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Thursday, February 12, 2015

First pair of merging stars destined to become a supernova found

This artist’s impression shows the central part of the planetary nebula Henize 2-428. The core of this unique object consists of two white dwarf stars, each with a mass a little less than that of the Sun. They are expected to slowly draw closer to each other and merge in around 700 million years. This event will create a dazzling supernova of Type Ia and destroy both stars. Image credit: ESO/L. Calçada

Astronomers using ESO facilities in combination with telescopes in the Canary Islands have identified two surprisingly massive stars at the heart of the planetary nebula Henize 2-428. As they orbit each other the two stars are expected to slowly get closer and closer, and when they merge, about 700 million years from now, they will contain enough material to ignite a vast supernova explosion. The results appeared online in the journal Nature on 9th February 2015.

The team of astronomers, led by Miguel Santander-García (Observatorio Astronómico Nacional, Alcalá de Henares, Spain; Instituto de Ciencia de Materiales de Madrid (CSIC), Madrid, Spain), has discovered a close pair of white dwarf stars — tiny, extremely dense stellar remnants — that have a total mass of about 1.8 times that of the Sun. This is the most massive such pair yet found and when these two stars merge in the future they will create a runaway thermonuclear explosion leading to a Type Ia supernova.

This image of the unusual planetary nebula Henize 2-428 was obtained using ESO’s Very Large Telescope at the Paranal Observatory in Chile. Image credit: ESO
 
 
The team who found this massive pair actually set out to try to solve a different problem. They wanted to find out how some stars produce such strangely shaped and asymmetric nebulae late in their lives. One of the objects they studied was the unusual planetary nebula known as Henize 2-428.

“When we looked at this object’s central star with ESO’s Very Large Telescope, we found not just one but a pair of stars at the heart of this strangely lopsided glowing cloud,” says coauthor Henri Boffin from ESO.
This supports the theory that double central stars may explain the odd shapes of some of these nebulae, but an even more interesting result was to come.
“Further observations made with telescopes in the Canary Islands allowed us to determine the orbit of the two stars and deduce both the masses of the two stars and their separation. This was when the biggest surprise was revealed,” reports Romano Corradi, another of the study’s authors and researcher at the Instituto de Astrofísica de Canarias (Tenerife, IAC).
They found that each of the stars has a mass slightly less than that of the Sun and that they orbit each other every four hours. They are sufficiently close to one another that, according to the Einstein’s theory of general relativity, they will grow closer and closer, spiralling in due to the emission of gravitational waves, before eventually merging into a single star within the next 700 million years.
The resulting star will be so massive that nothing can then prevent it from collapsing in on itself and subsequently exploding as a supernova. “Until now, the formation of supernovae Type Ia by the merging of two white dwarfs was purely theoretical,” explains David Jones, coauthor of the article and ESO Fellow at the time the data were obtained. “The pair of stars in Henize 2-428 is the real thing!”
“It’s an extremely enigmatic system,” concludes Santander-García. “It will have important repercussions for the study of supernovae Type Ia, which are widely used to measure astronomical distances and were key to the discovery that the expansion of the Universe is accelerating due to dark energy”.

Saturday, August 2, 2014

Hubble Space Telescope still pushing the frontiers of astronomy


Nearly a quarter of a century after its 1990 launch, the Hubble Space Telescope is still pushing the frontiers of observational astronomy, thanks to the sensitivity of its instruments, the ultra precise way the observatory can be controlled and ingenious new techniques that are allowing astronomers to peer deeper into the cosmos than ever before.
"That's why the Hubble is still so exciting," said Matt Mountain, director of the Space Telescope Science Institute at Johns Hopkins University in Baltimore. "We're learning more and more about how to use it even better and better, whether it's looking for exoplanet atmospheres, measuring dark energy to a precision we never thought possible or using gravitational lenses to push Hubble to look even further back in time."
In recent observations, Hubble has been used to search for dim, difficult-to-detect minor planets beyond the orbit of Pluto, possible candidates for a flyby after theNew Horizons probe streaks past Pluto in 2015. Hubble has monitored Jupiter's Great Red Spot, which appears to be shrinking, and a comet -- Siding Spring -- that will make a close flyby of Mars in October.
But it's Hubble's ability to capture light from galaxies shining when the universe was a fraction of its present age that continues to intrigue scientists and the public alike, providing a glimpse into the depths of cosmic history.
To many astronomers, one of Hubble's most mind-boggling observations was a 1995 time exposure of an apparently empty region of space. The resulting "Hubble Deep Field" image, built up over 10 days, revealed thousands of previously unseen galaxies sprinkled like colored jewels on black velvet.
Similar images using newer, more sensitive instruments have revealed a universe populated by uncounted galaxies and fragments of galaxies that somehow began assembling shortly after the big bang birth of the cosmos 13.7 billion years ago.

Now, 20 years after the original Deep Field, Hubble is making another series of long-exposure photographs known as "Frontier Fields." But this time around,Hubble is using the titanic gravity of galaxies and dark matter in nearby clusters to magnify images of even more remote -- and thus younger -- galaxies in the far background.
The result, astronomers hope, will be a glimpse of the universe when it was only 400 million years old, the age when stars and galaxies first began shining as the infant universe expanded and cooled.
NASA's $8 billion James Webb Space Telescope, scheduled for launch in 2018, is optimized to directly image that early epoch in the infrared region of the spectrum, but Hubble's gravity-assist Frontier Fields may provide a tantalizing preview of what's to come.
"Gravity bends light, that was Einstein's discovery, general relativity, and that cluster of galaxies and dark matter can actually behave like a lens and actually magnify objects behind it in the very distant universe," Mountain said in an interview with CBS News. "That allows Hubble to see things even farther away than it could normally."
The resulting gravitationally magnified images are distorted and smeared into arcs "but if you understand the lens, you can recreate the actual shape back where you're going," Mountain said. "Because of our experience over the last few years, we've worked out how to calculate the prescription of the lens so when we see one of these objects we know now how far away it is and how bright it is, which we wouldn't have known before."
How far away is far? And how old is old?
"It's increasing Hubble's ability to go back in time, in very specific areas, back to about 400 million years after the big bang," Mountain said. "That's the incredible thing, that we've managed to calibrate the prescription of these gravitational lenses and now we can use them as tools. Four or five years ago, that wasn't possible."


Closer to home, both in time and space, the hunt for planets orbiting other stars is one of the hottest fields in astronomy, thanks in large part to NASA's Kepler space telescope, a 50-megapixel camera that has discovered thousands of exoplanet candidates.
Mountain said Hubble is using a new technique to study starlight passing through the atmosphere of a confirmed exoplanet as it moves in front of its parent star to measure at least some of its chemical constituents. The trick is being able to separate out the light passing through an atmosphere from the total output of the vastly brighter star.
Simply pointing Hubble at a nearby target star will not work because the starlight will saturate the camera's CCD detector, resulting in a blob-like image that cannot be studied with the required precision.
"The problem here is we have to look at very bright stars, and Hubble is very sensitive," Mountain said. "It basically smears the light over the whole camera. It's a bit like when you've got a digital camera and you look at a street lamp by accident at night and you get a streak across your camera. That's the problem Hubble has when it looks at bright stars.
"So the guys here came up with this really cunning idea. Because Hubble can point so accurately, we actually (move the telescope and) drift the star down the camera all the time so you're producing a very straight, linear streak, but it smears the light over the whole CDD and it doesn't saturate."
The resulting streaks can be precisely measured and subtle changes teased out of the data.
"They found a way to very accurately move the telescope while we took the exposure so the light got spread out in these columns and it didn't saturate the camera," Mountain said. "But because we collect all the light over the exposure, we sum up those streaks and we can see those very, very small differences and actually see for the very first time even fainter planets than we could see before."


So far, Hubble has been able to use the technique with a handful of Jupiter-class planets, but Mountain said he is confident researchers eventually will be able to look for signs of water vapor in Neptune-size worlds as observations improve.
Hunting for bigger game, Nobel Laureate Adam Riess, who earlier used Hubble to help confirm the existence of dark energy and its role in speeding up the expansion of the universe, figured out a way to use the streak-exposure technique to improve cosmic distance measurements by a factor of 10.
He came up with the idea while swimming laps in a Baltimore pool, Mountain said. "He thought, oh my God, I could use this technique to help me with my dark energy research."
To directly measure the distance to a star, it must be close enough to Earth that it shifts position when viewed from one side of Earth's orbit and the other. Hold a finger up at arm's length and look at it with one eye and then the other. The finger will change position slightly due to this parallax effect.
Because the 186-million-mile diameter of Earth's orbit is known, astronomers only need to measure the angular shift of a distant star to calculate how far away it must be. But given the scale of the galaxy, even a 186-million-mile baseline means exceedingly small angles. To directly measure the distance to the nearest star, for example, astronomers had to discern angles equivalent to the width of a dime two miles away.
That star, Alpha Centauri, is just 4 light years from Earth. The disk of the Milky Way spans 100,000 light years and millions to billions of light years separate galaxies.
To extend the distance ladder across the gulfs separating galaxies, astronomers use Cepheid variables, stars that pulsate in a predictable manner and have a known intrinsic brightness. By measuring the apparent brightness of a Cepheid in a distant galaxy, and comparing it to the brightness of a Cepheid a known distance from Earth, astronomers can indirectly calculate the distance to that galaxy.
The key is first directly measuring the parallax of a Cepheid in the Milky Way to calibrate the cosmic distance ladder.
Up to this point, direct measurements of stellar distances using parallax extended a few hundred light years. Using the streak-exposure technique, Riess and co-worker Stefano Casertano were able to directly measure the distance to a Cepheid variable star some 7,500 light years out.



"Inside our own galaxy, instead of just looking at very local objects, we can look very far out," Mountain said. "He has managed to change the measurement precision of the universe from 10 percent, he thinks, down to 2 to 3 percent. Why is that important? Well, it's all about dark energy."
A more accurate distance scale allows a more precise characterization of dark energy's effects on the universe at different times in its evolution, shedding light on how the cosmic expansion is changing and how that plays into the ultimate fate of the universe.
Other spacecraft now in development will probe that new frontier in great detail, but Hubble is helping fill in the blanks today by "using its stability and being very smart with new math and new techniques," Mountain said. "So suddenly we've given Hubble a new ability to measure things 10 times more accurately than it could do before."

Rosetta Closing in on Comet 67P/Churyumov-Gerasimenko after Decade Long Chase

ESA’s Rosetta Spacecraft nears final approach to Comet 67P/Churyumov-Gerasimenko in late July 2014. This collage of imagery from Rosetta combines Navcam camera images at right taken nearing final approach from July 25 to July 31, 2014, with OSIRIS wide angle camera image at left of comet’s coma on July 25 from a distance of around 3000 km. On July 31 Rosetta had approached to within 1327 km. Images to scale and contrast enhanced to show further detail. Credit: ESA/Rosetta/NAVCAM/OSIRIS/MPS/UPD/LAM/IAA/SSO/INTA/UPM/DASP/IDA
Collage/Processing: Marco Di Lorenzo/Ken Kremer



The European Space Agency’s (ESA) Rosetta spacecraft is at last rapidly closing in on its target destination, Comet 67P/Churyumov-Gerasimenko, after a decade long chase of 6.4 billion kilometers through interplanetary space. See imagery above and below.
As of today, Friday, August 1, ESA reports that Rosetta has approached the ‘rubber ducky looking’ comet to within a distance of less than 1153 kilometers. That distance narrows with each passing moment as the speeding robotic probe moves closer and closer to the comet while looping around the sun at about 55,000 kilometers per hour (kph).
Rosetta is now just 5 days away from becoming Earth’s first probe ever to rendezvous and enter orbit around a comet.
See above our image collage of Rosetta nearing final approach with the spacecrafts most recent daily Navcam camera images, all taken within the past week starting on July 25 and including up to the most recently release image snapped on July 31. The navcam images are all to scale to give the sense of the spacecraft approaching the comet and revealing ever greater detail as it grows in apparent size in the cameras field of view.
The highest resolution navcam image yet of the two lobed comet – merged at a bright band – was taken on July 31 from a distance of 1327 kilometers and published within the past few hours by ESA today, Aug 1. It shows the best view yet of the surface features of the mysterious bright necked wanderer composed of primordial ice, rock, dust and more.
 The Navcam collage is combined with an OSIRIS (Optical, Spectroscopic, and Infrared Remote Imaging System) wide angle camera view of the comet and its asymmetric coma of ice and dust snapped on July 25 from a distance of around 3000 km, and with an exposure time of 300 seconds. The OSIRIS image covers an area of about 150 x 150 km (90 mi x 90 mi). The images have been contrast enhanced to bring out more detail.
Scientists speculate that the comets bright neck region could be caused by differences in material or grain size or topological effects.
Rosetta’s history making orbital feat is slated for Aug. 6 following the final short duration orbit insertion burns on Aug. 3 and Aug. 6 to place Rosetta into orbit at an altitude of about 100 kilometers (62 miles) where it will study and map the 4 kilometer wide comet for some 17 months.
The comet rotates around once every 12.7 hours.
The coma of Rosetta’s target comet as seen with the OSIRIS wide-angle camera. The image spans 150 km and was taken on 25 July 2014 with an exposure time of 330 seconds. The greyscale relates to the particle density in the coma, with highest density close to the nucleus, becoming more diffuse further away. The hazy circular structure on the right is an artefact. The nucleus is also overexposured. The specks and the streaks in the background are attributed to background stars and cosmic rays. Credits: ESA/Rosetta/MPS for OSIRIS Team MPS/UPD/LAM/IAA/SSO/INTA/UPM/DASP/IDA


Crop from the 31 July processed image of comet 67P/Churyumov-Gerasimenko, to focus on the comet nucleus. Credits: ESA/Rosetta/NAVCAM


“If any glitches in space or on ground had delayed the most recent burns, orbital mechanics dictate that we’d only have had a matter of a few days to fix the problem, re-plan the burn and carry it out, otherwise we run the risk of missing the comet,” says Trevor Morley, a flight dynamics specialist at ESOC.
In November 2014 the Rosetta mothership will deploy the Philae science lander for the first ever attempt to land on a comet’s nucleus using harpoons to anchor itself to the surface.
As Rosetta edges closer on its final lap, engineers at mission control at the European Space Operations Centre (ESOC), in Darmstadt, Germany have commanded the probes navigation camera (navcam) to capture daily images while the other science instruments also collect measurements analyzing the comets physical characteristics and chemical composition in detail.
The probe has already discovered that the comet’s surface temperature is surprisingly warm at –70ºC, which is some 20–30ºC warmer than predicted. This indicates the surface is too hot to be covered in ice and must instead have a dark, dusty crust, says ESA.
Comet 67P/Churyumov-Gerasimenko is a short period comet some 555 million kilometres from the Sun at this time, about three times further away than Earth and located between the orbits of Jupiter and Mars.
You can watch the Aug. 6 orbital arrival live via a livestream transmission from ESA’s spacecraft operations centre in Darmstadt, Germany.
While you were reading this the gap between the comet and Rosetta closed to less than 1000 kilometers!

ESA’s Rosetta Spacecraft nears final approach to Comet 67P/Churyumov-Gerasimenko in late July 2014. This image collage from Rosetta combines Navcam camera images taken nearing final approach from July 25 (3000 km distant) to July 31, 2014 (1327 km distant). Top row shows images as seen by spacecraft. Bottom row shows images rotated to same orientation. Images to scale and contrast enhanced to show further detail. Credit: ESA/Rosetta/NAVCAM. Collage/Processing: Marco Di Lorenzo/Ken Kremer

Friday, July 4, 2014

Controversial clues of two 'Goldilocks planets' that might support life are proven false

Mysteries about controversial signals coming from a dwarf star considered to be a prime target in the search for extraterrestrial life now have been solved in research led by scientists at Penn State University. The scientists have proven, for the first time, that some of the signals, which were suspected to be coming from two planets orbiting the star at a distance where liquid water could potentially exist, actually are coming from events inside the star itself, not from so-called "Goldilocks planets" where conditions are just right for supporting life. The study is published by the journal Science in its early online Science Express edition on July 3, 2014, and also in a later print edition of the journal. This image shows the location of the three planets remaining in 2014 after a series of studies since 2004. Research published in 2014, led by Penn State astronomers, shows that two of the signals previously attributed to planets in the habitable zone are actually created by activity within the star itself. The outer (green) planet shown in a companion image dated 2010 also is believed not to exist, based on work by other researchers since 2010. Blue indicates candidate planets in the habitable zone where conditions might be able to support life, orange indicates detections in the too-hot region that is too close to the star.


Mysteries about controversial signals coming from a dwarf star considered to be a prime target in the search for extraterrestrial life now have been solved in research led by scientists at Penn State University. The scientists have proven, for the first time, that some of the signals, which were suspected to be coming from two planets orbiting the star at a distance where liquid water could potentially exist, actually are coming from events inside the star itself, not from so-called "Goldilocks planets" where conditions are just right for supporting life.

The study will be published by the journal Science in its online Science Express issue on July 3, 2014 and in a future print edition of the journal.
"This result is exciting because it explains, for the first time, all the previous and somewhat conflicting observations of the intriguing dwarf star Gliese 581, a faint star with less mass than our Sun that is just 20 light years from Earth," said lead author Paul Robertson, a postdoctoral fellow at Penn State who is affiliated with Penn State's Center for Exoplanets and Habitable Worlds. As a result of this research, the planets now confirmed to be orbiting this dwarf star total exactly three.
"We also have proven that some of the other controversial signals are not coming from two additional proposed Goldilocks planets in the star's habitable zone, but instead are coming from activity within the star itself," said Suvrath Mahadevan, an assistant professor of astronomy and astrophysics at Penn State and a coauthor of the research paper. None of the three remaining planets, whose existence the research confirms, are solidly inside this star system's habitable zone, where liquid water could exist on a rocky planet like Earth.
Astronomers search for exoplanets by measuring shifts in the pattern of a star's spectrum -- the different wavelengths of radiation that it emits as light. These "Doppler shifts" can result from subtle changes in the star's velocity caused by the gravitational tugs of orbiting planets. But Doppler shifts of a star's "absorption lines" also can result from magnetic events like sunspots originating within the star itself -- giving false clues of a planet that does not actually exist. "In the search for low-mass planets," Mahadevan said, "accounting for the subtle signature of a magnetics events in the star is as important as obtaining the highest possible Doppler precision."
The research team made its discovery by analyzing Doppler shifts in existing spectroscopic observations of the star Gliese 581 obtained with the ESO HARPS and Keck HIRES spectrographs. The Doppler shifts that the scientists focused on were the ones most sensitive to magnetic activity. Using careful analyses and techniques, they boosted the signals of the three innermost planets around the star, but "the signals attributed to the existence of the two controversial planets disappeared, becoming indistinguishable from measurement noise," Mahadevan said. "The disappearance of these two signals after correcting for the star's activity indicates that these signals in the original data must have been produced by the activity and rotation of the star itself, not by the presence of these two suspected planets.
"Our improved detection of the real planets in this system gives us confidence that we are now beginning to sufficiently eliminate Doppler signals from stellar activity to discover new, habitable exoplanets, even when they are hidden beneath stellar noise, said Robertson. "While it is unfortunate to find that two such promising planets do not exist, we feel that the results of this study will ultimately lead to more Earth-like planets."
Older stars such as Gliese 581, an "M dwarf" star in the constellation Libra about one-third the mass of our Sun, have until now been considered highly attractive targets in the search for extraterrestrial life because they are generally less active and so are better targets for Doppler observations. "The new result from our research highlights a source of astrophysical noise even with old M dwarfs because the harmonics of the star's rotation can be in the same range as that of its habitable zone, raising the risk of false detections of nonexistent planets," Mahadevan said. "Higher-precision analysis for discovering Earth-like planets using spectrographs will be increasingly more necessary as next-generation spectrographs with the higher Doppler precision needed for detecting important subtle signatures come on line this decade -- like the Habitable Zone Planet Finder (HPF) that our team now is developing at Penn State."
In addition to Mahadevan and Robertson, other coauthors of the research include Penn State Graduate Student Arpita Roy and McDonald Observatory Research Scientist Michael Endl at the University of Texas. Penn State coauthors have affiliations with the Center for Exoplanets and Habitable Worlds and with the Astrobiology Research Consortium, both at Penn State.

Ultrasound for astronomers? A young star's age can be gleamed from nothing but sound waves

In a young region like the so-called Christmas Tree Cluster, stars are still in the process of forming. A star is 'born' once it becomes optically visible (bottom right). During its further evolution, the star contracts and gets smaller in size and hotter until the core temperature is sufficient to start nuclear burning of hydrogen. This marks the end of the stellar childhood phase (bottom left). While the young star evolves from its birth to the beginning of hydrogen burning, its pulsation properties change: the least evolved, i.e., youngest, stars pulsate slower and the most evolved while the oldest stars pulsate faster.


Determining the age of stars has long been a challenge for astronomers. In experiments published in the journal Science, researchers at KU Leuven's Institute for Astronomy show that 'infant' stars can be distinguished from 'adolescent' stars by measuring the acoustic waves they emit.
Stars are often born in clusters, the result of contracting molecular clouds of gas and dust particles. As a star evolves from infant to adolescent, gravitational pull causes it to contract. It gets smaller in size and hotter until the core temperature is sufficient to start nuclear burning of hydrogen. At this point, the star stabilizes and becomes an 'adult'. It stays this way for vast tracts of time.
Determining the age of a young star is far from simple, and knowing which molecular cloud a star comes from gives only a vague idea of its age. But researchers have come up with a way to determine the age of stars by measuring their acoustic vibrations using ultrasound technology similar to that used in the field of medicine.
Acoustic vibrations -- sound waves -- are produced by radiation pressure inside stars. First author Konstanze Zwintz, a postdoctoral researcher at KU Leuven's Institute for Astronomy, and her colleagues studied the vibrations of 34 stars aged under 10 million years and sized between one and four times the mass of our sun.
"Our data shows that the youngest stars vibrate slower while the stars nearer to adulthood vibrate faster. A star's mass has a major impact on its development: stars with a smaller mass evolve slower. Heavy stars grow faster and age more quickly," says Dr. Zwintz.
While theoretical physicists have posited before that young stars vibrate differently than older stars, Zwintz' study is the first to confirm these predications using concrete data from outer space.
"We now have a model that more precisely measures the age of young stars," says Zwintz. "And we are now also able to subdivide young stars according to their various life phases."
The researchers studied the nebula known commonly as the Christmas Tree Cluster. Their data was obtained from the Canadian MOST satellite and the European CoRoT satellite as well as from ground-based facilities such as the European Southern Observatory (ESO) in Chile.