English

A Deep Precursor-Dip-Main Superoutburst Sequence in VW Hydri Observed with TESS: High-Cadence Constraints on the Thermal-Tidal Instability Model

Solar and Stellar Astrophysics 2026-02-11 v1

Abstract

We present 120s cadence TESS observations of three superoutbursts of the SU UMa-type dwarf nova VW Hydri. Two events (SO2 in Sectors 87+88 and SO3 in Sector 93) exhibit a pronounced, temporally pronounced precursor-dip followed by a rapid rise into the main superoutburst plateau. This morphology, previously seen in Kepler light curves of V1504 Cyg and V344 Lyr, is a key prediction of the thermal-tidal instability (TTI) model when a normal (precursor) outburst expands the disk only marginally beyond the 3:1 resonance radius, allowing the tidal instability to grow slowly and produce a deep dip approaching quiescence before rapid amplification drives the main superoutburst. A sliding-window time-frequency analysis reveals superhump power already during the decline and near minimum light, with a smooth period evolution across the dip and stabilization after the system returns to the hot state, consistent with the growth and saturation of disk eccentricity at the 3:1 resonance. From the stabilized Stage A superhump periods, we infer a representative mass ratio q=0.131±0.002q = 0.131 \pm 0.002. Combined with either a typical SU UMa white-dwarf mass prior or the semi-empirical donor sequence at an orbital period of 107~min, the implied component masses are M10.6M_1 \simeq 0.6--1.0M1.0\,M_\odot and M20.08M_2 \simeq 0.08--0.14M0.14\,M_\odot, ruling out a brown-dwarf donor and establishing VW~Hyi as a benchmark system for testing tidal-instability models in low-qq dwarf novae.

Keywords

Cite

@article{arxiv.2602.09680,
  title  = {A Deep Precursor-Dip-Main Superoutburst Sequence in VW Hydri Observed with TESS: High-Cadence Constraints on the Thermal-Tidal Instability Model},
  author = {Bisi Bernard Ogunwale and Shara Michael and Avi Shporer and Dafne Guetta and Lev Tal-Or},
  journal= {arXiv preprint arXiv:2602.09680},
  year   = {2026}
}

Comments

16 pages, 8 figures, submitted to Astrophysical Journal