Showing posts with label V445 Puppis. Show all posts
Showing posts with label V445 Puppis. Show all posts

Wednesday, July 29, 2026

NAM 2026: Mystery 'bullets' seen in Milky Way's only helium nova

Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2013 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick.
Licence type: Attribution (CC BY 4.0)



Mysterious high-speed "bullets" – clumps of possibly oxygen-rich gas travelling at up to 20 million miles per hour – have been discovered shooting out of the rarest stellar explosion in our galaxy.

They were spotted after a dust of debris surrounding the Milky Way's only known helium nova finally cleared after more than 20 years, revealing that an unusual stellar system was to blame for the extraordinary explosion.

But the origin of the "bullets" is an enigma that has left astronomers puzzled – nothing of their kind has ever been observed in other novae throughout the universe.

Using observations from multiple telescopes spanning two decades, John Mills, a researcher and PhD student at the University of Warwick, showed that V445 Puppis – which disappeared behind a cloud of its own debris at the turn of the century – consists of a white dwarf feeding on a rare helium star.

The discovery confirms for the first time the nature of the binary system responsible for the Milky Way's only currently confirmed helium nova, providing an unprecedented opportunity to study one of the rarest types of stellar explosions.

The research is being presented this week at the Royal Astronomical Society's National Astronomy Meeting in Birmingham.

A nova is a sudden, explosive outburst of energy in a binary star system. These occur when a white dwarf – the dense remnant left behind after a Sun-like star dies – pulls gas from the nearby companion star. As this material accumulates on the white dwarf's surface, rising temperatures and pressures trigger a runaway thermonuclear explosion.

"The explosion's outflow has now faded sufficiently for us to probe its origin, and so we can confirm that the star system does indeed consist of a white dwarf grabbing material off an extremely rare type of star called a helium star," said Mills.

Almost all known novae are fuelled by hydrogen-rich material. Helium novae are different. Instead, the white dwarf accretes hydrogen-poor gas that is rich in helium, making these eruptions exceptionally rare and poorly understood.

"V445 Puppis has long stood out amongst novae for its complete lack of hydrogen. How could such an event be completely devoid of the most abundant element in the universe?" said Mills.

V445 Puppis is the only known helium nova in the Milky Way, making it astronomers' sole opportunity currently to investigate this unusual class of explosion in detail.

When V445 Puppis erupted in late 2000, it launched an enormous bipolar outflow, initially observed in infrared stretching more than a trillion miles across space. The eruption created a thick disc of dust that completely obscured the star system. For more than two decades, astronomers could study the expanding debris but could not directly determine what kind of stars had produced it.

Finally, the veil of dust thinned enough for the hidden system to emerge.

Combining infrared observations from the European Southern Observatory's Very Large Telescope, optical imaging from the Hubble Space Telescope, long-term spectroscopy from the Southern African Large Telescope, and photometric observations from NASA's TESS mission, Mills was able to reveal the binary system in unprecedented detail.

The observations show that the white dwarf is accreting material from a helium star – a star that has lost its outer hydrogen envelope, probably through previous interactions with its companion. Helium stars are extremely rare: there are estimated to be only a few thousand stripped helium stars among the hundreds of billions of stars in the Milky Way.

Also embedded within the nova's outflowing debris cloud were high-speed "bullets" of possibly oxygen-rich gas.

"The origin of these 'bullets' is a mystery. We suspect that these originated post-outburst, but 'bullets' of this kind have not been observed in any other nova," said Mills.

He also found that the system is actively transferring material once again, indicating that it has resumed the process that eventually led to the original explosion. The observations suggest that the two stars orbit each other every 3.7 days, around twice as long as previously thought.

Understanding helium novae could have far-reaching implications.

Astronomers suspect that repeated helium-rich eruptions may represent one pathway towards producing Type Ia supernovae – some of the brightest explosions in the universe.

"Because these supernovae shine with remarkably consistent brightness, they are special in their use as 'standard candles', used to measure distances to galaxies," explained Mills.

Type Ia supernovae have been used in Nobel Prize-winning research to show that the universe is accelerating.

"The culprits behind this galactic eruption have been an enduring mystery over the past 25 years, which is why it is very exciting to confirm that this helium nova was the result of a helium star accreting onto a white dwarf. I look forward to seeing how this result may help us uncover what powers other similar hydrogen-poor astronomical explosions, such as the famous Type Ia supernovae," said Mills.

Although many questions remain about whether helium novae can ultimately produce Type Ia supernovae, V445 Puppis now provides the clearest laboratory yet for testing that possibility.




Media contacts:

Sam Tonkin
Royal Astronomical Society
Mob: +44 (0)7802 877 700

press@ras.ac.uk

Dr Robert Massey
Royal Astronomical Society
Mob: +44 (0)7802 877 699

press@ras.ac.uk

Megan Eaves
Royal Astronomical Society

press@ras.ac.uk



Science contacts:

John Mills
University of Warwick

john.n.s.mills@warwick.ac.uk



Images & video

Image 1: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2013 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1s_FzZznBYqTmy9Fle9Uh9gTL5n63jByG/view?usp=drive_link

Image 2: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2015 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1bRyvPUEe3UX_Q4nTgsrc0uUw54bdBl3e/view?usp=drive_link

Image 3: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2013 with the F680N filter on Hubble’s Wide Field Camera 3 Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1EFipX6nbZdkIISwUdTViUpiSQpZd-Jq_/view?usp=drive_link

Image 4: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2015 with the F680N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1qytv64wVZKm3uNfz3BOw1e6BOmVnIrQ8/view?usp=drive_link

Image 5:Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2013 with the FQ727N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1IQcfH_q-WXbBtIsURJ_PQ5c-9umD6Gwi/view?usp=sharing

Image 6:Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2015 with the FQ727N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1NSX8hx-2GNqI__IaOTXrJsQd4MX3uW5-/view?usp=drive_link



Further information

The talk 'Long-term evolution of the helium nova V445 Puppis and the emergence of the underlying binary' will take place at NAM2026 at 09:45 BST on Wednesday 22 July 2026 in room TLC118/119. Find out more at: https://uobevents-national-astronomy-meeting-2026.eventsairsite.com/block-schedule.



Notes for editors

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Submitted by Sam Tonkin on Wed, 22/07/2026 - 00:01



Tuesday, November 17, 2009

Ticking Stellar Time Bomb Identified

The expanding shell
around V445 Puppis

Around the nova
V445 Puppis annotated

Around the nova V445 Puppis

Shell around V445 Puppis
(March 2005)

Shell around V445 Puppis
(December 2005)

Shell around V445 Puppis
(October 2006)

Shell around V445 Puppis
(March 2007)

The expanding shell
around V445 Puppis

Artist’s impression of vampire star

Astronomers find prime suspect for a Type Ia supernova

Using ESO’s Very Large Telescope and its ability to obtain images as sharp as if taken from space, astronomers have made the first time-lapse movie of a rather unusual shell ejected by a “vampire star”, which in November 2000 underwent an outburst after gulping down part of its companion’s matter. This enabled astronomers to determine the distance and intrinsic brightness of the outbursting object. It appears that this double star system is a prime candidate to be one of the long-sought progenitors of the exploding stars known as Type Ia supernovae, critical for studies of dark energy.

“One of the major problems in modern astrophysics is the fact that we still do not know exactly what kinds of stellar system explode as a Type Ia supernova,” says Patrick Woudt, from the University of Cape Town and lead author of the paper reporting the results. “As these supernovae play a crucial role in showing that the Universe’s expansion is currently accelerating, pushed by a mysterious dark energy, it is rather embarrassing.”

The astronomers studied the object known as V445 in the constellation of Puppis (“the Stern”) in great detail. V445 Puppis is the first, and so far only, nova showing no evidence at all for hydrogen. It provides the first evidence for an outburst on the surface of a white dwarf [1] dominated by helium. “This is critical, as we know that Type Ia supernovae lack hydrogen,” says co-author Danny Steeghs, from the University of Warwick, UK, “and the companion star in V445 Pup fits this nicely by also lacking hydrogen, instead dumping mainly helium gas onto the white dwarf.”

In November 2000, this system underwent a nova outburst, becoming 250 times brighter than before and ejecting a large quantity of matter into space.

The team of astronomers used the NACO adaptive optics instrument [2] on ESO’s Very Large Telescope (VLT) to obtain very sharp images of V445 Puppis over a time span of two years. The images show a bipolar shell, initially with a very narrow waist, with lobes on each side. Two knots are also seen at both the extreme ends of the shell, which appear to move at about 30 million kilometres per hour. The shell — unlike any previously observed for a nova — is itself moving at about 24 million kilometres per hour. A thick disc of dust, which must have been produced during the last outburst, obscures the two central stars.

“The incredible detail that we can see on such small scales — about hundred milliarcseconds, which is the apparent size of a one euro coin seen from about forty kilometres — is only possible thanks to the adaptive optics technology available on large ground-based telescopes such as ESO’s VLT,” says Steeghs.

A supernova is one way that a star can end its life, exploding in a display of grandiose fireworks. One family of supernovae, called Type Ia supernovae, are of particular interest in cosmology as they can be used as “standard candles” to measure distances in the Universe [3] and so can be used to calibrate the accelerating expansion that is driven by dark energy.

One defining characteristic of Type Ia supernovae is the lack of hydrogen in their spectrum. Yet hydrogen is the most common chemical element in the Universe. Such supernovae most likely arise in systems composed of two stars, one of them being the end product of the life of sun-like stars, or white dwarfs. When such white dwarfs, acting as stellar vampires that suck matter from their companion, become heavier than a given limit, they become unstable and explode [4].

The build-up is not a simple process. As the white dwarf cannibalises its prey, matter accumulates on its surface. If this layer becomes too dense, it becomes unstable and erupts as a nova. These controlled, mini-explosions eject part of the accumulated matter back into space. The crucial question is thus to know whether the white dwarf can manage to gain weight despite the outburst, that is, if some of the matter taken from the companion stays on the white dwarf, so that it will eventually become heavy enough to explode as a supernova.

Combining the NACO images with data obtained with several other telescopes [5] the astronomers could determine the distance of the system — about 25 000 light-years from the Sun — and its intrinsic brightness — over 10 000 times brighter than the Sun. This implies that the vampire white dwarf in this system has a high mass that is near its fatal limit and is still simultaneously being fed by its companion at a high rate. “Whether V445 Puppis will eventually explode as a supernova, or if the current nova outburst has pre-empted that pathway by ejecting too much matter back into space is still unclear,” says Woudt. “But we have here a pretty good suspect for a future Type Ia supernova!”
Notes

[1] White dwarfs represent the evolutionary end product of stars with initial masses up to a few solar masses. A white dwarf is the burnt-out stellar core that is left behind when a star like the Sun sheds its outer layers towards the end of its active life. It is composed essentially of carbon and oxygen. This process normally also leads to the formation of a surrounding planetary nebula.

[2] Adaptive optics is a technique that allows astronomers to obtain an image of an object free from the blurring effect of the atmosphere. See the adaptive optics page at ESO: http://www.eso.org/public/astronomy/technology/adaptive_optics.html


[4] This Chandrasekhar limit, named after the Indian physicist Subrahmanyan Chandrasekhar, is nearly 1.4 times the mass of the Sun. When a white dwarf reaches a mass above this limit, either by sucking matter from a companion or merging with another white dwarf, it will turn itself into a thermonuclear bomb that will burn carbon and oxygen explosively.

[5] The team also used the SOFI instrument on ESO’s New Technology Telescope, the IMACS spectrograph on the 6.5-metre Magellan Baade telescope, and the Infrared Survey Facility and the SIRIUS camera at the Sutherland station of the South African Astronomical Observatory.
More Information

This research was presented in a paper to appear in the 20 November 2009 issue of the Astrophysical Journal, vol. 706, p. 738 (“The expanding bipolar shell of the helium nova V445 Puppis”, by P. A. Woudt et al.).

The team is composed of P. A. Woudt and B. Warner (University of Cape Town, South Africa), D. Steeghs and T. R. Marsh (University of Warwick, UK), M. Karovska and G. H. A. Roelofs (Harvard-Smithsonian Center for Astrophysics, Cambridge MA, USA), P. J. Groot and G. Nelemans (Radboud University Nijmegen, the Netherlands), T. Nagayama (Kyoto University, Japan), D. P. Smits (University of South Africa, South Africa), and T. O’Brien (University of Manchester, UK).

ESO, the European Southern Observatory, is the foremost intergovernmental astronomy organisation in Europe and the world’s most productive astronomical observatory. It is supported by 14 countries: Austria, Belgium, the Czech Republic, Denmark, France, Finland, Germany, Italy, the Netherlands, Portugal, Spain, Sweden, Switzerland and the United Kingdom. ESO carries out an ambitious programme focused on the design, construction and operation of powerful ground-based observing facilities enabling astronomers to make important scientific discoveries. ESO also plays a leading role in promoting and organising cooperation in astronomical research. ESO operates three unique world-class observing sites in Chile: La Silla, Paranal and Chajnantor. At Paranal, ESO operates the Very Large Telescope, the world’s most advanced visible-light astronomical observatory. ESO is the European partner of a revolutionary astronomical telescope ALMA, the largest astronomical project in existence. ESO is currently planning a 42-metre European Extremely Large optical/near-infrared Telescope, the E-ELT, which will become “the world’s biggest eye on the sky”.

Links

Research paper: http://arxiv.org/abs/0910.1069

Contacts

Patrick Woudt
University of Cape Town,
South Africa
Phone: +27 21 650 5830
E-mail:
Patrick.Woudt@uct.ac.za

Danny Steeghs
University of Warwick, UK
Phone: +44 (0)2476 573873
Mobile: +44 (0)78 45555979
E-mail:
D.T.H.Steeghs@warwick.ac.uk

ESO La Silla - Paranal - ELT Press Officer: Henri Boffin - +49 89 3200 6222 - hboffin@eso.org
ESO Press Officer in Chile: Valeria Foncea - +56 2 463 3123 - vfoncea@eso.org

National contacts for the media: http://www.eso.org/public/outreach/eson/