Showing posts with label General relativity. Show all posts
Showing posts with label General relativity. Show all posts

Wednesday, November 25, 2015

2096. A Century Ago, How Einstein’s Theory of Relativity Changed Everything

By Dennis Overbye, The New York Times, November 24, 2015


PRINCETON, N.J. — By the fall of 1915, Albert Einstein was a bit grumpy.

And why not? Cheered on, to his disgust, by most of his Berlin colleagues, Germany had started a ruinous world war. He had split up with his wife, and she had decamped to Switzerland with his sons.

He was living alone. A friend, Janos Plesch, once said, “He sleeps until he is awakened; he stays awake until he is told to go to bed; he will go hungry until he is given something to eat; and then he eats until he is stopped.”

Worse, he had discovered a fatal flaw in his new theory of gravity, propounded with great fanfare only a couple of years before. And now he no longer had the field to himself. The German mathematician David Hilbert was breathing down his neck.

So Einstein went back to the blackboard. And on Nov. 25, 1915, he set down the equation that rules the universe. As compact and mysterious as a Viking rune, it describes space-time as a kind of sagging mattress where matter and energy, like a heavy sleeper, distort the geometry of the cosmos to produce the effect we call gravity, obliging light beams as well as marbles and falling apples to follow curved paths through space.

This is the general theory of relativity. It’s a standard trope in science writing to say that some theory or experiment transformed our understanding of space and time. General relativity really did.

Since the dawn of the scientific revolution and the days of Isaac Newton, the discoverer of gravity, scientists and philosophers had thought of space-time as a kind of stage on which we actors, matter and energy, strode and strutted.

With general relativity, the stage itself sprang into action. Space-time could curve, fold, wrap itself up around a dead star and disappear into a black hole. It could jiggle like Santa Claus’s belly, radiating waves of gravitational compression, or whirl like dough in a Mixmaster. It could even rip or tear. It could stretch and grow, or it could collapse into a speck of infinite density at the end or beginning of time.

Scientists have been lighting birthday candles for general relativity all year, including here at the Institute for Advanced Study, where Einstein spent the last 22 years of his life, and where they gathered in November to review a century of gravity and to attend performances by Brian Greene, the Columbia University physicist and World Science Festival impresario, and the violinist Joshua Bell. Even nature, it seems, has been doing its bit. Last spring, astronomers said they had discovered an “Einstein cross,” in which the gravity of a distant cluster of galaxies had split the light from a supernova beyond them into separate beams in which telescopes could watch the star exploding again and again, in a cosmic version of the movie “Groundhog Day.”

Hardly anybody would be more surprised by all this than Einstein himself. The space-time he conjured turned out to be far more frisky than he had bargained for back in 1907.

It was then — perhaps tilting too far back in his chair at the patent office in Bern, Switzerland — that he had the revelation that a falling body would feel weightless. That insight led him to try to extend his new relativity theory from slip-siding trains to the universe.

According to that foundational theory, now known as special relativity, the laws of physics don’t care how fast you are going — the laws of physics and the speed of light are the same. Einstein figured that the laws of physics should look the same no matter how you were moving — falling, spinning, tumbling or being pressed into the seat of an accelerating car.

One consequence, Einstein quickly realized, was that even light beams would bend downward and time would slow in a gravitational field. Gravity was not a force transmitted across space-time like magnetism; it was the geometry of that space-time itself that kept the planets in their orbits and apples falling.

It would take him another eight difficult years to figure out just how this elastic space-time would work, during which he went from Bern to Prague to Zurich and then to a prestigious post in Berlin.

In 1913, he and his old classmate Marcel Grossmann published with great fanfare an outline of a gravity theory that was less relative than they had hoped. But it did predict light bending, and Erwin Freundlich, an astronomer at the Berlin Observatory, set off to measure the deflection of starlight during a solar eclipse in the Crimea.

When World War I started, Freundlich and others on his expedition were arrested as spies. Then Einstein discovered a flaw in his calculations.

“There are two ways that a theoretician goes astray,” he wrote to the physicist Hendrik Lorentz. “1) The devil leads him around by the nose with a false hypothesis (for this he deserves pity) 2) His arguments are erroneous and ridiculous (for this he deserves a beating).”

And so the stage was set for a series of lectures to the Prussian Academy that would constitute the final countdown on his quest to grasp gravity.

A Breakthrough Moment
Midway through the month, he used the emerging theory to calculate a puzzling anomaly in the motion of Mercury; its egg-shaped orbit changes by 43 seconds of arc per century. The answer was spot on, and Einstein had heart palpitations.

The equation that Einstein wrote out a week later was identical to one that he had written in his notebook two years before but had abandoned.

On one side of the equal sign was the distribution of matter and energy in space. On the other side was the geometry of the space, the so-called metric, which was a prescription for how to compute the distance between two points.

As the Princeton physicist John Wheeler later described it, “Space-time tells matter how to move; matter tells space-time how to curve.” Easy to say, but hard to compute. The stars might be actors on a stage set, but every time they moved, the whole stage rearranged itself.

It wasn’t long before Einstein received his first comeuppance.

In December 1915, he received a telegram from Karl Schwarzschild, a German astrophysicist serving at the front in the war, who had solved Einstein’s equation to describe the gravitational field around a solitary star.

One strange feature of his work was that at a certain distance from the star — to be known forever as the Schwarzschild radius — the equations would go kerblooey.
“If this result were real, it would be a true disaster,” Einstein said. This was the beginning of black holes.

That Einstein’s equations could be solved at all for a single star baffled him. One of his guiding lights had been the Austrian physicist and philosopher Ernst Mach, who taught that everything in the universe was relative. Einstein took Mach’s Principle, as he called it, to mean that it should be impossible to solve his equations for the case of a solitary object.

“One can express it as a joke,” he told Schwarzschild. “If all things were to disappear from the world, then according to Newton Galilean inertial space remains. According to my conception, however, nothing is left.”

And yet here was a star, according to his equations, bending space all by itself, a little universe in a nutshell.

Designing a Universe
Like most of his colleagues at the time, Einstein considered the universe to consist of a cloud of stars, the Milky Way, surrounded by vast space. What was beyond? Was the universe infinite? And if so, what stopped a star from drifting so far that it would have nothing to relate to?

To avoid such problems, Einstein set out in 1917 to design a universe without boundaries. In his model, space is bent around to meet itself, like the side of a tin can.

“I have committed another suggestion with respect to gravitation which exposes me to the danger of being confined to the nut house,” he confided to a friend.

This got rid of the need for troublesome boundaries. But this universe was unstable, and the cylinder would collapse if something didn’t hold its sides apart.

That something was a fudge factor added to the equations Einstein called the cosmological constant. Physically, this new term, denoted by the Greek letter lambda, represented a long-range repulsive force.

The happy result, Einstein thought, was a static universe of the type nearly everybody believed they lived in and in which geometry was strictly determined by matter.

But it didn’t last. Willem de Sitter, a Dutch astronomer, came up with his own solution describing a universe that had no matter at all and was flying apart.

“It would be unsatisfactory, in my opinion,” Einstein grumbled, “if a world without matter were possible.”


If the cosmological constant couldn’t keep the universe still, then forget about it and Mach’s Principle, Einstein said. “It dates back to the time in which one thought that the ‘ponderable bodies’ are the only physically real entities,” he later wrote to the British cosmologist Felix Pirani.

But it was too late. Quantum mechanics soon invested empty space with energy. In 1998 astronomers discovered that dark energy, acting just like the cosmological constant, seems to be blowing space-time apart, just as in de Sitter’s universe.

In fact, most cosmologists agree today that not quite all motion is relative and that space-time does have an existence independent of matter, though it is anything but static and absolute. The best example are gravitational waves, ripples of compression and stretching speeding through empty space at the speed of light.

Einstein was back and forth on this. In 1916, he told Schwarzschild they did not exist, then published a paper saying they did. In 1936, he and his assistant did the same flip-flop again.

Nobody said this was easy, even for Einstein.

He set out to do one thing, namely make all motion relative, Michel Janssen, a science historian at the University of Minnesota, told a Princeton gathering this month. He failed, but in the process succeeded in doing something very interesting, unifying the effects of acceleration and gravity.

The story goes to show, he said, that Bob Dylan was right when he sang “there’s no success like failure,” but wrong that “failure is no success at all.”

Einstein’s greatest success came in 1919, when Arthur Eddington did the experiment that Freundlich had set out to do, and ascertained that lights in the heavens were all askew during an eclipse, bent by the sun’s dark gravity, just as Einstein had predicted.
Asked what he would have done if general relativity had failed, Einstein said, “Then I would have been sorry for the dear Lord. The theory is correct.”

And still the champ.

Thursday, April 16, 2015

1812. Einstein's Universe Turns 100

By Marcel Gleiser, NPR, April 15, 2015


One hundred years ago, a 36-year-old Albert Einstein presented the complete formulation of the General Theory of Relativity to the Prussian Academy of Sciences. Across the world, events and conferences will be celebrating what is considered, without hyperbole, the most beautiful of physical theories, marrying mathematics with physical concepts in deeply meaningful and elegant ways. Some consider it the highest intellectual achievement in history.

Whatever your take, it is undeniable that Einstein's theory is a magnificent example of the power of the human imagination as it attempts to decipher nature's most hidden secrets: Welcome to the universe of curved spaces, black holes, the Big Bang, wormholes and even multiple universes.

First, why "general"? It distinguishes it from Einstein's "special" theory of relativity, proposed in 1905, which focused on motions with constant speeds. The special theory revolutionized our views of space, time and matter. Einstein showed that our perception of reality is myopic, distorted due to our sluggishness; could we perceive motions with speeds close to the speed of light (186,000 miles per second), we would see objects shrinking in the direction of their motion, clocks slowing down, and masses increasing with speed. These weird effects are all around us, but imperceptible for the speeds we are used to. (Consider this: If you blink your eye, light goes about 7 1/2 times around the Earth.) They are routinely observed in high-energy physics, where subatomic particles collide with speeds close to the speed of light. Even a GPS corrects for relativistic effects: The satellites that provide us the service move fast enough in their orbits to justify the small correction for improved accuracy. (They also use general relativistic effects due to Earth's curving of space around it.)

Einstein knew that the special theory was not the final word. After all, objects don't move at constant speeds in straight lines, but accelerate and turn corners. His general theory was designed to include all motions. To his surprise, and in a moment of spectacular intuition, Einstein realized that any theory that includes accelerated motion must also be a theory of gravity. Why? Because accelerated motion can mimic gravity and vice-versa. We know this from riding fast elevators. As you start going up you feel heavier. But how could that be? You didn't gain weight by stepping into the elevator! The accelerated motion upwards acts just as gravity, as if Earth had suddenly become more massive. Conversely, as the elevator goes down fast you feel lighter. If it simply fell down, you would float in mid-air, without any feeling of weight.

This weightlessness, by the way, is what astronauts feel when they are in orbit. It's not absence of gravity that makes them float; they are effectively falling down as they circle the Earth. The circular orbit is a product of Earth's gravity pulling them downwards and the tangential motion with constant speed that keeps them moving around.

Einstein struggled to get his theory right; the math was really hard. At the time, the Theory of Gravity was due to Isaac Newton, who figured that gravity could be described as a force that fell with the square of the distance. Newton assumed gravity was instantaneous and that it acted across space like a ghost. Although mysterious, the theory worked really well, for must purposes. Einstein proposed something completely different. Instead of an action at a distance, gravity was due to the curvature of space around an object: The more massive the object the more curved the space around it. It's like when you sit on a mattress: Close to you, the mattress gets deformed, and it will get more deformed the heavier you are. If you now picture space as the mattress (you need to add an extra dimension, as the surface of the mattress is two-dimensional and we live in three dimensions) you see what Einstein imagined.

Space became elastic, malleable; it responded to the distribution of matter in it. Conversely, an object travelling in a curved space would have its trajectory deviate from a straight line. As the physicist John Wheeler quipped, "Mass tells space how to bend and space tells matter how to move.”

Being a physicist, Einstein knew that his wild idea would only be taken seriously if he could provide real-world examples where the new effects could be verified. Testability, the core of the physical sciences! He proposed three tests of his new theory. One was a correction to the orbit of Mercury, which precessed mysteriously around the sun like a wobbling top. Newtonian theory couldn't get the numbers right, but Einstein, using the idea that Mercury felt the curvature of space around the sun, got it right. Another effect was the bending of starlight as it passed near the sun. In 1919, astronomers set off to the western coast of Africa and to the city of Sobral in Brazil to measure the deviation of the light from stars during a solar eclipse. (This way they could compare the two situations, with the sun nearby, and far from, the path of the starlight). The results were convincing enough to validate Einstein's theory. Newton's theory was an approximation valid for weak gravity. In the new theory of gravity, the shape of space and the flow of time respond to the distribution of mass in the universe.

Within weeks of the announcement of the eclipse measurements, Einstein became a superstar. On Nov. 7, 1919, Londoners woke up to dramatic headlines from the Times: "Revolution in Science. New Theory of the Universe. Newtonian Ideas Overthrown." Likewise, The New York Times reported three days later: "Lights All Askew in the Heavens; Men of Science More or Less Agog over Results of Eclipse Observations. Einstein Theory Triumphs. Stars Not Where They Seemed or Were Calculated to Be, but Nobody Need Worry." The "worry" here presumably refers to the fear that the stars would fall on our heads. Indeed, there is no need to worry about that. Time magazine would elect Einstein "Person of the Century."
Perhaps the greatest lesson from Einstein and his theories of relativity is that reality is not what it seems. What we perceive as real is a distortion, a cognitive fabrication due to how our brains take in the world around and within us. Science expands our vision of reality, revealing what often appears to be strange — and unforeseen connections and possibilities. As we continue our struggle to understand nature and its mysteries, it is good to remember Einstein's immortal words: "What I see in Nature is a magnificent structure that we can comprehend only very imperfectly, and that must fill a thinking person with a feeling of humility."

Marcelo Gleiser is a theoretical physicist and cosmologist — and professor of natural philosophy, physics and astronomy at Dartmouth College. He is the co-founder of 13.7, a prolific author of papers and essays, and active promoter of science to the general public. His latest book is The Island of Knowledge: The Limits of Science and the Search for Meaning. You can keep up with Marcelo on Facebook and Twitter: @mgleiser.