Showing posts with label XMM-Newton. Show all posts
Showing posts with label XMM-Newton. Show all posts

XMM-Newton measures the power of black-hole driven outflows in galaxies

Posted by carsimulator on Tuesday, February 28, 2012

Artist's impression of ultra-fast outflows and relativistic jets driven by a supermassive black hole at the centre of a galaxy. Credit: ESA/AOES Medialab. Hi-Res [jpg] 4,402.79 kb

Astronomers using ESA's XMM-Newton X-ray Observatory have discovered that ultra-fast outflows are quite common in active galaxies. About 40 per cent of the sources in their sample show outflows that arise from the vicinity of the central black holes. By estimating the mass and energy released by the outflows, the astronomers have identified them as major agents in the feedback processes required by models of galactic evolution to explain the observed correlation between the mass of black holes and the stellar content of their host galaxies.

What determines the mass of galaxies and of the supermassive black holes residing at their cores? Is there a universal physical mechanism that regulates the growth of both components? These are among the most hotly debated topics concerning galactic evolution scenarios, and a new study, reporting on the detection of massive outflows streaming away from the centres of galaxies, is shedding new light on these issues.

In recent years, astronomers have noticed a strong correlation between the mass of a black hole and the stellar content of its host galaxy: more massive black holes appear to reside in galaxies whose bulges contain more stars that also move faster, on average. These empirical relations are quite puzzling, given that they connect two extremely different scales – the close environment of the black hole and the entire extent of the galaxy that harbours it. In fact, the enormous gravitational attraction exerted by the black hole is only effective in the vicinity of the black hole and has hardly any impact on the galaxy at large.

To explain these observed relations astronomers often invoke some sort of feedback: a matter remixing mechanism that originates in the accretion disc feeding the black hole and then propagates throughout the entire galaxy. It had been thought that relativistic jets of highly energetic particles, such as those observed streaming from the centres of almost all active galaxies at radio wavelengths, could play this role. However, simulations show that these jets, which are strongly collimated, cannot provide enough feedback and only have a major impact on the outskirts of their host galaxy; neither is the radiative feedback produced by the intense luminosity of the active galactic nucleus (AGN) sufficient to regulate global galactic properties. The results of simulations seem to point to the need for an additional feedback agent besides these two: wide-angle galactic outflows that arise from ionised material in the accretion disc.

Such outflows can be observed by detecting blue-shifts in the absorption lines of the galaxy spectra. These lines arise from highly ionised iron atoms in clouds located in the very centre of a galaxy, in the immediate surroundings of the black hole. In recent years, astronomers have identified such outflows in a few galaxies, but the observations have thus far been too sparse to allow a quantitative analysis of the phenomenon. Now, the first systematic scrutiny of these outflows in a sample of 42 nearby AGN-hosting galaxies has been performed using data from ESA's XMM-Newton X-ray Observatory. The study, led by Francesco Tombesi from NASA's Goddard Space Flight Center in Greenbelt, USA, demonstrates for the first time that these outflows have the 'right' characteristics to produce the feedback effects required to reconcile observations with the predictions from simulations.

"We have seen these outflows in 40 per cent of the galaxies in our sample, thus demonstrating that they are quite a common phenomenon in these sources," comments Tombesi, lead author of the three papers reporting the results. Analysing the spectroscopic data and comparing them to models of the inner regions of AGN, Tombesi and his colleagues estimated the physical parameters of the outflows: velocity, density and ionisation properties. "We call them ultra-fast outflows, or UFOs, because their velocities are very large – between 10 000 and 100 000 kilometres per second. With these mildly-relativistic velocities, UFOs are much faster, hence much more powerful, than other, ordinary galactic outflows, although they are still slower than relativistic jets," he adds.

The analysis shows that these UFOs consist of highly ionised plasma, which locates their origin extremely close to the black hole as the material must have been exposed to the intense radiation emitted by the accretion disc in order to reach such high levels of ionisation. The high column density of the outflowing material, on the other hand, suggests that the quantities of matter released via the UFOs are substantial, up to one solar mass per year.

"We then used the velocity, density and ionisation level of the outflows estimated from the data to assess the strength of their impact on the host galaxies," notes co-author Massimo Cappi from Istituto Nazionale di Astrofisica – Istituto di Astrofisica Spaziale e Fisica Cosmica in Bologna, Italy. The kinetic power of the UFOs appears to be a few per cent of the total luminosity of the AGN, which is enough to exert sufficient feedback on the host galaxy, as simulations suggest. Moreover, by comparing the density and velocity of the outflowing material, the astronomers have determined the mass loss rate caused by the UFOs. "Interestingly, the rate at which mass is released in the outflows is of the same order as the black-hole accretion rate, and might even exceed it in some cases," Cappi adds.

The result demonstrates, for the first time, that a major mass recycling process is taking place between the dense galactic centres and the diffuse interstellar medium of the host galaxies. This synergy between accretion and ejection processes suggests that something does link AGN and galactic processes on much larger scales. "The outflows studied in our work exert a more intense feedback on the host galaxy than do jets. Since they are more massive, slower and have wider opening angles, they are bound to interact more significantly with the interstellar medium," explains Tombesi. These feedback mechanisms may be able to quench star formation in the bulge and the growth of the black hole at the same time, thus contributing to establishing the observed correlations between the properties of these two components.

"Astronomers have been using XMM-Newton to study these outflows since their earliest detections," comments Norbert Schartel, XMM-Newton Project Scientist at ESA. The observatory's unprecedented spectral resolution is instrumental in measuring with great precision the blue-shifted lines caused by outflows. "It is very satisfying to see how the accumulation of such a large sample has provided the body of data needed to establish the role of these outflows in the context of cosmological feedback," he adds.

After having demonstrated that these outflows are common in active galaxies and that they can have a major role in feedback processes, Tombesi and his colleagues plan to investigate them in greater detail by comparing the data with models and simulations of accretion around black holes. "We intend now to focus on figuring out the detailed physical mechanisms that generate the outflows in the first place. This will represent a further, valuable step towards a full understanding of how active galaxies work and evolve," concludes Tombesi.

Notes for editors

The findings presented here are based on the analysis of a sample of 42 nearby radio-quiet active galactic nuclei (AGN) with redshifts up to z=0.1 observed with ESA's XMM-Newton.

The sample of radio-quiet AGN has been drawn from the Rossi X-ray Timing Explorer (RXTE) All-Sky Slew Survey Catalog, which provides a list of 294 sources serendipitously detected in the hard X-rays. The survey is 90% complete to a 4-sigma limiting flux of ~10-11 erg/s/cm² in the 4-10 keV band. From this survey, the team of astronomers have selected all sources identified as Seyfert galaxies and for which good-quality observations with XMM-Newton were available; this resulted in a sample of 42 sources.

The study presents analyses of X-ray spectra of these 42 AGN taken with the EPIC pn instrument on XMM-Newton. In particular, the astronomers searched for absorption lines of highly ionised iron atoms at energies between 7 and 10 keV, as the blue-shift of these lines provides evidence of outflowing material from the vicinity of the galactic nuclei.

Related publications

F. Tombesi, et al., "Evidence for ultra-fast outflows in radio-quiet AGNs. III. Location and energetics", 2012, Monthly Notices of the Royal Astronomical Society, in press

F. Tombesi, et al., "Evidence for ultra-fast outflows in radio-quiet Active Galactic Nuclei. II. Detailed photo-ionization modeling of Fe K-shell absorption lines", 2011, The Astrophysical Journal, 742, 44

F. Tombesi, et al., "Evidence for ultra-fast outflows in radio-quiet AGNs. I. Detection and statistical incidence of Fe K-shell absorption lines", 2010, Astronomy and Astrophysics, 521, A57

Contacts

Francesco Tombesi
X-ray Astrophysics Laboratory and CRESST
NASA/Goddard Space Flight Center
and Department of Astronomy
University of Maryland, MD, U.S.A.
Email: ftombesi@astro.umd.edu
Phone: +1-301-405-3615

Massimo Cappi
Istituto Nazionale di Astrofisica
Istituto di Astrofisica Spaziale e Fisica Cosmica

Bologna, Italy
Email: cappi@iasfbo.inaf.it
Phone: +39-051-639-8689

Norbert Schartel
ESA XMM-Newton Project Scientist
Directorate of Science and Robotic Exploration
European Space Agency
Email: Norbert.Schartel@esa.int
Phone: +34-91-8131-184

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Spectacularly bright object in Andromeda caused by 'normal' black hole

Posted by carsimulator on Thursday, February 23, 2012

A Hubble Space Telescope optical image of our nearest neighbour galaxy, Andromeda (M31), with the inset an X-ray image of the active centre made with the XMM-Newton observatory. The newly discovered ULX is highlighted. Credit: MPE

An animated gif based on X-ray images from XMM-Newton, showing the ULX from the time it was first seen to enter outburst at the end of 2009 and its decay until it 'switched off' sometime in 2010. Credit: MPE

A spectacularly bright object recently spotted in one of the Milky Way's neighbouring galaxies is the result of a "normal" stellar black hole, astronomers have found.

An international team of scientists, led by Dr Matt Middleton, of Durham University, analysed the Ultraluminous X-ray Source (ULX), which was originally discovered in the Andromeda galaxy by NASA's Chandra x-ray observatory. They publish their results in the journals Monthly Notices of the Royal Astronomical Society and Astronomy and Astrophysics.

Many ULXs are too far away for astronomers to study, but the relatively close proximity of Andromeda to the Milky Way – around 2.5 million light years – gave the team opportunity to study the phenomenon.

The researchers say their study could begin to answer the question about what causes ULXs. Some scientists believe they are caused by relatively small black holes, a few times the mass of our Sun. These black holes rapidly pull in gas and dust which forms an "accretion disc" and heats up causing the material to emit X-rays.

Other scientists say ULXs are caused by material being dragged in by an intermediate-sized black hole formed from the merger of many stellar black holes with a mass perhaps 1,000 times bigger than the Sun.

The Durham-led findings link the ULX spotted in Andromeda to a normal stellar black hole formed after a massive star exploded as a supernova.

Dr Middleton, of Durham University's Department of Physics, said: "ULX sources are still pretty exotic.

"But our work shows that at least some are linked to the normal black holes left behind after the death of massive stars, objects that are found throughout the Universe, and the way that they drag in surrounding material.

"The ULX in Andromeda flared up because of the black hole's voracious appetite for new material."

Using data from Chandra, the XMM-Newton X-ray observatory, the Swift gamma ray observatory and the Hubble Space Telescope the research team were able to watch a sharp decline in the outburst from the ULX that took place over the next few months.

This decline had not been seen in any ULX before, but is common in stellar-mass X-ray binaries in the Milky Way where a normal star is in close orbit around a black hole. Measurement of energy emissions from the ULX also allowed the team to rule out low rates of accretion that would be expected from an intermediate-mass black hole.

They concluded that the Andromeda ULX had the mass of a large star, in this case about 13 times the mass of the Sun.

Dr Middleton said: "We would like to follow up this work by watching another outburst from the Andromeda ULX. The problem is that these are likely to happen only every few decades so we could be in for a long wait before this source erupts again."

The team hope that the ongoing monitoring of Andromeda by orbiting X-ray observatories may find other ULXs in the same galaxy, giving them another chance to test their theory.

Dr Middleton said: "If we do manage to spot another ULX outburst in Andromeda it will be a big help in understanding the extreme behaviour of black holes and the way they pull in matter – something of great importance in shaping the wider universe."

The research work in the UK was funded by the Science and Technology Facilities Council.


SCIENCE CONTACT

Dr Matt Middleton
Department of Physics
Durham University
Tel: +44 (0)191 334 3728
Email: m.j.middleton@durham.ac.uk


MEDIA CONTACTS

Dr Robert Massey
Royal Astronomical Society
Tel: +44 (0)20 7734 3307 x214
Mob: +44 (0)794 124 8035
Email: rm@ras.org.uk

Leighton Kitson
Media Relations Officer
Durham University
Tel: +44 (0)191 334 6074/+44 (0)191 334 6075
Email: leighton.kitson@durham.ac.uk / media.relations@durham.ac.uk

Dr Hannelore Hämmerle
Press officer
Max-Planck Institute for Astrophysics
Garching, Germany
Tel: +49 (0)89 30000 3980
Email: hhaemmerle@mpa-garching.mpg.de


FURTHER INFORMATION

The new work will be published in "The missing link: a low mass X-ray binary in M31 seen as an ultraluminous X-ray source", Middleton, M. J. et al, Monthly Notices of the Royal Astronomical Society, in press.

A preprint can be downloaded from http://adsabs.harvard.edu/abs/2011arXiv1111.1188M

A copy of the paper is available on request from Durham University Media Relations Office on +44 (0)191 334 6075 or email media.relations@durham.ac.uk

German and English language versions of the release are also available from the Max-Planck-Institut für extraterrestrische Physik (MPE, Garching, Germany) http://www.mpe.mpg.de/News/PR20120223/text-d.html and http://www.mpe.mpg.de/News/PR20120223/text.html


NOTES FOR EDITORS

Durham University

Durham University is a World Top-100 university with a global reputation in research and education across the arts and humanities, sciences and social sciences. It is England's third oldest university and Durham has been a leading centre of scholarship for a thousand years. At the University's heart is a UNESCO World Heritage site which it owns, together with Durham Cathedral. Durham is consistently ranked in the top few universities in the UK and the leading university in the North. Its residential Collegiate system enables the University to recruit some of the most talented and motivated students from around the world to develop transferable skills such as leadership, alongside academic excellence, which place Durham graduates in the World Top-15 for global student employability.*

* 2011 QS World University Rankings

The Royal Astronomical Society

The Royal Astronomical Society (RAS, www.ras.org.uk), founded in 1820, encourages and promotes the study of astronomy, solar-system science, geophysics and closely related branches of science. The RAS organizes scientific meetings, publishes international research and review journals, recognizes outstanding achievements by the award of medals and prizes, maintains an extensive library, supports education through grants and outreach activities and represents UK astronomy nationally and internationally. Its more than 3500 members (Fellows), a third based overseas, include scientific researchers in universities, observatories and laboratories as well as historians of astronomy and others.

Follow the RAS on Twitter via @royalastrosoc

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A New View of an Icon

Posted by carsimulator on Tuesday, January 17, 2012

Combining almost opposite ends of the electromagnetic spectrum, this composite of the Herschel in far-infrared and XMM-Newton’s X-ray images shows how the hot young stars detected by the X-ray observations are sculpting and interacting with the surrounding ultra-cool gas and dust, which, at only a few degrees above absolute zero, is the critical material for star formation itself. Both wavelengths would be blocked by Earth’s atmosphere, so are critical to our understanding of the lifecycle of stars

Credits: far-infrared: ESA/Herschel/PACS/SPIRE/Hill, Motte, HOBYS Key Programme Consortium; X-ray: ESA/XMM-Newton/EPIC/XMM-Newton-SOC/Boulanger.

HI-RES JPEG (Size: 432 kb)

The Eagle Nebula as never seen before. In 1995, the Hubble Space Telescope's 'Pillars of Creation' image of the Eagle Nebula became one of the most iconic images of the 20th century. Now, two of ESA's orbiting observatories have shed new light on this enigmatic star-forming region.

The Eagle Nebula is 6500 light-years away in the constellation of Serpens. It contains a young hot star cluster, NGC6611, visible with modest back-garden telescopes, that is sculpting and illuminating the surrounding gas and dust, resulting in a huge hollowed-out cavity and pillars, each several light-years long.

The Hubble image hinted at new stars being born within the pillars, deeply inside small clumps known as 'evaporating gaseous globules' or EGGs. Owing to obscuring dust, Hubble's visible light picture was unable to see inside and prove that young stars were indeed forming.

This 1995 Hubble Space Telescope image of the ‘Pillars of Creation’ is probably the most famous astronomical image of the 20th Century. Taken in visible light using a combination of SII/H-alpha and OIII filters, it shows a part of the Eagle Nebula where new stars are forming. The tallest pillar is around 4 light-years high.

Credits: NASA/ESA/STScI, Hester & Scowen (Arizona State University)
HI-RES JPEG (Size: 814 kb)

The ESA Herschel Space Observatory's new image shows the pillars and the wide field of gas and dust around them. Captured in far-infrared wavelengths, the image allows astronomers to see inside the pillars and structures in the region.

In parallel, a new multi-energy X-ray image from ESA's XMM-Newton telescope shows those hot young stars responsible for carving the pillars.

XMM-Newton’s images of the Eagle Nebula region in X-rays, which here is colour-coded to show different energy levels (red: 0.3–1 keV, green: 1–2 keV and blue: 2–8 keV) is helping astronomers to investigate a theory that the Eagle Nebula is being powered by a hidden supernova remnant. The researchers are looking for signs of very diffuse emission and how far this extends around the region. They believe that an absence of this X-ray emission beyond that found by previous orbiting space telescopes (Chandra and Spitzer) would support the supernova remnant theory. The work on this is continuing.

Credits: ESA/XMM-Newton/EPIC/XMM-Newton-SOC/Boulanger

Combining the new space data with near-infrared images from the European Southern Observatory's (ESO's) Very Large Telescope at Paranal, Chile, and visible-light data from its Max Planck Gesellschaft 2.2m diameter telescope at La Silla, Chile, we see this iconic region of the sky in a uniquely beautiful and revealing way.


Messier 16 is a diffuse emission nebula that contains the young open cluster NGC6611. The iconic ‘Pillars of Creation’ image taken with the Hubble Space Telescope in 1995 is captured in near-infrared by the VLT, which penetrates straight through the obscuring gas and dust, rendering them almost invisible. The pillars are only a small portion of the extensive nebulous region imaged in far-infrared by ESA’s Herschel Space Observatory, which shows cool dust and gas tendrils being carved away by the hot stars seen in the X-ray image from XMM-Newton. The wide-field optical image from the ESO MPG telescope puts the pillars into context against the full scale of the nebula, which is over 75 light-years across.

Credits: far-infrared: ESA/Herschel/PACS/SPIRE/Hill, Motte, HOBYS Key Programme Consortium; ESA/XMM-Newton/EPIC/XMM-Newton-SOC/Boulanger; optical: MPG/ESO; near-infrared/VLT/ISAAC/McCaughrean & Andersen/AIP/ESO.

HI-RES JPEG (Size: 769 kb)

In visible wavelengths, the nebula shines mainly due to reflected starlight and hot gas filling the giant cavity, covering the surfaces of the pillars and other dusty structures.

A movie of the Eagle Nebula at several wavelengths. A high-resolution downloadable version of the movie is available for download (19mb) in Quicktime format. Credits: far-infrared: ESA/Herschel/PACS/SPIRE/Hill, Motte, HOBYS Key Programme Consortium; ESA/XMM-Newton/EPIC/XMM-Newton-SOC/Boulanger; optical: MPG/ESO; near-infrared/VLT/ISAAC/McCaughrean & Andersen/AIP/ESO.

At near-infrared wavelengths, the dust becomes almost transparent and the pillars practically vanish.

The 8.2m-diameter VLT’s ANTU telescope imaged the famous Pillars of Creation region and its surroundings in near-infrared using the ISAAC instrument. This enabled astronomers to penetrate the obscuring dust in their search to detect newly formed stars. The research into the ‘evaporating gaseous globules’ (EGGs), which were first detected in the Hubble images, needed the near-infrared capabilities and resolution of the VLT to peel back the layers of dust and detect the low-mass young stars cocooned within the EGG shells. The near-infrared results showed that 11 of the 73 EGGs detected possibly contained stars, and that the tips of the pillars contain stars and nebulosity not seen in the Hubble image.

Credits: VLT/ISAAC/McCaughrean & Andersen/AIP/ESO . HI-RES JPEG (Size:
996 kb)

In far-infrared, Herschel detects this cold dust and the pillars reappear, this time glowing in their own light.

Intricate tendrils of dust and gas are seen to shine, giving astronomers clues about how it interacts with strong ultraviolet light from the hot stars seen by XMM-Newton.

In 2001, Very Large Telescope near-infrared images had shown only a small minority of the EGGs were likely to contain stars being born.

However, Herschel's image makes it possible to search for young stars over a much wider region and thus come to a much fuller understanding of the creative and destructive forces inside the Eagle Nebula.

This Herschel image of the Eagle Nebula, colour coded to 70 microns for blue and 160 microns for green using the PACS (Photodetector Array Camera) and 250 microns for red using the SPIRE (Spectral and Photometric Imaging Receiver) shows the self-emission of the intensely cold nebula’s gas and dust as never seen before. Each colour shows a different temperature of dust, from around 10 degrees above absolute zero (10K) for the red, up to around 40K for the blue. In the far–infrared, the nebula shows its intricate tendril nature, with vast cavities forming an almost cave-like surrounding to the famous pillars, which take on an ethereal ghostly appearance. The gas and dust provide the material for the star formation that is still under way inside this enigmatic nebula .

Credits: ESA/Herschel/PACS/SPIRE/Hill, Motte, HOBYS Key Programme Consortium. HI-RES JPEG (Size:
423 kb)

Earlier mid-infrared images from ESA's Infrared Space Observatory and NASA's Spitzer, and the new XMM-Newton data, have led astronomers to suspect that one of the massive, hot stars in NGC6611 may have exploded in a supernova 6000 years ago, emitting a shockwave that destroyed the pillars.

However, because of the distance of the Eagle Nebula, we won't see this happen for several hundred years yet.

Up to 1998 the ESA ISO (Infrared Space Observatory) was the most sensitive mid infrared telescope ever built. ISO observations were performed at 7 microns (and 15 microns, not shown) aiming to detect embedded sources in the pillars.

Credits: ESA/ISO/Pilbratt et al. HI-RES JPEG (Size:
192 kb)

Powerful ground-based telescopes continue to provide astonishing views of our Universe, but images in far-infrared, mid-infrared and X-ray wavelengths are impossible to obtain owing to the absorbing effects of Earth's atmosphere.

Space-based observatories such as ESA's Herschel and XMM-Newton help to peel back that veil and see the full beauty of the Universe across the electromagnetic spectrum.

With regions like the Eagle Nebula, combining all of these observations helps astronomers to understand the complex yet amazing lifecycle of stars.

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Neutron star bites off more than it can chew

Posted by carsimulator on Tuesday, June 28, 2011

HI-RES GIF (Size: 10 261 kb)
This animated sequence of images illustrates the partial ingestion of a clump of matter by the neutron star hosted in the Supergiant Fast X-Ray Transient, IGR J18410-0535.

The ingestion of the clump material produced a dramatic increase in the X-rays released by the neutron star, which was detected with XMM-Newton. The peak in the X-ray luminosity corresponds to the period when the accretion rate was at its maximum.

Credits: ESA/AOES Medialab
ESA’s XMM-Newton space observatory has watched a faint star flare up at X-ray wavelengths to almost 10 000 times its normal brightness. Astronomers believe the outburst was caused by the star trying to eat a giant clump of matter.

The flare took place on a neutron star, the collapsed heart of a once much larger star. Now about 10 km in diameter, the neutron star is so dense that it generates a strong gravitational field.

The clump of matter was much larger than the neutron star and came from its enormous blue supergiant companion star.

“This was a huge bullet of gas that the star shot out, and it hit the neutron star allowing us to see it,” says Enrico Bozzo, ISDC Data Centre for Astrophysics, University of Geneva, Switzerland, and team leader of this research.

The flare lasted four hours and the X-rays came from the gas in the clump as it was heated to millions of degrees while being pulled into the neutron star’s intense gravity field. In fact, the clump was so big that not much of it hit the neutron star. Yet, if the neutron star had not been in its path, this clump would probably have disappeared into space without trace.

XMM-Newton caught the flare during a scheduled 12.5-hour observation of the system, which is known only by its catalogue number IGR J18410-0535, but the astronomers were unaware of their catch immediately.

The telescope works through a sequence of observations carefully planned to make the best use of the space observatory’s time, then sends the data to Earth.

It was about ten days after the observation that Dr Bozzo and his colleagues received the data and quickly realised they had something special. Not only were they pointing in the right direction to see the flare, but the observation had lasted long enough for them to see it from beginning to end.

“I don’t know if there is any way to measure luck, but we were extremely lucky,” says Dr Bozzo. He estimates that an X-ray flare of this magnitude can be expected a few times a year at the most for this particular star system.

The duration of the flare allowed them to estimate the size of the clump. It was much larger than the star, probably 16 million km across, or about 100 billion times the volume of the Moon. Yet, according to the estimate made from the flare’s brightness, the clump contained only one-thousandth of our natural satellite’s mass.

These figures will help astronomers understand the behaviour of the blue supergiant and the way it emits matter into space. All stars expel atoms into space, creating a stellar wind. The X-ray flare shows that this particular blue supergiant does it in a clumpy fashion, and the estimated size and mass of the cloud allow constraints to be placed on the process.

“This remarkable result highlights XMM-Newton's unique capabilities,” comments Norbert Schartel, XMM-Newton Project Scientist. “Its observations indicate that these flares can be linked to the neutron star attempting to ingest a giant clump of matter.”


Contact for further information


Markus Bauer

ESA Science and Robotic Exploration Communication Officer
Email: markus.bauer@esa.int
Tel: +31 71 565 6799
Mob: +31 61 594 3 954

Enrico Bozzo
ISDC Data Centre for Astrophysics
University of Geneva, Switzerland
Tel: +41 22 37 92158
Email: enrico.bozzo@unige.ch

Norbert Schartel
ESA XMM-Newton Project Scientist
Tel: +34 91 8131 184
Email: norbert.schartel@esa.int

Notes to editors

IGR J18410-0535 belongs to the class of star called Supergiant Fast X-Ray Transients, which were discovered by ESA’s INTEGRAL spacecraft in 2005.

Bozzo, E., et al., “XMM-Newton observations of IGR J18410-0535: the ingestion of a clump by a supergiant fast X-ray transient”, will be published in a forthcoming edition of Astronomy and Astrophysics.

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