Total Pageviews

Showing posts with label Pangaea. Show all posts
Showing posts with label Pangaea. Show all posts

Wednesday, December 14, 2016

Thinner Crust: Not Just for Pizza Anymore -- Oceanic Crust has Thinned Since Pangaea Jurassic Time

      Oceanic crust created by the earth today is significantly thinner than crust made 170 million years ago during the time of supercontinent Pangaea, according to U. of Texas, Austin, scientists. The Earth's crust under the oceans is up to 1 mile thinner today than it was during that Pangaean time.



      "The thinning is related to the cooling of earth's interior prompted by the splitting of Pangaea, which broke up into the continents that we have today," said Dr. Harm Van Avendonk, the lead author of the study. The research published in Nature Geosciences on December 12, 2016, illuminates how plate tectonics has influenced the cooling of the Earth's mantle throughout geologic history.




      "What we think is happening is that the supercontinent was like an insulating blanket," Van Avendonk said. "So when these continents started opening up and the deeper mantle was exposed, more or less, to the atmosphere and the ocean it started cooling much faster."






      The mantle is the very hot, but mostly solid, layer of rock between the Earth's crust and core. Magma from the mantle forms oceanic crust when it rises from the mantle to the surface at spreading centers and cools into the rock that forms the very bottom of the seafloor. 



     Since about 2.5 billion years ago, the mantle has been cooling, a phenomenon that does not influence the climate on the surface of the Earth and has nothing to do with the issue of short-term human-made climate change (which is a real phenomenon, DT!). This study suggests that since the breakup of Pangaea, the cooling rate of the mantle has increased from 6 - 11 degrees Celsius per 100 million years to 15 - 20 degrees per 100 million years. Since cooler mantle temperatures generally produce less magma, it is a trend that's making modern day ocean crust thinner. The illustration below of a slice of earth ties in well with the pizza analogy ;-).



      "It's important to note the Earth seems to be cooling a lot faster now than it has been over its lifetime," Dr. Van Avendonk said. "The current state of the Earth, where we have a lot of plate tectonic events, this allows the Earth to cool much more efficiently than it did in the past."






      The research that led to the connection between the splitting of the supercontinent and crust thickness started when Dr. Van Avendock and Ph.D. student Jennifer Harding, a co-author, noticed an unexpected trend when studying existing data from young and old seafloor. They analyzed 234 measurements of crustal thickness from around the world and found that, on a global scale, the oldest ocean crust examined, Jurassic in age, is 1 mile thicker, as noted above. The oldest oceanic crust (or sima, short for silica and magnesium, mainly basalt) is Jurassic in age due to the "recycling" nature of this denser crust versus less dense continental crust (or sial, short for silica and aluminum).




     The link between crust thickness and age prompted two possible explanations, both related to the fact that hotter mantle tends to make more magma. (1) Mantle hot spots, highly volcanic regions, such as the Hawaiian Islands and Iceland, could have thickened the old crust by covering it in layers of lava at a later time. Or, (2) the mantle was hotter in the Jurassic than it is now.


      The analysis ruled out the hot spot theory; thick layers of old crust formed just as easily at distances greater than 600 miles from hotspots, a distance that the researchers judged was outside the influence of the hotspots. In contrast, the analysis supported the hypothesis of mantle cooling after the breakup of the supercontinent.

      The discovery that breaking up Pangaea cooled the mantle is important because it gives a more nuanced view of the mantle temperature that influences tectonics on earth. The researchers also note that the study illustrates the success that can come from spontaneous collaboration and leveraging basic research on a global scale.

Coolly and Warmly,
Steph








Tuesday, July 1, 2014

Rudist Colonies: Fun, Wild Index Fossils

     Rudists are some of my favorite fossils, not just because it's a fun word to say, but because they are quite useful index fossils from the Jurassic and Cretaceous:







    Index fossils are the forms of life which existed during limited periods of geologic time and thus are used as guides to the age of the rocks in which they are preserved. John McPhee's analogy from Basin and Range  (1981) describes the concept well:

     "Imagine an E.L. Doctorow novel in which Alfred Tennyson, William Tweed, Abner Doubleday, Jim Bridger, and Martha Jane Canary sit down to a dinner prepared by Rutherford B. Hayes. ... a geologist could quickly decide -- as could anyone else -- that the dinner must have occurred in the middle 1870s, because Canary was 18 when the decade began, Tweed became extinct in 1878, and the biographies of the others do not argue with these limits."

    These marine bivalves were one of the main components of the widespread Tethys Sea between Laurasia and Gondwana about 200 million years ago as Pangaea was breaking up:






     Rudists were one of the main components  of the reefs that formed then:




      Rudists were widespread and had very different shapes making them excellent index fossils for fairly narrow time periods:



     The earlier forms were elongate, with both valves being similarly shaped, often pipe-shaped, while the later, reef-building Cretaceous forms had one valve that become a flat lid, with the other valve becoming an inverted spike-like cone. The size of these conical forms ranged widely from just a few centimeters to over a meter in length.



     Rudists' morphology consisted of a lower, roughly conical valve that was attached to the seafloor or to neighboring rudists, and a smaller upper valve that served as a kind of lid for the animal. The small upper valve could take a variety of different forms, including: a simple flat lid, a low cone, a spiral, and a star-shape.

     The earlier forms tended to be more solitary but the Cretaceous forms were generally more colonial. Rudist colony: they started it millions of years ago. The first naturists died off at the major Cretaceous-Paleogene extinction about 65 million years ago.

     Looking forward to your tales of nudist, er, rudist colonies. ;-)

Indexedly,

Steph
(Word Woman)

Holiday Hummer in the Colorado Mountains 7/3/14 (photo by C. Fiss)




     First clue (these are my photos) to location in the CO mts. See if you can win the geography quiz, at least a bit of a challenge this Sunday morning ;-):


Second clue:


More to come (if needed). Clue number three. Hint: It's very, very clear.