arXiv Analytics

Sign in

arXiv:0906.1984 [astro-ph.HE]AbstractReferencesReviewsResources

Discovery of A 693.5 s Period in the X-ray Binary 4U 1820-30: A Superhump Interpretation

Zhongxiang Wang, Deepto Chakrabarty

Published 2009-06-10, updated 2010-02-09Version 2

The X-ray source 4U1820-30 in the globular cluster NGC 6624 is known as the most compact binary among the identified X-ray binaries. Having an orbital period of 685.0 s, the source consists of a neutron star primary and likely 0.06--0.08 Msun white dwarf secondary. Here we report on far-ultraviolet (FUV) observations of this X-ray binary, made with the Space Telescope Imaging Spectrograph on board the Hubble Space Telescope. From our Fourier spectral analysis of the FUV timing data, we obtain a period of 693.5+/-1.3 s, which is significantly different from the orbital period. The light curve folded at this period can be described by a sinusoid, with a fractional semiamplitude of 6.3% and the phase zero (maximum of the sinusoid) at MJD 50886.015384+/-0.000043 (TDB). While the discovered FUV period may be consistent with a hierarchical triple system model that was previously considered for 4U 1820-30, we suggest that it could instead be the indication of superhump modulation, which arises from an eccentric accretion disk in the binary. The X-ray and FUV periods would be the orbital and superhump periods, respectively, indicating a 1% superhump excess and a white-dwarf/neutron-star mass ratio around 0.06. Considering 4U 1820-30 as a superhump source, we discuss the implications.

Comments: 5 pages, 5 figures, Accepted for publication in ApJ
Categories: astro-ph.HE
Related articles: Most relevant | Search more
arXiv:2403.09595 [astro-ph.HE] (Published 2024-03-14)
A comprehensive study of orbital evolution of LMC X-4: Existence of a second derivative of the orbital period
arXiv:0912.5412 [astro-ph.HE] (Published 2009-12-30)
X-ray Variations at the Orbital Period from Cygnus X-1 in the High/Soft State
arXiv:1409.1985 [astro-ph.HE] (Published 2014-09-06)
The orbital period of Swift J1816.7-1613 revealed by the Swift-BAT telescope