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Title: Einstein proof: Nobel winners find ripples in the universe
Source: Associated Press
URL Source: http://enews.earthlink.net/article/ ... e2-1303-478f-99ad-077f3d7875cd
Published: Oct 3, 2017
Author: SETH BORENSTEIN and JIM HEINTZ
Post Date: 2017-10-03 18:30:23 by Ada
Keywords: None
Views: 1127
Comments: 7

Barish and Thorne won the Nobel Physics Prize on Tuesday for detecting faint ripples flying through the universe, the gravitational waves predicted a century ago by Albert Einstein that provide a new understanding of the universe.

WASHINGTON (AP) — For decades astronomers tried to prove Albert Einstein right by doing what Einstein thought was impossible: detecting the faint ripples in the universe called gravitational waves. They failed repeatedly until two years ago when they finally spotted one. Then another. And another. And another.

Three American scientists — including one who initially flunked out of MIT — won the Nobel Prize in physics Tuesday that launched a whole new way to observe the cosmos. Sweden's Royal Academy of Sciences cited the combination of highly advanced theory and ingenious equipment design in awarding Rainer Weiss of the Massachusetts Institute of Technology and Barry Barish and Kip Thorne of the California Institute of Technology.

"It's a win for the human race as a whole. These gravitational waves will be powerful ways for the human race to explore the universe," Thorne told The Associated Press in a phone interview.

The trio were part of a team of more than 1,000 astronomers who first observed gravitational waves in September 2015. When the discovery was announced several months later, it was a sensation not only among scientists but the general public. These are waves that go through everything — including us — but carry information on them that astronomers could not get otherwise.

"The best comparison is when Galileo discovered the telescope, which allowed us to see that Jupiter had moons. And all of a sudden, we discovered that the universe was much vaster than we used to think about," Ariel Goobar of the Swedish academy said.

Weiss said he hopes that eventually gravitational waves will help science learn about "the very moment when the universe came out of nothingness."

Gravitational waves were first theorized a century ago by Einstein, but he didn't think technology would ever be able to detect the tiny wobbles, smaller than a piece of an atom.

The waves are like "a storm in the fabric of space-time that is produced when two black holes collide," Thorne said. The first detection came from a crash 1.3 billion light-years away. A light-year is about 5.88 trillion miles.

The prize is "a win for Einstein, and a very big one," Barish told the AP.

The waves are detected by a laser device, called an interferometer, which must be both exquisitely precise and extremely stable in a project that cost $1.1 billion dollars. The first observation involved two of the devices about 1,900 miles (3,000 kilometers) apart — in Hanford, Washington, and Livingston, Louisiana. They came about 7 milliseconds apart, consistent with the speed of light.

A new detector in Italy went online and helped in the discovery of the fourth wave.

With the technology that the three developed "we may even see entirely new objects that we haven't even imagined yet," said Patrick Sutton, an astronomer at Cardiff University in Wales.

The German-born Weiss, 85, who initially spearheaded the research effort, was awarded half of the 9-million-kronor ($1.1 million) prize amount. Thorne, 77, a theorist, and Barish, 81, who was a project director, will split the other half.

For decades, the scientists pushed for money to start the massive LIGO project, getting their first National Science Foundation grant in 1992. The first version of the detector went through six long runs looking for gravitational waves, but didn't find them because it wasn't technologically precise enough, Barish said.

And computer programs needed to solve Einstein's equations weren't quite right and "the quest was foundering," said Thorne, who peeled away from the detector work to form another collaboration to get better computing for detection.

Two decades after construction "we finally struck gold," Barish said.

Weiss also overcame failure. After flunking out of MIT, he didn't have anything to do so he offered himself as an electronics technician to a lab at MIT and learned how to solder and deal with people. He returned to school, got his bachelor's and doctorate at MIT and ended up as a professor there.

"There was a person who thought I was OK. I wasn't a complete dope," Weiss said. "I got some confidence out of that."

In a moment of poetry aimed at making the distant and infinitesimal phenomenon understandable to non-experts, the academy announcement said gravitational waves "are always created when a mass accelerates, like when an ice-skater pirouettes or a pair of black holes rotate around each other."

Professor Alberto Vecchio, from the University of Birmingham's Institute of Gravitational Wave Astronomy, said this discovery will produce results for decades to come.

"They have taken me, as well as hundreds of my colleagues, through such an intellectually rewarding and recently adrenaline-packed journey that we could not have even remotely imagined," he said. "The best part is that this is just the beginning of a new roller-coaster exploration of the universe."

For the past 25 years, the Nobel physics prize has been shared among multiple winners.

Last year's prize went to three British-born researchers who applied the mathematical discipline of topology to help understand the workings of exotic matter such as superconductors and superfluids.

The 2017 Nobel prizes kicked off Monday with the medicine prize being awarded to three Americans studying circadian rhythms — better known as body clocks: Jeffrey C. Hall, Michael Rosbash and Michael W. Young.

The chemistry prize will be announced Wednesday, the Nobel literature prize on Thursday and the peace prize on Friday. The economics prize, which is not technically a Nobel, will be awarded on Monday.

___

Heintz reported from Stockholm. David Keyton in Stockholm, Christopher Weber in Pasadena, California, Rodrigue Ngowi in Newtonville, Massachusetts, Collin Binkley in Boston, Massachusetts, Bob Lentz in Philadelphia, Michelle Monroe in Phoenix and Malcolm Ritter in New York contributed to this story.

___

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#1. To: Ada (#0)

The waves are like "a storm in the fabric of space-time that is produced when two black holes collide," Thorne said.

VERY cool! The only way it could be cooler would be if I had even the faintest clue about what the HELL that means.

++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ In the entire history of the world,the only nations that had to build walls to keep their own citizens from leaving were those with leftist governments.

sneakypete  posted on  2017-10-03   19:29:22 ET  Reply   Trace   Private Reply  


#2. To: Ada (#0)

Einstein was wrong. According to my observations, gravity is only a primary force inside a planet's atmosphere. Once you leave that atmosphere, electro-magnetism takes over. Our connection to the sun is magnetic more than gravitational. Imo.

Obnoxicated  posted on  2017-10-03   21:15:58 ET  Reply   Trace   Private Reply  


#3. To: sneakypete (#1)

It's describing gravity waves, which are analogous to waves on a pond.

Imagine a completely still pond. Then put a drop of oil on the water so it forms a circle. Then throw a rock into the center of the pond. The splash sends waves to the shore.

The drop of oil is, say, you. It's perfectly round, but when the waves reach the circle of oil, it stretches and squishes it momentarily, and then things return to normal, and it's a circle again.

Gravity waves are waves that travel through space in much the same way, except it's a 3D medium, not a simple 2D medium as with the pond. When the gravity waves reach you, you get stretched and squished too because you are to space what the oil is to water. But the amount of stretching and squishing is minuscule with gravity waves, being comparable to the width of an atom.

If you are looking for an explanation that is somewhat higher than this 3rd grade explanation, I'm not your man.

Pinguinite  posted on  2017-10-03   23:52:04 ET  Reply   Trace   Private Reply  


#4. To: Obnoxicated (#2)

Our connection to the sun is magnetic more than gravitational. Imo.

Would that not mean that ferrous material would be more subject to the Sun's influence than non-ferrous material?

Pinguinite  posted on  2017-10-03   23:53:46 ET  Reply   Trace   Private Reply  


#5. To: sneakypete (#1)

VERY cool! The only way it could be cooler would be if I had even the faintest clue about what the HELL that means.

Don't bother. Most likely its more made up shit.

Ada  posted on  2017-10-04   10:08:37 ET  Reply   Trace   Private Reply  


#6. To: Pinguinite (#3)

If you are looking for an explanation that is somewhat higher than this 3rd grade explanation,

3rd grade is fine,thank you.

Still not sure I understand the importance,though.

++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ In the entire history of the world,the only nations that had to build walls to keep their own citizens from leaving were those with leftist governments.

sneakypete  posted on  2017-10-04   22:46:52 ET  Reply   Trace   Private Reply  


#7. To: sneakypete (#6)

Still not sure I understand the importance,though.

From the article, it seems scientists are eyeing a way to detect gravity waves that are far weaker than the ones they've detected so far that are generated by 2 black holes colliding, which, thankfully, is a very rare event. If they could do that, then they could, I suppose, build a type of telescope that would watch for these much weaker but far more plentiful gravity waves. If that's the goal then such a telescope would be a brand new way to look at the universe, revealing things that ordinary telescopes cannot see.

Pinguinite  posted on  2017-10-05   1:05:38 ET  Reply   Trace   Private Reply  


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