Abstract
V1674 Her (Nova Her 2021) is the fastest classical nova ever recorded, with an optical decline time of t2 ∼ 1 day, typically interpreted as evidence for a white dwarf mass close to the Chandrasekhar limit. We present a broadband X-ray study of V1674 Her combining contemporaneous XMM-Newton and NuSTAR observations in quiescence to directly constrain the white dwarf’s mass and magnetic field strength. The hard X-ray emission is modeled using a physically motivated postshock accretion column model that accounts for the temperature gradient in the flow and reflection from the white dwarf’s surface. Under the assumption that the accretion disk is truncated at the corotation radius, we obtain a white dwarf mass of (Formula presented) M=1.09−0.06+0.07M⊙. An independent constraint derived from timing analysis of the X-ray power spectrum yields a consistent value of M = 1.12 ± 0.06 M⊙. These values are significantly lower than those inferred from empirical decline-time relations, suggesting that such relations may overestimate white dwarf masses in extreme fast novae. From the inferred accretion rate and magnetospheric radius, we estimate a surface magnetic field strength of (Formula presented) B=21.3−5.7+6.6(stat)−8.1+12.9(sys)MG, placing V1674 Her at the high end of the magnetic field distribution for intermediate polars. Our results demonstrate that even the fastest novae do not necessarily host near-Chandrasekhar white dwarfs, highlighting the importance of direct X-ray constraints and suggesting that additional parameters beyond white dwarf mass play a key role in setting nova timescales.
| Original language | English |
|---|---|
| Article number | 38 |
| Journal | Astrophysical Journal |
| Volume | 1004 |
| Issue number | 1 |
| DOIs | |
| State | Published - Jun 10 2026 |
Keywords
- Cataclysmic variable stars (203)
- Classical novae (251)
- DQ Herculis stars (407)
- Fast novae (530)
- Novae (1127)
- White dwarf stars (1799)
- X-ray binary stars (1811)
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