sábado, 26 de marzo de 2011
Black Hole Found in Binary Star System: More Than Five Times Greater in Mass Than Our Sun
X-ray binaries are stellar systems composed by a compact object (which may be a neutron star or a black hole) and a 'normal' star. The compact object sucks matter out of the star and adds it slowly to its own mass, through a spiral disc formed around it. This process of absorption is known as acretion. Only 20 binary systems, out of an estimated population of around 5,000 within our Galaxy, are known to contain a black hole.
XTE J1859+226 is, in particular, a transient X-ray binary located in the Vulpecula constellation. It was discovered by satellite RXTE during an eruption registered in 1999.
"Transient X-ray binaries are characterised for spending most of their life in a state of calmness, but occasionally entering eruption stages, during which the rhythm of acretion of matter toward the black hole is triggered," Jesús Corral Santana explains, an astrophysicist from the IAC, who led the work published in the Monthly Notices of the Royal Astronomical Society (MNRAS).
Neutron stars as well as black holes are the remains left by a massive star after its death. Most of the known neutron stars have a mass around 1.4 times that of the Sun, though in some cases, values up to over twice the mass of the Sun have been measured. Astronomers believe that when greater than tree times the solar mass, neutron stars are not stable, and end up collapsing and forming a black hole.
For Corral-Santana, "measuring the mass of compact objects is essential to determine what kind of object it may be. If it's greater than three times the solar mass, it can only be a black hole. We found that XTE J1859+226 has a black hole more than 5.4 times greater than the mass of the Sun. It's the definitive confirmation of the existence of a black hole in this object."
"With this result we add a new piece to the study of the mass distribution of black holes. The shape of this distribution has very important implications for our knowledge about the death of massive stars, the formation of black holes, and the evolution of X-ray binary systems," the IAC astrophysicist adds.
Twelve years of observation: measuring the visible and the invisible
The astrophysicists' team at IAC hadn't lost track of the stellar object since it entered an eruption stage in 1999, when they started to set up observation campaigns to follow its evolution. The researchers have combined the photometric measures from the Isaac Newton Telescope (INT) and the William Herschel Telescope (WHT) in year 2000, and those from the Nordic Optical Telescope (NOT) in 2008, with the spectroscopy carried out with the GTC in 2010, the first one ever published about this particular object.
"Due to the low brilliance of the system under observation, we needed 10 meter telescopes in able to obtain spectra. In this sense, having been able to make our observations from the GTC has been determinant," Corral-Santana emphasises.
The measurements at the GTC were carried out with the OSIRIS instrument, which may be used as a camera or as a spectrograph in the visible range. The spectrograph decomposes the light emitted by a star into its different frequencies and allows detecting lines corresponding to the different chemical elements present in its atmosphere. These lines adduce information about the physical properties of the star and its movement.
The photometric measures allowed determining the orbital period of the binary (6.6 hours), while the spectroscopy data also provided information about the speed of the star's orbital movement around the black hole. The combination of both of these parameters proved to be vital to calculate the mass of the back hole.
The Gran Telescopio Canarias (GTC), located at the Roque de los Muchachos Observatory (in La Palma, Canary Islands), is the biggest optical-infrared telescope of the World, with a 10.4 metre diameter mirror.
jueves, 24 de marzo de 2011
lunes, 21 de marzo de 2011
Alien Earths in Our Galaxy Alone
Roughly one out of every 37 to one out of every 70 sunlike stars in the sky might harbor an alien Earth, a new study reveals.
These findings hint that billions of Earthlike planets might exist in our galaxy, researchers added.
These new calculations are based in data from the Kepler space telescope, which in February wowed the globe by revealing more than 1,200 possible alien worlds, including 68 potentially Earth-size planets. The spacecraft does so by looking for the dimming that occurs when a world transits or moves in front of a star.
Scientists at NASA's Jet Propulsion Laboratory in Pasadena, Calif., focused on roughly Earth-size planets within the habitable zones of their stars — that is, orbits where liquid water can exist on the surfaces of those worlds. [The Strangest Alien Planets]
After the researchers analyzed the four months of data in this initial batch of readings from Kepler, they determined that 1.4 to 2.7 percent of all sunlike stars are expected to have Earthlike planets — ones that are between 0.8 and two times Earth's diameter and within the habitable zones of their stars.
"This means there are a lot of Earth analogs out there — two billion in the Milky Way galaxy," researcher Joseph Catanzarite, an astronomer at NASA's Jet Propulsion Laboratory, told SPACE.com. "With that large a number, there's a good chance life and maybe even intelligent life might exist on some of those planets. And that's just our galaxy alone — there are 50 billion other galaxies."
After three to four years of Kepler data are investigated, the scientists predict a total of 12 Earthlike worlds will be found. Four of these have already been seen in the four months of data released so far, they added. Kepler mission scientists have estimated that, altogether, there could be 50 billion planets in the Milky Way, though not all would be Earth-size worlds within the habitable zone of their local stars.
miércoles, 16 de marzo de 2011
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