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Showing posts with label ice. Show all posts
Showing posts with label ice. Show all posts

Thursday, March 8, 2018

Ice-VII: Deep Ice, Tectonic Slabs, and Diamond Inclusions

      Ice is found deep within the hot interior of the earth. Let that statement sink in. In research published today, a form of super-compact ice, found embedded in diamonds, offers the first direct clue that there is abundant water more than 610 kilometers deep in the mantle.




      This ice, identified by its crystal structure and called ice-VII, doesn’t exist at Earth’s surface. It forms only at pressures greater than about 24 gigapascals — corresponding to depths between 610 and 800 kilometers, researchers report today in Science. The structure of ice-VII comprises a hydrogen bond framework in the form of two interpenetrating (but non-bonded) sublattices. Hydrogen bonds pass through the center of the water hexamers (as shown above, and, to some degree below) and thus do not connect the two lattices. 


  

      Ice-VII's presence in diamonds suggests that there is water-rich fluid in the transition zone between the upper and lower mantle, and even into the top of the lower mantle.





     “This is really the first time that we see water at such depths,” says Dr. Oded Navon, a mantle petrologist at the Hebrew University of Jerusalem.

      When slabs of earth’s crust sink into the mantle layer below, they drag ocean water with them. How deep the slabs sink has been a long-standing question. Researchers have suspected that abundant aqueous fluid exists in the deep mantle, carried there by slabs bearing water-rich minerals that shed their water when they reach the transition zone. But scientists have not previously found direct evidence of that water.




     That is where diamonds come in. Diamonds form at high temperatures and pressures, crystallizing in pockets rich in the mineral carbonate before being carried to the surface with erupting magma. As the diamond crystals form, they can enclose tiny amounts of fluid or rock from their surroundings. These impurities represent tiny capsules of mantle. Diamond inclusions are the only direct window scientists have into the fabric of earth more than a kilometer beneath the surface.





     Dr. Oliver Tschauner, a mineralogist at the University of Nevada, Las Vegas, and his colleagues set out to study diamond inclusions, but they weren’t looking for ice. They were hunting for signs of a molecular form of carbon dioxide that might help reveal clues to the cycling of carbon from slabs into the mantle. The researchers used a variety of techniques, including X-ray diffraction, infrared spectroscopy and X-ray fluorescence, to try to identify the composition of the inclusions within three diamonds, one from China and two from southern Africa.




      Instead of carbon dioxide, the team saw a telltale pattern in how some of the X-rays scattered as they passed through the diamond. That pattern pointed to ice-VII. The presence of that extremely high-pressure form of ice was a powerful clue to the depth at which the diamond must have formed. The diamonds also contained separate inclusions of fluids rich in certain salts, such as magnesium calcite and halite, and of carbon-rich fluids. 




     Water-rich fluids deep in the mantle could be important for driving the circulation that fuels the movements of tectonic plates and the eruptions of volcanoes. The presence of water can make it easier for rocks to melt, Dr.  Navon says, by lowering the melting point of hot rock under pressure. Additionally, fluids can help redistribute heat within the mantle.




     In addition, some large, heat-producing radioactive elements such as potassium, thorium and uranium don’t fit easily into the rigid crystalline structures of minerals, so scientists prefer melted rock when it’s available. “You just need a little bit of fluid, and they are moving into the melt,” Dr. Navon adds.




     The study also raised another mystery. Fluid inclusions within diamonds originating at shallower depths, perhaps 150 to 200 kilometers below the surface, contain a mélange of water, salt, and carbonates. But Dr. Tschauner and his colleagues found that in their deep diamonds, the inclusions are sequestered individually: ice in one inclusion, carbonates in another, salts in yet a third. “We were surprised that they were all separate rather than occurring together,” Dr. Tschauner said.  




Any ideas about this mysterious separation in the materials in inclusions? 

And, how cool to have remnants of tectonic slabs as inclusions in your jewelry!
Steph

Monday, November 6, 2017

Even Mammoth Males Took More Risk!

     You may know why/how I came up with this week's Partial Ellipsis of the Sun topic.





      "Male mammoths really had to watch their steps. More than two-thirds of woolly mammoth specimens recovered from several types of natural traps in Siberia came from males, researchers report November 2, 2017, in Current Biology."





      "Paleogenomicist Patrícia Pečnerová of the Swedish Museum of Natural History in Stockholm and her colleagues examined genomic data recovered from 98 mammoth bone, tooth, tusk and hair shaft specimens and found that 69 percent of their owners were male." 





      "Sex biases in fossil preservation are rare, and the sexes were almost certainly balanced at birth. So the researchers considered whether social and behavioral patterns might have meant that male mammoths more often died in such a way that their remains were buried and preserved, such as becoming trapped in a bog or falling through thin ice."





     "In modern elephants, herds of females and young live together, led by an experienced female, whereas males are more likely to live in bachelor groups or alone. That could result in more risk-taking behavior for those males." 




       "Woolly mammoths, the distant cousins of modern elephants, may have had the same social structures, the researchers suggest."




     "The study, the authors say, highlights how fossil genomic data can help illuminate the past social structures and behavior of extinct animals — and how existing fossils may not fully represent the original population. . ."





      And that risky behavior in males, be they mammoths or human beings, happens. . .






Woolly, Boolly, Woolly, Boolly,

Steph

Tuesday, February 10, 2015

Calving: Ice or Cow. . .And Is There A Connection?

          For this week's PEOTS, how about choosing between ice calving








      or cow (or moose or seal or whale) calving?




      Hmmmm. Let's go with ice calving. Check out this largest filmed ice calving event at the Ilulissat Glacier in Greenland. 

      Ice calving, also known as glacier calving or iceberg calving, is the breaking off of chunks of ice at the edge of a glacier, iceberg, ice shelf, or crevasse. The ice that breaks away is classified as an iceberg, but may also be called a growler or bergy bit.




     Growlers are smaller pieces of ice, generally rising less than a meter above water level, that make a growling animal sound as they move in the ocean. Bergy bits are mini icebergs that rise up to 4-5 meters above the water level. 

        


         Ice calving has gotten lots of attention lately as a result of global warming (See the 2014 documentary Ice Chasing).

        And perhaps watch it with this kind of beer growler:



       Do you suppose there's any connection between the sound of cows birthing and the sound of ice calving (the latter term first originated in Denmark in 1837), growlers and all?




Enjoy that ice calving blue; looking forward to your insights,


Steph