40 Eridani BC (also known as Omicron-2 Eridani) is a
By combining the computed orbits with spectrographic data and the stars' nearby location, it was found that the brighter component was a "white dwarf," the highly compressed remnant of a star that has collapsed after exhausting its nuclear fuel. The fainter component is a "red dwarf," a low-luminosity, low-mass star that will feebly shine for hundreds of billions of years. While red dwarf stars may be the most prevalent types of "normal" stars in the galaxy, white dwarf stars are comparatively rare. 40 Eridani B is the second-brightest white dwarf known and is the only one that can easily be seen in backyard telescopes. It was also the first white dwarf star to have its mass determined by measuring its gravitational redshift, a characteristic of very dense objects.
Utilizing a technique called "speckle interferometry," Dr. Mason and his colleagues observed 40 Eridani BC over the course of six nights in early 2017 using the USNO's 66-cm (26-inch) "Great Equatorial" refractor telescope, purchased in 1873. The lens on this telescope was used by astronomer Asaph Hall to discover the moons of Mars, Phobos and Deimos, in 1877. Re-mounted at its present site in 1893, the telescope has been used for measuring double stars since that time.
Prior orbit calculations for 40 Eridani BC yielded a discrepancy between the mass of the white dwarf component derived from its orbital motion and that determined by its gravitational redshift.
"Due to the long period of most visual binaries and the understandable impatience of calculators," says Dr. Mason, "orbits are often calculated when they 'can' be and not necessarily when they 'should' be."
The newly reported observations by Dr. Mason et al. and archival observations allow a new orbit to be calculated which resolves that discrepancy. The new observations indicate that the components of 40 Eridani BC circle each other with a period of 230.29 +/- 0.68 years, about 20 years less than the previous determination. The mass of the white dwarf component is now believed to be 0.573 +/- 0.018 solar masses, about 0.15 solar mass greater than the previous estimate and closer to the result obtained by gravitational redshift.
Read more at: https://phys.org/news/2017-09-astronomers-mystery-white-dwarf-mass.html#jCp
