English

A Short Intense Dynamo at the Onset of Crystallization in White Dwarfs

Solar and Stellar Astrophysics 2024-03-20 v3 High Energy Astrophysical Phenomena

Abstract

The origin of large magnetic fields (106 G\gtrsim 10^6~\mathrm{G}) in isolated white dwarfs is not clear. One possible explanation is that crystallization of the star's core drives compositional convection, which when combined with the star's rotation, can drive a dynamo. However, whether convection is efficient enough to explain the large intensity of the observed magnetic fields is still under debate. Recent work has shown that convection in cooling white dwarfs spans two regimes: efficient convection at the onset of crystallization, and thermohaline convection during most of the star's cooling history. Here, we calculate the properties of crystallization-driven convection for cooling models of several white dwarfs of different masses. We combine mixing-length theory with scalings from magneto-rotational convection to estimate the typical magnitude of the convective velocity and induced magnetic field for both scenarios. In the thermohaline regime, we find velocities 106\sim 10^{-6}--105 cm s110^{-5}~\mathrm{cm~s^{-1}}, with fields restricted to  100 G\lesssim~100~\mathrm{G}. However, when convection is efficient, the flow velocity can reach magnitudes of 102\sim 10^2--103 cm s110^3~\mathrm{cm~s^{-1}}, with fields of 106\sim 10^6--108 G10^8~\mathrm{G}, independent of the star's rotation rate. Thus, dynamos driven at the onset of crystallization could explain the large intensity magnetic fields measured for single white dwarfs.

Cite

@article{arxiv.2402.03639,
  title  = {A Short Intense Dynamo at the Onset of Crystallization in White Dwarfs},
  author = {J. R. Fuentes and Matias Castro-Tapia and Andrew Cumming},
  journal= {arXiv preprint arXiv:2402.03639},
  year   = {2024}
}

Comments

Accepted for publication in ApJ Letters