Showing posts with label Special Stars. Show all posts
Showing posts with label Special Stars. Show all posts

Wednesday, December 29, 2010

A new glistering zirconium star found


Artist’s impression of LS IV – 14 116. The white clouds are rich in zirconium and lie above the blue surface of the star. Image: Natalie Behara

By Royal Astronomical Society, United Kingdom.

Published: December 8, 2010.

A team of astronomers led by graduate student Naslim and supervisor Simon Jeffery from Armagh Observatory in Northern Ireland has found what at first sight appears to be the most zirconium-rich star ever discovered. Zirconium, the material used by jewelers to make false diamonds, glitters in clouds above the star's surface.

The team made the discovery while looking for chemical clues that explain why a small group of stars reaching the end of their lives, known as helium-rich hot sub-dwarfs, have less hydrogen on their surfaces than other similar stars. Using data obtained with the Anglo-Australian Telescope at the Siding Spring Observatory in New South Wales, the team looked at the evolved star LS IV-14 116, which is 2,000 light-years from the Sun in the direction of the border between the constellations Capricornus and Aquarius.

The scientists used the telescope instruments to disperse the light of the star into a spectrum. Different elements and molecules give rise to characteristic patterns in stellar spectra, allowing Earth-based scientists to determine their composition.

As expected, the spectrum of LS IV-14 116 had the usual lines arising from more common elements, but other strong lines were less easy to identify. A careful study showed four of these lines were due to a form of zirconium that only exists at temperatures above 36,000° Fahrenheit (20,000° Celsius) and that had never previously been found in an astronomical spectrum.

Alan Hibbert, from Queen's University Belfast, computed a model of the zirconium atom to predict the expected line strengths. With this information, the team measured the zirconium abundance in LS IV-14 116 to be 10,000 times as high as in the Sun — meaning that 1 atom in every 200,000 is zirconium rather than 1 in 2 billion. Further work showed the remaining unidentified lines to come from strontium, germanium, and yttrium. These elements are found to be between 1,000 and 10,000 times more abundant than normal.

The Armagh team argued that the unusual abundances in LS IV-14 116 are caused by the formation of cloud layers in the star's atmosphere — the only part of a star that can be seen directly. High concentrations of certain elements, mainly metals heavier than calcium, build up in these clouds, but the same elements are scarce in layers above and below, meaning that their overall abundance is near normal. Natalie Behara, now at the University Libre de Bruxelles, calculated models of the star's atmosphere. This may well have a dramatic appearance, with many thin cloud layers, each due to a different metal.

The team also suggests that the star is shrinking from being a bright cool giant to a faint hot sub-dwarf. As the star shrinks, different elements sink down or float up in the atmosphere to a region where they become highly visible, making the apparent composition sensitive to the star's recent history.

Most stars like the Sun have about 10 zirconium atoms for every million silicon atoms. LS IV-14 116 has 2 million zirconium atoms for every 1 million silicon atoms. It is estimated that the zirconium layer seen in LS IV-14 116 would weigh about 4 billion tons, or 4,000 times the world's annual production of zirconium.

"It was very exciting to discover these completely new chemical signatures in our data,” said Jeffery. “The peculiar abundances measured in this star, and hopefully in others, offer a new tool to explore a stage of stellar evolution that is extremely difficult to observe directly."

"The huge excess of zirconium was a complete surprise,” said Naslim. “We had no reason to think this star was more peculiar than any other faint blue star discovered so far."

Thursday, December 25, 2008

List of largest known stars


VY Canis Majoris. Material ejected by the star is visible in this 2004 image captured by the Hubble Space Telescope's Advanced Camera for Surveys, using polarizing filters. Credit: NASA/ESA/R Humphreys/U Minnesota)

Below is a list of the largest known stars by radius (half of the diameter). A unit of measurement is the radius of the Sun (approximately 695,500 kilometers, or 432,450 miles).

List of the largest stars(top to bottom = large to small)


Star name Solar radii= 1
VY Canis Majoris1800-2100 times
WOH G642000
VV Cephei A1600-1900
V354 Cephei1520
RW Cephei1260-1610
KW Sagitarii1460
KY Cygni1420 or 1440
Mu Cephei(Garnet star)1420
Betelgeuse950-1000
V509 Cassiopeiae910
V838 Monocerotis800
V382 Carinae747
Antares700
S Pegasi580
S Doradus550
T Cephei540
S Orionis530
W Hydrae520
119 Tauri510
R Cassiopeiae500
Delta Canis Majoris482
Chi Cygni470
Alpha Herculis460
Rho Cassiopeiae450
Mira A 400
Eta Carinae400
R Doradus370
HR Carinae350
R Leonis350
The Pistol Star340
La Superba300
Deneb220
LBV 1806-20200
Epsilon Aurigae A175
Zeta Aurigae160
Epsilon Pegasi 150
Gamma Crucis113
Gamma Andromedae83
Alpha Leporis77
Rigel70
Epsilon Carinae70
R Coronae Borealis65
Canopus65
Delta Orionis 60
Zeta Orionis60
Alpha Persei 60
Zeta Geminorum60
Eta Aquilae60
Gamma Draconis50
Aldebaran 43
Beta Ursae Minoris 41
Beta Cygni A116

Tuesday, December 23, 2008

A hyperfast star is proven to be alien to our galaxy



Over 10,000 stars covering a region about 130 light-years wide can be seen in this LMC image. AURA/STScI/NASA

January 31, 2008

Provided by the Carnegie Institution for Science


A young star is speeding away from the Milky Way so fast that astronomers have been puzzled by where it came from; based on its young age it has traveled too far to have come from our galaxy. Now by analyzing its velocity, light intensity, and for the first time it tell-tale elemental composition, Carnegie astronomers Alceste Bonanos and Mercedes Lopez-Morales, and collaborators Ian Hunter and Robert Ryans from Queen's University Belfast have determined that it came from our neighboring galaxy, the Large Magellanic Cloud (LMC). The result suggests that it was ejected from that galaxy by a yet-to-be-observed massive black hole.

The star, dubbed HE 0437-5439, is an early-type star and one of ten so-called hypervelocity stars so far found speeding away from the Milky Way. "But this one is different from the other nine," comments Lopez-Morales. "Their type, speed, and age make them consistent with having been ejected from the center of our galaxy, where we know there is a super-massive black hole. This star, discovered in 2005, initially appeared to have an elemental makeup like our Sun's, suggesting that it, too, came from the center of our galaxy. But that didn't make sense because it would have taken 100 million years to get to its location, and HE 0437-5439 is only 35 million years old."

To explain the enigma, or "paradox of youth," the discoverers proposed that HE 0437-5439 was either a so-called blue straggler, a relatively young, massive star resulting from the merger of two low-mass stars from the Milky Way, or it originated from the LMC.

"We were intrigued by the conundrum and decided to take up the challenge to solve this," states Bonanos. "Stars in the LMC are known to have lower elemental abundances than most stars in our galaxy, so we could determine if its chemistry was more like that galaxy's or our own."

The team confirmed results of the previous study concerning the mass, age, and speed of the star. It is about 9 times the mass of our Sun, about 35 million years old, and it is zooming away from the Milky Way and the LMC into intergalactic space at 1.6 million miles per hour (2.6 million km/hour).

Although the previous study was able to roughly estimate the star's elemental composition, the measurements were not detailed enough to determine if the elements match stars in our galaxy, or are characteristic of stars from the LMC. These astronomers were able to measure the relative abundances of certain elements for the first time in any hypervelocity star. The relative abundance of key elements tells them where a star originated.

"We've ruled out that the star came from the Milky Way," explains Bonanos. "The concentration of elements in the LMC stars are about half those in our Sun. Like evidence from a crime scene, the fingerprints point to an origin in the LMC."

Based on the speed of the star's rotation measured by the discoverers, and confirmed by this team, the astronomers believe that the star was originally part of a binary system. The binary could have passed close to a black hole 1,000 the mass of the Sun. As one star was pulled into the black hole, the other was whipped into frenzy and flung out of the galaxy.

"This is the first observational clue that a massive black hole exists somewhere in the LMC. We look forward to finding out where this black hole might be," concludes Bonanos.

Wednesday, November 19, 2008

Special stars: Gliese 105



Gliese 105 A and C
Graphic: Nasa, Hubble Telescope


A small triple system. The C star, a red dwarf, is with 2600 kelvin surface temperature the coolest known main sequence star. Its mass is just enough to start the hydrogen fusion.
The B star is a bigger red dwarf, A is a yellow-orange star.


Constellation: Cetus
Distance: 23.5 light-years
Space between Gliese 105 A and B: 1200 AU
Space between Gliese 105 A and C: 24 AU

Gliese 105 A

Spectral class: K3
Visual magnitude: 5.82
Luminosity: 0.21 * Sun
Mass: 0.81 * Sun
Diameter: 0.85 * Sun


Gliese 105 B

Spectral class: M3.5
Visual magnitude: 12
Luminosity: 0.001 * Sun
Mass: 0.21 * Sun
Diameter: 0.28 * Sun

Gliese 105 C


Spectral class: M7
Luminosity: 0.0000084 * Sun
Mass: 0.082 * Sun


Kappa Ceti:



Photo: ESO Online Digitized Sky Survey

A yellow star of sunlike measures, but with much more raving attributes. It is a superflare star with eruptions a million times heavier than those of our Sun. They are caused by disturbances of the magnetic field from a still undiscovered near companion.

Constellation: Cetus
Age: 800 million years
Distance: 29.87 light-years
Spectral class: G5
Visual magnitude: 4.83
Luminosity: 0.851 * Sun
Mass: 1 * Sun
Diameter: 0.984 * Sun
Radial velocity: 18.9 km/sec

Special star: Delta Pavonis



Photo: ESO Online Digitized Sky Survey

Delta Pavonis

The yellow star is older as our Sun, but besides very similar to it. It is one of the main targets for the search of Earth-like planets and life.

Constellation: Pavo
Distance: 19.92 light-years
Spectral class: G8
Visual magnitude: 3.55
Luminosity: 1.231 * Sun
Mass: 0.98 * Sun
Diameter: 1.188 * Sun
Radial velocity: -21.7 km/sec

Spacial Stars: Gliese 229



The red dwarf and right to it the tiny brown dwarf.
Photo: Nasa, Hubble Telescope

A pair of a red dwarf which is a flare star and a brown dwarf.

Constellation: Lepus
Age: 3 billion years
Distance: 18.8 light-years
Radial velocity: 5.2 km/sec
Space between Gliese 229 A and B: 44 AU

Gliese 229 A

Spectral class: M1

Visual magnitude: 8.15

Luminosity: 0.016×Sun

Mass: 0.46×Sun

Diameter: 0.527×Sun

Gliese 229 B(Brown Dwarf):

Luminosity: 0.000006× Sun

Mass: 0.05× Sun (45× Jupiter)

Diameter: 0.1027× Sun (1×Jupiter)

Spacial Star: Altair


Altair:

Graphic: Zina Deretsky, National Science Foundation

A blue-white star, which is quite good visible in summer on the northern hemisphere. Altair is one of the fastest rotating stars we know of. In 6.5 hours it rotates once. The smaller Sun needs 600 hours for this. Due to its fast rotation Altair is strongly oblate on its poles.

Constellation: Aquila

Age:
less than 1 billion years

Distance:
16.77 light-years

Spectral class:
A7

Visual magnitude:
0.77

Luminosity:
11.39× Sun

Mass:
2×Sun

Diameter:
1.631×Sun

Radial velocity:
-26.1 km/sec

A list of unusual, extreme and notable stars



The Orion Nebula, a stellar nursery.
Photo: Nasa

Stars with a distance less than 2000 light-years (ordered by their distance from us):

1. Altair
2. Gliese 229
3. Delta Pavonis
4. Gliese 105
5. Kappa Ceti
6. The Methane Dwarf
7. TVLM513-46546
8. GJ 3685A
9. 18 Scorpii
10. G29-38
11. AB Doradus
12. Castor
13. Diamond Star
14. Delta Equulei
15. Gliese 710
16. DENIS-P J020529.0-1159
17. Alpha Caeli
18. Mizar and Alcor
19. Phecda
20. Diphda
21. Rotanev
22. Cor Caroli
23. II Pegasi
24. Hyadum I
25. HR 8210
26. BO Microscopii
27. Zubeneschamali
28. BD -22°5866
29. Alkes
30. Hang-loose Binary
31. Sigma Octantis
32. Gamma Comae Berenices
33. EF Eridanus
34. Alpha Arae
35. Dabih
36. AE Aquarii
37. WD0137-349
38. Chi Cygni
39. RX-J185635-375
40. GY Andromedae
41. R Coronae Australis
42. Z Camelopardalis
43. Geminga
44. L1014
45. CW Leonis
46. R Aquarii
47. Helix Nebula
48. Phi Persei
49. FK Comae Berenices
50. L1157
51. HD 12545
52. 32 Cygni
53. 2MASS J053521840546085
54. HH 34
55. V380 Orionis
56. Rosette HH1
57. Nova Persei 1901
58. Nova Herculis 1934
59. NGC 2440
60. RX J0806
61. FU Orionis
62. MACHO-LMC-5