Mathematics – Logic
Scientific paper
Nov 2001
adsabs.harvard.edu/cgi-bin/nph-data_query?bibcode=2001eso..pres...24.&link_type=abstract
ESO Press Release, 11/2001
Mathematics
Logic
Scientific paper
VLT ISAAC Uncovers an Enigmatic Microquasar
Summary
One of the most enigmatic stellar systems in our Milky Way Galaxy has been shown to harbour a very massive black hole. With 14 times more mass than the Sun [1], this is the heaviest known stellar black hole in the Galaxy.
Using the ISAAC instrument on the VLT 8.2-m ANTU telescope at the ESO Paranal Observatory , an international team of astronomers [2] peered into a remote area of the Milky Way to probe the binary system GRS 1915+105 , located almost 40,000 light-years away.
They were able to identify the low-mass star that feeds the black hole by means of a steady flow of stellar material. A detailed follow-up study revealed how this star revolves around its hungry companion. The analysis of the orbital motion then made it possible to estimate the mass of the black hole.
The observation of the heavy black hole in GRS 1915+105 is opening up fundamental questions about how massive stellar black holes form, and whether or not such objects rotate around their own axes.
PR Photo 31a/01 : Schematic drawing of the GRS 1915+105 binary system . PR Photo 31b/01 : ISAAC spectrum of the companion star . PR Photo 31c/01 : The velocity curve from which the mass of the black hole was derived . Miniature Quasars in our Galaxy
ESO PR Photo 31a/01
ESO PR Photo 31a/01 [Preview - JPEG: 400 x 399 pix - 44k] [Normal - JPEG: 800 x 797 pix - 192k]
Caption : PR Photo 31a/01 shows an artist's impression of the binary stellar system GRS 1915+105 in which a heavy black hole is present. The distance between the donor star and the accreting black hole is about half the distance between the Earth and the Sun. The drawing illustrates how the donor star feeds the black hole via an accretion disk , and also the emergence of jets perpendicular to the disk. In the lower panel the blue colour denotes matter that spirals in the accretion disk, while in the orange region matter is freely falling radially into the black hole. Technical information about this photo is available below.
A few objects within our own Galaxy look very much like miniature versions of the very energetic quasars , observed at the centres of remote galaxies. Quasars are believed to harbour supermassive black holes at their centres, and they emit copious amounts of energy as the surrounding matter accretes into a disk and spirals into the hole. Occasionally, quasars spout jets of gas at velocities very close to the speed of light.
Microquasars are basically the same thing, but at scales a million times smaller. They are binary stellar systems in our Galaxy in which a more or less normal star orbits a compact object, which may be a neutron star or a black hole. Those microquasars also show energetic outflows and signs of accretion of matter onto the compact object. Not unexpectedly, it appears that the most enigmatic of these systems are the ones that contain a black hole.
The discovery of objects that are relatively nearby in cosmological terms and which mimic the properties of the remote quasars has opened up interesting new perspectives and promises to help us to better understand the strange phenomena that are associated with jets and accretion disks around black holes. GRS 1915+105 - A unique galactic laboratory
The binary stellar system GRS 1915+105 is one of a handful of microquasars known in our Galaxy. This system was first discovered in 1994 by the GRANAT X-ray satellite. In X-ray radiation, GRS 1915+105 shows bright and sporadic outbursts.
The variable X-ray radiation has been interpreted as due to infall of matter onto the black hole from the inner region of a surrounding accretion disk. This enigmatic source was also observed to eject clouds of hot gas at velocities very close to the speed of light. GRS 1915+105 is thus a prototype microquasar and has become a main target for the study of accretion onto a black hole of stellar mass.
GRS 1915+105 lies in the constellation Aquila (The Eagle) and is located near the main plane of the Milky Way Galaxy, some 40 000 light-years away from the Sun. A lot of gas and dust in that plane hides it from our view in the visible light. This obscuration has severely impeded any detailed investigation of the system, and it still remained to be proven whether or not it really contains a massive black hole. Identification of the binary companion
ESO PR Photo 31b/01
ESO PR Photo 31b/01 [Preview - JPEG: 400 x 262 pix - 45k] [Normal - JPEG: 800 x 523 pix - 128k]
Caption : PR Photo 31b/01 shows one of the infrared ISAAC spectra of GRS 1915+105 . It is a K-band spectrum (in the 2.2 µm near-infrared spectral region) that reveals several previously unnoticed spectral features from the companion star that donates matter to the black hole. The presence and characteristics of these lines indicate that this donor star is a low-mass star. Observing how the positions of the strong carbon monoxide bands (CO) shift with time has allowed the astronomers to measure the orbital motion of the donor star, cf. Photo 31c/01 . Technical information about this photo is available below.
The team of astronomers [2] therefore decided to perform infrared observations of GRS 1915+105 , in a spectral region where the obscuration of dust is much less severe than in visible light. It is still not a trivial observation since even in the infrared only a few percent of the light emitted by GRS 1915+105 reaches Earth after the long journey through the intervening clouds. A large telescope is needed to register detailed spectra of GRS 1915+105 .
The first set of observations was obtained with the multi-mode ISAAC instrument on the VLT 8.2-m ANTU telescope , already in the summer of 1999. The spectra were of very high quality and contained several spectral lines ( PR Photo 31b/01 ). In particular, a number of previously unnoticed spectral features from carbon monoxide molecules were securely identified.
These lines are formed in the atmosphere of the star which revolves around the black hole and feeds it with matter (it is therefore known as the "donor star"). A high-quality infrared spectrum was needed to detect and measure these lines because only a small fraction of the light received actually comes from the binary star. Most of the light that is registered by the instrument comes from the surrounding accretion disk or from ejected matter in the neighbourhood, and therefore tends to hide the spectral lines of the donor star.
After a careful analysis of the observed spectral lines, the astronomers were able to infer that the star donating matter to the compact object is a low-mass star , with about the same mass as our Sun. But this was only the beginning of this long-term observational programme. Seeing the motion
ESO PR Photo 31c/01
ESO PR Photo 31c/01 [Preview - JPEG: 400 x 332 pix - 39k] [Normal - JPEG: 800 x 664 pix - 112k]
Caption : PR Photo 31c/01 displays the velocity of the donor star, as determined from the Doppler shifts of the carbon monoxide lines ( PR Photo 31b/01 ). It shows velocities from sixteen observations taken with VLT ANTU/ISAAC between April and September 2000. A periodogram analysis (upper panel) determines the period as 33.5 days and an orbit with this period represents the best fit to the data (lower panel). The orbital velocity of the binary star moving around the black hole is about 140 km/s.
The identification of the distinct carbon monoxide bands in the spectrum of the donor star then allowed the astronomers to search for the orbital motion of the system. As the binary star orbits its compact and dark companion, the Doppler motion will induce small shifts in the positions of the spectral lines. Monitoring these shifts reveals how fast the star moves and therefore determines the size and shape of its orbit around the black hole. This in turn makes it possible to determine the mass of the invisible object that is needed to keep the star moving in that orbit.
The observational campaign started in April 2000 and continued until September 2000 with observations taken on 16 different nights. The velocity variations revealed by the line shifts w
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