Algol
A bright multiple star and prototype of Algol variables.
Algol, also called Beta Persei and nicknamed the Demon Star, is a bright multiple-star system in the constellation Perseus. It was among the first variable stars (other than novae) ever identified. The system contains three stars: Beta Persei Aa1, Aa2, and Ab. The hot, luminous primary, Aa1, and the larger but cooler and dimmer Aa2 regularly eclipse each other. Usually steady at magnitude 2.1, Algol dims to 3.4 every 2.86 days during partial eclipses that last about ten hours. The secondary eclipse—when the brighter star occults the fainter one—is very shallow and detectable only with photoelectric instruments. This type of eclipsing variable is now called an Algol variable.
An ancient Egyptian calendar of lucky and unlucky days, composed some 3,200 years ago, has been cited as the oldest known record of Algol, though this claim is disputed. The star’s association with demonic figures—the Gorgon in Greek tradition and a ghoul in Arabic tradition—suggests its variability may have been known long before the 17th century, but no firm evidence exists. The Arabic astronomer al-Sufi made no mention of any variability in his Book of Fixed Stars around 964. In 1667, Italian astronomer Geminiano Montanari noted Algol’s brightness changes, but the periodic nature was not understood until more than a century later. British amateur astronomer John Goodricke proposed in May 1783 that a dark body passing in front of the star—or a darker region rotating into view—caused the dips; for this he received the Copley Medal. In 1881, Harvard’s Edward Charles Pickering suggested Algol was an eclipsing binary, confirmed in 1889 when Hermann Carl Vogel detected periodic Doppler shifts in its spectrum, making it one of the first known spectroscopic binaries. Joel Stebbins used an early selenium-cell photometer at the University of Illinois Observatory to produce the first photoelectric study of a variable star, revealing the second minimum and a reflection effect between the stars. Difficulties explaining the spectrum led to the conjecture of a third star, confirmed four decades later.
The system has three confirmed and two suspected stellar components. From Earth, Aa1 and Aa2 form an eclipsing binary because their orbital plane aligns with our line of sight. These two are separated by only 0.062 astronomical units; the third star, Ab, orbits the pair at an average distance of 2.
Quick Facts
- Designation
- Beta Persei (β Per)
- System type
- Multiple star (three confirmed components)
- Apparent magnitude
- Usually near-constant at 2.1, dips to 3.4 every 2.86 days
- Eclipse period
- 2.86 days
- Distance
- 94 light-years
- Total mass
- About 5.8 solar masses
Facts from the source article.
Lore & Background
The variability of Algol was noted in 1667 by Italian astronomer Geminiano Montanari, but the periodic nature of its variations in brightness was not recognized until more than a century later, when the British amateur astronomer John Goodricke also proposed a mechanism for the star's variability. In May 1783, he presented his findings to the Royal Society, suggesting that the periodic variability was caused by a dark body passing in front of the star (or else that the star itself has a darker region that is periodically turned toward the Earth). For his report he was awarded the Copley Medal. In 1881, the Harvard astronomer Edward Charles Pickering presented evidence that Algol was actually an eclipsing binary. This was confirmed a few years later, in 1889, when the Potsdam astronomer Hermann Carl Vogel found periodic doppler shifts in the spectrum of Algol, inferring variations in the radial velocity of this binary system. Thus, Algol became one of the first known spectroscopic binaries. Joel Stebbins at the University of Illinois Observatory used an early selenium cell photometer to produce the first-ever photoelectric study of a variable star. The light curve revealed the second minimum and the reflection effect between the two stars. Some difficulties in explaining the observed spectroscopic features led to the conjecture that a third star may be present in the system; four decades later this conjecture was found to be correct.
The association of Algol with a demon-like creature (Gorgon in the Greek tradition, ghoul in the Arabic tradition) suggests that its variability was known long before the 17th century, but there is still no indisputable evidence for this. The Arabic astronomer al-Sufi said nothing about any variability of the star in his Book of Fixed Stars published c.964. An ancient Egyptian calendar of lucky and unlucky days composed some 3,200 years ago is said to be the oldest historical documentation of the discovery of Algol but the validity of this claim has been questioned. The name Algol derives from the Arabic word for ghoul. The English name 'Demon Star' derives from the same Arabic name. Algol was called Rōsh ha Sāṭān or 'Satan's Head' in Hebrew folklore, as stated by Edmund Chilmead, who called it 'Divels head' or Rosch hassatan. A Latin name for Algol from the 16th century was Caput Larvae or 'the Spectre's Head'. In ancient Rome, the name of the constellation Perseus was Perseus and Medusa's Head; an asterism representing the head of Medusa after Perseus had cut it off. Medusa is a gorgon so the star is also called Gorgonea Prima meaning 'first star of the gorgon'.
Reader's Guide
Algol is notable as the prototype of the Algol variables, a class of eclipsing binary stars. Its study led to the Algol paradox in the theory of stellar evolution: although components of a binary star form at the same time, and massive stars evolve much faster than the less massive stars, the more massive component Algol Aa1 is still in the main sequence, but the less massive Algol Aa2 is a subgiant star at a later evolutionary stage. The paradox can be solved by mass transfer: when the more massive star became a subgiant, it filled its Roche lobe, and most of the mass was transferred to the other star, which is still in the main sequence. In some binaries similar to Algol, a gas flow can be seen. The gas flow between the primary and secondary stars in Algol has been imaged using Doppler Tomography. This system also exhibits x-ray and radio wave flares. The x-ray flares are thought to be caused by the magnetic fields of the A and B components interacting with the mass transfer. The radio-wave flares might be created by magnetic cycles similar to those of sunspots, but because the magnetic fields of these stars are up to ten times stronger than the field of the Sun, these radio flares are more powerful and more persistent. The secondary component was identified as the radio emitting source in Algol using Very-long-baseline interferometry by Lestrade and co-authors. Magnetic activity cycles in the chromospherically active secondary component induce changes in its radius of gyration that have been linked to recurrent orbital period variations on the order of ≈ via the Applegate mechanism. Mass transfer between the components is small in the Algol system but could be a significant source of period change in other Algol-type binaries. About 7.3 million years ago it passed within 9.8 light-years of the Solar System and its apparent magnitude was about −2.5, which is considerably brighter than the star Sirius is today. Because the total mass of the Algol system is about 5.8 solar masses, at the closest approach this might have given enough gravity to perturb the Oort cloud of the Solar System somewhat and hence increase the number of comets entering the inner Solar System. However, the actual increase in net cometary collisions is thought to have been quite small.
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