The EBLM Project XVIII. 3D Obliquities of Five Low-Mass Eclipsing Binaries
arXiv:2511.23430 · doi:10.1093/mnras/stag1334
Abstract
The formation of tight stellar binaries remains an unsolved problem. There is too much angular momentum in a collapsing and fragmenting protostellar cloud to form a stellar binary in situ with a separation less than an AU, yet thousands of these short-period binaries have been discovered. One indication of a binary's formation is the angle between the stellar spin and orbital axes --- its obliquity. The classical method for determining projected stellar obliquities is the Rossiter-McLaughlin effect. This has been applied to 132 hot Jupiters, but only a handful of stellar binaries. Of the binary systems with measured projected obliquities, even fewer have measured 3D obliquities. In this paper, we add five more short-period binary 3D obliquity measurements to the sample previously consisting of one system. We present Rossiter-McLaughlin measurements for EBLM J0239-20, EBLM J0941-31, EBLM J1037-25, EBLM J1141-37, and EBLM J2025-45. These systems consist of an M-dwarf eclipsing an F/G type primary. We combine CORALIE and HARPS spectroscopy with TESS photometry of primary and secondary eclipses. We show that even though the sky-projected obliquities seem to be aligned, there is modest but non-zero spin-orbit misalignment ( between 5 and 20). Our primary stars straddle the Kraft break at . We derive the M-dwarf masses and radii to precisions better than 3\%. With the exception of EBLM J0941-31, each system has an inflated radius, exceeding stellar model predictions by more than 5.
Accepted into MNRAS
References in corpus (22)
- Gaia Data Release 3: Summary of the content and survey properties
- Tidal dissipation in stars and giant planets
- The Radial Velocity Experiment (RAVE): second data release
- exoplanet: Gradient-based probabilistic inference for exoplanet data & other astronomical time series
- TESS Eclipsing Binary Stars. I. Short cadence observations of 4584 eclipsing binaries in Sectors 1-26
- Tidal dissipation in evolving low-mass and solar-type stars with predictions for planetary orbital decay
- Gaia Data Release 3. The first Gaia catalogue of eclipsing binary candidates
- The EBLM Project IV. Spectroscopic orbits of over 100 eclipsing M dwarfs masquerading as transiting hot-Jupiters
- Origins of Hot Jupiters from the Stellar Obliquity Distribution
- The BEBOP radial-velocity survey for circumbinary planets I. Eight years of CORALIE observations of 47 single-line eclipsing binaries and abundance constraints on the masses of circumbinary planets
- Tidal dissipation due to inertial waves can explain the circularization periods of solar-type binaries
- The EBLM Project VI. The mass and radius of five low-mass stars in F+M binaries discovered by the WASP survey
- The EBLM project -- VIII. First results for M-dwarf mass, radius and effective temperature measurements using CHEOPS light curves
- An eccentric Brown Dwarf eclipsing an M dwarf
- THE BANANA PROJECT. VI. Close double stars are well aligned with noticeable exceptions; results from an ensemble study using apsidal motion and Rossiter-McLaughlin measurements
- The EBLM project. VII. Spin-orbit alignment for the circumbinary planet host EBLM J0608-59 A/TOI-1338 A
- The EBLM project X. Benchmark masses, radii and temperatures for two fully convective M-dwarfs using K2
- The TESS light curve of the eccentric eclipsing binary 1SWASP J011351.29+314909.7 -- no evidence for a very hot M-dwarf companion
- G 68-34: A Double-Lined M-Dwarf Eclipsing Binary in a Hierarchical Triple System
- The OATMEAL Survey. III. An Aligned Transiting Warm Brown Dwarf and Evidence for Quiescent Brown Dwarf Migration
- True spin-orbit obliquities distribution: data-driven confirmation of no clustering of misaligned planets
- The OATMEAL Survey. II. The 3D spin-orbit obliquity of an eccentric transiting brown dwarf in the Ruprecht 147 open cluster