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Japan scientists detect rare, deep-Earth tremor
by Staff Writers
Miami (AFP) Aug 25, 2016


Seismometers detect 'weather bomb' on other side of the Earth
Tokyo (UPI) Aug 26, 2016 - In a new study, scientists report a series of tremors picked up by seismometers in Japan were produced by a "weather bomb" on the other side of the globe, just off the coast of Greenland.

The researchers didn't detect an earthquake, only an amplification of the background noise that constantly hums across the planet's interior -- vibrations caused by tidal forces, ocean waves, deep-lying earthquakes and other disturbances.

As a storm system stalled over the North Atlantic, atmospheric pressure rapidly dropped. The so-called weather bomb caused pressure waves to reverberate back and forth between the ocean surface and ocean floor. The vibrations were absorbed by the seabed and bedrock and were felt on the other side of the planet in Japan.

Scientists have previously recorded seismic waves produced by large ocean storms, but seismometers have mostly detected P-waves, fast-moving compression waves. Japan's seismometers picked up P-waves and S-waves, also called transverse or elastic waves -- a rarity.

S-waves shear, featuring side-to-side vibrations perpendicular to the direction in which they travel. They're called secondary waves because they move through rock more slowly and arrive after P-waves.

The latest findings, detailed in the journal Science, offer hope that closer monitoring of seismic waves created by future storms might offer insights into the nature of Earth's interior structures.

"Having both P-waves and S-waves gives more information," Peter Gerstoft, a seismologist at the University of California, San Diego, told New Scientist. "Because S-waves have shorter wavelengths than P-waves, smaller-scale vertical and lateral variations in Earth's structure can potentially be imaged."

Scientists who study earthquakes in Japan said Thursday they have detected a rare deep-Earth tremor for the first time and traced its location to a distant and powerful storm.

The findings, published in the US journal Science, could help experts learn more about the Earth's inner structure and improve detection of earthquakes and oceanic storms.

The storm in the North Atlantic was known as a "weather bomb," a small but potent storm that gains punch as pressure quickly mounts.

Groups of waves sloshed and pounded the ocean floor during the storm, which struck between Greenland and Iceland.

Using seismic equipment on land and on the seafloor that usually detects the Earth's crust crumbling during earthquakes, researchers found something they had not detected before -- a tremor known as an S wave microseism.

Microseisms are very faint tremors.

Another kind of tremor, known as P waves, or primary wave microseisms, can be detected during major hurricanes.

P waves are fast-moving, and animals can often sense them just before an earthquake hits.

The elusive S waves, or secondary waves, are slower, and move only through rock, not liquid. Humans feel them during earthquakes.

Using more than 200 stations operated by the National Research Institute for Earth Science and Disaster Prevention in Japan's Chugoku district, researchers Kiwamu Nishida and Ryota Takagi "successfully detected not only P wave microseisms triggered by a severe and distant North Atlantic storm, known as a weather bomb, but also S wave microseisms, too," said the study.

"The discovery marks the first time scientists have observed... an S wave microseism."

Microseism S waves are so faint that they occur in the 0.05 to 0.5 Hz frequency range.

The study in the journal Science details how researchers traced the direction and distance to the waves' origins, and the paths they traveled.

The discovery "gives seismologists a new tool with which to study Earth's deeper structure," said Peter Gerstoft and Peter Bromirski of the University of California, San Diego in an accompanying Perspective article.

Learning more about microseismic S waves may "add to our understanding of the deeper crust and upper mantle structure."


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