 700 years, give or take a century. By about 4,100 years ago, the lake had completely filled with sediment, forming the flat floor of Zion Canyon.

Moore calculates the Virgin River has eroded away about 45 percent of the original landslide deposit during the past 4,800 years. At that rate, in several thousand years Zion "will again be a steep, rocky, narrow canyon," he says.

So Moore calls the landslide "a minute with up to 10,000 years of consequences."

Moore notes that large landslides "create habitable land in otherwise steep landscapes around the world. People use flatter areas behind large landslide deposits for farming or to build a village" -- although they sometimes are at risk from future slides.


Story Source:

The above post is reprinted from materials provided by University of Utah. Note: Materials may be edited for content and length.


Journal Reference:

  1. Jessica J. Castleton, Jeffrey R. Moore, Jordan Aaron, Marcus Christl, Susan Ivy-Ochs. Dynamics and legacy of 4.8 ka rock avalanche that dammed Zion Canyon, Utah, USA. GSA Today, 2016; 26 (06): 4 DOI: 10.1130/GSATG269A.1


University of Utah. "How a huge landslide shaped Zion National Park: Study dates slide to 4,800 years ago, creating lake for 700 years." ScienceDaily. ScienceDaily, 26 May 2016. <www.sciencedaily.com/releases/2016/05/160526151759.htm>.

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Friday, May 27, 2016

[Geology2] Antarctic fossils reveal creatures weren't safer in the south during dinosaur extinction



Antarctic fossils reveal creatures weren't safer in the south during dinosaur extinction

Date:
May 26, 2016
Source:
University of Leeds
Summary:
A study of more than 6,000 marine fossils from the Antarctic shows that the mass extinction event that killed the dinosaurs was sudden and just as deadly to life in the polar regions. Previously, scientists had thought that creatures living in the southernmost regions of the planet would have been in a less perilous position during the mass extinction event than those elsewhere on Earth.

Antarctica (stock image).
Credit: © marcaletourneux / Fotolia

A study of more than 6,000 marine fossils from the Antarctic shows that the mass extinction event that killed the dinosaurs was sudden and just as deadly to life in the polar regions.

Previously, scientists had thought that creatures living in the southernmost regions of the planet would have been in a less perilous position during the mass extinction event than those elsewhere on Earth.

The research, published today in the journal Nature Communications, involved a six-year process of identifying more than 6,000 marine fossils ranging in age from 69- to 65-million-years-old that were excavated by scientists from the University of Leeds and the British Antarctic Survey on Seymour Island in the Antarctic Peninsula.

This is one of the largest collections of marine fossils of this age anywhere in the world. It includes a wide range of species, from small snails and clams that lived on the sea floor, to large and unusual creatures that swam in the surface waters of the ocean. These include the ammonite Diplomoceras, a distant relative of modern squid and octopus, with a paperclip-shaped shell that could grow as large as 2 metres, and giant marine reptiles such as Mosasaurus, as featured in the film Jurassic World.

With the marine fossils grouped by age, the collection shows a dramatic 65-70% reduction in the number of species living in the Antarctic 66 million years ago -- coinciding exactly with the time when the dinosaurs and many other groups of organisms worldwide became extinct at the end of the Cretaceous Period.

James Witts, a PhD student in the University's School of Earth and Environment and lead author of the new research paper said: "Our research essentially shows that one day everything was fine -- the Antarctic had a thriving and diverse marine community -- and the next, it wasn't. Clearly, a very sudden and catastrophic event had occurred on Earth.

"This is the strongest evidence from fossils that the main driver of this extinction event was the after-effects of a huge asteroid impact, rather than a slower decline caused by natural changes to the climate or by severe volcanism stressing global environments."

The study is the first to suggest that the mass extinction event was just as rapid and severe in the polar regions as elsewhere in the world.

Previously, scientists had thought that organisms living near the Poles were far enough away from the cause of the extinction to be badly affected -- whether this was an asteroid impact in the Gulf of Mexico, where a giant buried impact crater is found today, or extreme volcanism in the Deccan volcanic province in India. Furthermore, it had been proposed that animals and plants in the polar regions would have been more resilient to global climatic changes associated with an asteroid impact as a result of living in environments that were always strongly seasonal. For example, life near the Poles has to adapt to living in darkness for half of the year and to an irregular food supply.

Professor Jane Francis from the British Antarctic Survey, a co-author of the study, said: "These Antarctic rocks contain a truly exceptional assemblage of fossils that have yielded new and surprising information about the evolution of life 66 million years ago. Even the animals that lived at the ends of the Earth close to the South Pole were not safe from the devastating effects of the mass extinction at the end of the Cretaceous Period."

While some previous studies have suggested that the demise of the dinosaurs and other groups was gradual, many scientists argue that the dinosaur fossil record in particular is patchy, and cannot compete with marine fossils in terms of quantity and biodiversity.

James Witts said: "Most fossils are formed in marine environments, where it is easy for sediment to accumulate rapidly and bury parts of animals, such as bones, or bodies of creatures with a hard shell. For a dinosaur or other land animal to become fossilised, a series of favourable events are needed, such as for bones to fall into stagnant water and be buried rapidly to prevent decomposition, or be washed out to sea by rivers.

"This means that marine fossils are generally much more abundant. They can give us a much larger data set for studying how ecosystems and biodiversity change over time in the geological past, and enable us to draw robust conclusions about events during periods of rapid environmental change, like mass extinctions."


Story Source:

The above post is reprinted from materials provided by University of Leeds. Note: Materials may be edited for content and length.


Journal Reference:

  1. James D. Witts, Rowan J. Whittle, Paul B. Wignall, J. Alistair Crame, Jane E. Francis, Robert J. Newton, Vanessa C. Bowman. Macrofossil evidence for a rapid and severe Cretaceous–Paleogene mass extinction in Antarctica. Nature Communications, 2016; 7: 11738 DOI: 10.1038/NCOMMS11738


University of Leeds. "Antarctic fossils reveal creatures weren't safer in the south during dinosaur extinction." ScienceDaily. ScienceDaily, 26 May 2016. <www.sciencedaily.com/releases/2016/05/160526091956.htm>.

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Thursday, May 26, 2016

[californiadisasters] On This Date In California Weather History (May 26)



1968: It was 101° F at Santa Barbara setting a record high for May.

1964:
Hail to 1" in diameter caused minor property damage in the Reno, NV, area.

1953: Fresno set a record low of 40° F , lowest so late in the season.
River bottom areas nearby had light frost as well as Tarpey Village.

1951: It was a remarkable scorcher in the desert: 115° F in Thermal, 114° in Palm Springs, 113° F in Indio, and 103° F in Victorville.

1951: The high in Las Vegas, NV, reaches 109° F, setting a May record.

1946: Pinnacles National Monument recorded 0.37" of rain.

1942: Portola recorded 1.49" of precipitation.

Source: NWS San Francisco/Monterey, Hanford, Reno, Las Vegas, & San Diego

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Wednesday, May 25, 2016

[californiadisasters] On This Date In California Weather History (May 25)



2006: Highway 140 near El Portal (Mariposa Co.) was buried by a massive landslide near El Portal that was 600 feet wide, 600 feet long, and 300 feet deep.

1996: A funnel cloud was observed ten miles west of Lindbergh Field - San Diego.

1951: Saint Helena recorded a high of 100° F .

1896: It was 98° F in San Diego, the highest temperature on record for May.

Source: NWS San Francisco/Monterey, Hanford, Reno, & San Diego

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Please join our Discussion Group at http://groups.yahoo.com/group/californiadisasters_discussion/ for topical but extended discussions started here or for less topical but nonetheless relevant messages.





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[Geology2] Kilauea volcano in Hawaii sprouts two ‘vigorous’ lava flows (video)





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Posted by: Lin Kerns <linkerns@gmail.com>



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[Geology2] 600,000-year-old vein of Yellowstone volcanic ash turns up in landfill



Yellowstone Volcano600,000-year-old vein of Yellowstone volcanic ash turns up in landfill

  • Associated Press
  • Updated 17 hrs ago

Authorities say what's believed to be a 600,000-year-old vein of volcanic ash has been uncovered at a landfill just north of Lincoln, Nebraska.

The city said in a news release Monday that the ash was found during excavation work.

Alfred Benesch & Co. engineer Greg Westphal, who is overseeing the contract for a landfill expansion, said finding ash in the area isn't unusual, but its size is. The vein is estimated at 250 feet long, 5 to 15 feet wide and 4 to 5 feet deep.

The ash was discovered underneath the glacial till, sitting in what would've been a glacial lake that formed in front of ice sheets hundreds of thousands of years prior. Westphal said he believes the deposit might be a drift, pushed up against a stream.

Westphal wants to send samples to the state geologist, who will officially date it. But he's believes it came from a volcanic eruption in what is now Yellowstone National Park in northwest Wyoming.

The deposit was found in an area that's currently being prepared for expanded garbage and trash deposits. The city expands the landfill about every three years by opening up a new area called a cell, said Donna Garden, assistant director for Public Works and Utilities.

A contractor excavates dirt and puts layers of clay, plastic, gravel and felt at the bottom of the cell in order to prevent liquid from the garbage and trash from seeping into the groundwater, said Karla Welding, superintendent of solid waste operations.

http://trib.com/news/state-and-regional/year-old-vein-of-yellowstone-volcanic-ash-turns-up-in/article_558986af-e78b-543c-a9a9-456d90488954.html
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[Geology2] Early armored dinosaur from Texas lacked cousin's club-tail weapon, but had a nose for danger



Early armored dinosaur from Texas lacked cousin's club-tail weapon, but had a nose for danger

Date:
May 24, 2016
Source:
Southern Methodist University
Summary:
First-ever CT scans of the early armored dinosaur Pawpawsaurus campbelli reveal that although the Texas dino lacked its cousin's club-tail it had a sharp nose for danger. A relative of Ankylosaurus, Pawpawsaurus's saving grace from predators may have been an acute sense of smell, says vertebrate paleontologists. Pawpawsaurus lived 100 million years ago, preceding Ankylosaurus by 35 million years. CT scans allow scientists to determine how the animal's brain functioned.

First-ever CT scans of the skull of the Cretaceous creature Pawpawsaurus allowed reconstruction to evaluate the armored dinosaur's senses of hearing and smell.
Credit: Ariana Paulina-Carabajal, Yuong-Nam Lee, Louis L. Jacobs. Endocranial Morphology of the Primitive Nodosaurid Dinosaur Pawpawsaurus campbelli from the Early Cretaceous of North America. PLOS ONE, 2016; 11 (3): e0150845 DOI: 10.1371/journal.pone.0150845

Well-known armored dinosaur Ankylosaurus is famous for a hard knobby layer of bone across its back and a football-sized club on its tail for wielding against meat-eating enemies.

It's prehistoric cousin, Pawpawsaurus campbelli, was not so lucky. Pawpawsaurus was an earlier version of armored dinosaurs but not as well equipped to fight off meat-eaters, according to a new study, said vertebrate paleontologist Louis Jacobs, Southern Methodist University, Dallas. Jacobs is co-author of a new analysis of Pawpawsaurus based on the first CT scans ever taken of the dinosaur's skull.

A Texas native, Pawpawsaurus lived 100 million years ago during the Cretaceous Period, making its home along the shores of an inland sea that split North America from Texas northward to the Arctic Sea.

Like Ankylosaurus, Pawpawsaurus had armored plate across its back and on its eyelids. But unlike Ankylosaurus, Pawpawsaurus didn't have the signature club tail that was capable of knocking the knees out from under a large predator.

Ankylosaurus lived about 35 million years after Pawpawsaurus, around 66 million years ago toward the end of the Cretaceous. During the course of its evolution, ankylosaurids developed the club tail, and bone structure in its skull that improved its sense of smell and allowed it to hear a broader range of sounds. "Stable gaze" also emerged, which helped Ankylosaurus balance while wielding its clubbed tail.

"CT imaging has allowed us to delve into the intricacies of the brains of extinct animals, especially dinosaurs, to unlock secrets of their ways of life," said Jacobs, a professor in the SMU Department of Earth Sciences.

While Pawpawsaurus's sense of smell was inferior to Ankylosaurus, it was still sharper than some primitive dinosaur predators such as Ceratosaurus, said vertebrate paleontologist Ariana Paulina-Carabajal, first author on the study.

"Pawpawsaurus in particular, and the group it belonged to -- Nodosauridae -- had no flocculus, a structure of the brain involved with motor skills, no club tail, and a reduced nasal cavity and portion of the inner ear when compared with the other family of ankylosaurs," said Paulina-Carabajal, researcher for the Biodiversity and Environment Research Institute (CONICET-INIBIOMA), San Carlos de Bariloche, Argentina. "But its sense of smell was very important, as it probably relied on that to look for food, find mates and avoid or flee predators."

Most dinosaurs don't have bony ridges in their nasal cavities to guide airflow, but Ankylosaurs are unique in that they do.

"We can observe the complete nasal cavity morphology with the CT scans," Paulina-Carabajal said. "The CT scans revealed an enlarged nasal cavity compared to dinosaurs other than ankylosaurians. That may have helped Pawpawsaurus bellow out a lower range of vocalizations, improved its sense of smell, and cooled the inflow of air to regulate the temperature of blood flowing into the brain."

First CT scans shed light on Pawpawsaurus's sensory tools

Pawpawsaurus is more primitive than the younger derived versions of the dinosaur that evolved later, Jacobs said, although both walked on all fours and held their heads low to the ground.

"So we don't know if their sense of smell also evolved and improved even more," Jacobs said. "But we do suspect that scenting the environment was useful for a creature's survival, and the sense of smell is fairly widely distributed among plant eaters and meat eaters alike."

The team's measurements and conclusions are reported in the journal PLOS ONE in the article "Endocranial Morphology of the Primitive Nodosaurid Dinosaur Pawpawsaurus campbelli from the Early Cretaceous of North America."

The skull was identified in 1996 by Yuong-Nam Lee, Seoul National University, Korea, a co-author on the paper, who was then a doctoral student under Jacobs.

The team's discoveries emerged from Computed Tomography (CT) scans of the braincase of Pawpawsaurus campbelli's skull. Pawpawsaurus belongs to one of the least explored clades of dinosaurs when it comes to endocranial anatomy -- the spaces in the skull housing the brain.

The Pawpawsaurus skull was discovered 24 years ago by 19-year-old Cameron Campbell in the PawPaw Formation of Tarrant County near Dallas. Conventional analysis of the skull was carried out years ago to identify it as a never-before-seen nodosaurid ankylosaur. However, these are the first CT scans of Pawpawsaurus's skull because it's only been in recent years that fossils have been widely explored with X-rays.

In humans, a medical CT will scan the body to "see inside" with X-rays and capture a 3-D picture of the bones, blood vessels and soft tissue. In fossils, a much stronger dose of radiation than can be tolerated by humans is applied to fossils to capture 3-D images of the interior structure.

From the scans, paleontologists can then digitally reconstruct the brain and inner ear using special software.

"Once we have the 3D model, we can describe and measure all its different regions," Paulina-Carabajal said. "We can then compare that to existing reptile brains and their senses of hearing and smell. Hearing, for example, can be determined from the size of the lagena, the region of the inner ear that perceives sounds."

The size of the lagena in Pawpawsaurus suggests a sense of hearing similar to that of living crocodiles, she said.

Olfactory acuity, the sense of smell, is calculated from the size ratio of the olfactory bulb of the brain and the cerebral hemisphere.

"In Pawpawsaurus, the olfactory ratio is somewhat lower than it is in Ankyloxaurus, although both have high ratios when compared with most carnivorous dinosarus," Paulina-Carabajal said. "They are exceeded only by carcharodontosaurids and tyrannosaurids. The olfactory ratios of ankylosaurs in general are more or less similar to those calculated by other authors for the living crocodile."


Story Source:

The above post is reprinted from materials provided by Southern Methodist University. Note: Materials may be edited for content and length.


Journal Reference:

  1. Ariana Paulina-Carabajal, Yuong-Nam Lee, Louis L. Jacobs. Endocranial Morphology of the Primitive Nodosaurid Dinosaur Pawpawsaurus campbelli from the Early Cretaceous of North America. PLOS ONE, 2016; 11 (3): e0150845 DOI: 10.1371/journal.pone.0150845


Southern Methodist University. "Early armored dinosaur from Texas lacked cousin's club-tail weapon, but had a nose for danger." ScienceDaily. ScienceDaily, 24 May 2016. <www.sciencedaily.com/releases/2016/05/160524123443.htm>.

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