Showing posts with label Gas Cloud. Show all posts
Showing posts with label Gas Cloud. Show all posts

Tuesday, November 4, 2014

Astronomers solve puzzle about bizarre object at the center of our galaxy

Telescopes from Hawaii's W.M. Keck Observatory use a powerful technology called adaptive optics, which enabled UCLA astronomers to discover that G2 is a pair of binary stars that merged together, cloaked in gas and dust. 

Credit: Ethan Tweedie

For years, astronomers have been puzzled by a bizarre object in the center of the Milky Way that was believed to be a hydrogen gas cloud headed toward our galaxy's enormous black hole.

Having studied it during its closest approach to the black hole this summer, UCLA astronomers believe that they have solved the riddle of the object widely known as G2.

A team led by Andrea Ghez, professor of physics and astronomy in the UCLA College, determined that G2 is most likely a pair of binary stars that had been orbiting the black hole in tandem and merged together into an extremely large star, cloaked in gas and dust, its movements choreographed by the black hole's powerful gravitational field.

The research is published today in the journal Astrophysical Journal Letters.

Astronomers had figured that if G2 had been a hydrogen cloud, it could have been torn apart by the black hole, and that the resulting celestial fireworks would have dramatically changed the state of the black hole.

"G2 survived and continued happily on its orbit; a simple gas cloud would not have done that," said Ghez, who holds the Lauren B. Leichtman and Arthur E. Levine Chair in Astrophysics. "G2 was basically unaffected by the black hole. There were no fireworks."

Black holes, which form out of the collapse of matter, have such high density that nothing can escape their gravitational pull, not even light.

They cannot be seen directly, but their influence on nearby stars is visible and provides a signature, said Ghez, a 2008 MacArthur Fellow.

Ghez, who studies thousands of stars in the neighborhood of the supermassive black hole, said G2 appears to be just one of an emerging class of stars near the black hole that are created because the black hole's powerful gravity drives binary stars to merge into one.

She also noted that, in our galaxy, massive stars primarily come in pairs. She says the star suffered an abrasion to its outer layer but otherwise will be fine.

Ghez and her colleagues, who include lead author Gunther Witzel, a UCLA postdoctoral scholar, and Mark Morris and Eric Becklin, both UCLA professors of physics and astronomy, conducted the research at Hawaii's W.M. Keck Observatory, which houses the world's two largest optical and infrared telescopes.

When two stars near the black hole merge into one, the star expands for more than 1 million years before it settles back down, said Ghez, who directs the UCLA Galactic Center Group. "This may be happening more than we thought.

The stars at the center of the galaxy are massive and mostly binaries. It's possible that many of the stars we've been watching and not understanding may be the end product of mergers that are calm now."

Ghez and her colleagues also determined that G2 appears to be in that inflated stage now. The body has fascinated many astronomers in recent years, particularly during the year leading up to its approach to the black hole.

"It was one of the most watched events in astronomy in my career," Ghez said.

Ghez said G2 now is undergoing what she calls a "spaghetti-fication", a common phenomenon near black holes in which large objects become elongated.

At the same time, the gas at G2's surface is being heated by stars around it, creating an enormous cloud of gas and dust that has shrouded most of the massive star.

Witzel said the researchers wouldn't have been able to arrive at their conclusions without the Keck's advanced technology.

"It is a result that in its precision was possible only with these incredible tools, the Keck Observatory's 10-meter telescopes," Witzel said.

The telescopes use adaptive optics, a powerful technology pioneered in part by Ghez that corrects the distorting effects of the Earth's atmosphere in real time to more clearly reveal the space around the supermassive black hole.

The technique has helped Ghez and her colleagues elucidate many previously unexplained facets of the environments surrounding supermassive black holes.

"We are seeing phenomena about black holes that you can't watch anywhere else in the universe," Ghez added.

"We are starting to understand the physics of black holes in a way that has never been possible before."

More information: Astrophysical Journal Letters, iopscience.iop.org/2041-8205/796/1/L8/article

Wednesday, September 3, 2014

ESO Image: Lupus 4 - Cosmic Spider Swallows Starlight



A dark, spider-shaped cloud of cosmic gas blocks out light from stars in a new image taken by a telescope in the Southern Hemisphere.

The amazing photo, taken by a telescope at the European Southern Observatory's La Silla Observatory in Chile, is filled with stars glowing brightly in a variety of colours.

Red, blue, yellow and orange stars frame the gas blob called Lupus 4, which blots out light from other, more distant stars in the center of the image. Fly through the image in a new video of the Lupus 4 space cloud from ESO.

Eventually, Lupus 4, which is located about 400 light-years from Earth, could give birth to its own stars.

A dark cloud of gas called Lupus 4 blocks out more-distant stars. Photo released Sept. 3, 2014.

Credit: ESO

"How many stars might eventually start to shine within Lupus 4? It is hard to say, as mass estimates for Lupus 4 vary," ESO representatives said in a statement today (Sept. 3).

"Two studies agree on a figure of around 250 times the mass of the sun, though another, using a different method, arrives at a figure of around 1,600 solar masses."

"Either way, the cloud contains ample material to give rise to plenty of bright new stars."

"Rather as earthly clouds make way for sunshine, so, too, shall this cosmic dark cloud eventually dissipate and give way to brilliant starlight."

Another gas cloud in the same area, called Lupus 3, already hosts about 40 young stars that formed over the course of the last 3 million years, ESO said.

The spidery cloud is part of a loose star cluster named the Scorpius-Centaurus OB association, which is a young, widely dispersed star grouping, according to ESO.

The stars in the cluster also likely come from the same huge cloud of cosmic material, representatives from the astronomy organization added.

Wednesday, July 17, 2013

Milky Way Centre: Black Hole Consumes Gas Cloud - Video



25,000 light years from Earth, at the center of our Milky Way Galaxy, a super-massive black hole has so distorted space-time that a cloud of gas, ripped from nearby stars, has stretched and accelerated to more than 1% the speed of light. 

Credit: European Southern Observatory

Monday, June 3, 2013

Gas cloud reveals Black Holes near centre of Milky Way galaxy

Colour composite image of Centaurus A, revealing the lobes and jets emanating from the active galaxy’s central black hole. 

Composite images: ESO/WFI (Optical); MPIfR/ESO/APEX/A.Weiss et al. (Submillimetre); NASA/CXC/CfA/R.Kraft et al. (X-ray)

A team of researchers from Columbia University has published a paper in Physical Review Letters in which they suggest that the movement of gas cloud G2 near the center of our galaxy may reveal previously hidden small black holes.

They note also that observation of G2's movement might lead to direct evidence of the existence of intermediate size black holes.

G2, a massive cloud of gasses three times the size of Pluto's orbit (but just 3 times the mass of Earth) was discovered moving through our galaxy two years ago by researchers at the Max Planck Institute.

After noting its projected path, the researchers at Columbia have found that it will likely pass through a region of space that is thought to harbor as many as 20,000 small black holes (a single massive black hole is believed to exist at the center of our galaxy.)

They suggest that researchers here on Earth might be able to actually see the interaction between the gas cloud and any black holes that are encountered.

As the gas cloud comes near a black hole, they believe some of the gas will begin to spiral as it's pulled in by its gravity.

That, they say, should cause a lot of heat to be expelled and x-ray light to be emitted—enough to be observable using x-ray telescopes.

They go so far as to estimate that researchers might be able to see evidence of as many as 16 interactions.

More exciting to some in the field, is the possibility that the movement of G2 through our galaxy may give direct evidence of what are known as intermediate sized black holes—believed by some to be several times the mass of our sun.

To date, their existence is purely theoretical. If G2 comes across one, and interacts with it, the event could prove that they really do exist.

They, like the many small black holes in the universe, are believed to reside near the center of the galaxy, which is where G2 is heading.

The researchers estimate it will reach the best position for study this September, giving researchers plenty of time to prepare.

One unknown attribute of G2 could throw a wrench into the project however—the density of the gas cloud is not yet known.

If it's not dense enough, any interactions with a black hole may not create enough light to be seen from Earth.

More information: Gas Cloud G2 Can Illuminate the Black Hole Population Near the Galactic Center, Phys. Rev. Lett. 110, 221102 (2013) prl.aps.org/abstract/PRL/v110/i22/e221102

Abstract
Galactic nuclei are expected to be densely populated with stellar- and intermediate-mass black holes.

Exploring this population will have important consequences for the observation prospects of gravitational waves as well as understanding galactic evolution.

The gas cloud G2 currently approaching Sgr A* provides an unprecedented opportunity to probe the black hole and neutron star population of the Galactic nucleus.

We examine the possibility of a G2-cloud–black-hole encounter and its detectability with current x-ray satellites, such as Chandra and NuSTAR.

We find that multiple encounters are likely to occur close to the pericenter, which may be detectable upon favorable circumstances.

This opportunity provides an additional important science case for leading x-ray observatories to closely follow G2 on its way to the nucleus.

Tuesday, January 15, 2013

Mystery of Star Formation in Gas Cloud at Heart of Milky Way



Astronomers have finally solved a longstanding cosmic mystery — why a super-dense gas cloud near our Milky Way galaxy's core isn't churning out many new stars.

The gas cloud, known as G0.253+0.016, is simply swirling too fast, researchers said.

It lacks the requisite pockets of even denser material, which eventually collapse under their own gravity to form stars.

The results suggest that star formation is more complex than astronomers had thought and may help them better understand the process, researchers said.



In this image, taken by NASA's Spitzer Space Telescope, the mysterious gas cloud G0.253+0.016 is the black object on the left. The Milky Way's center is the bright spot at right.

CREDIT: NASA/Spitzer/Benjamin et al., Churchwell