Magnetic field evolution of white dwarfs in strongly interacting binary star systems

Type: Article

Publication Date: 2009-12-09

Citations: 33

DOI: https://doi.org/10.1111/j.1365-2966.2009.15935.x

Abstract

The surface magnetic field strength of white dwarfs is observed to vary from very little to around 109 G. Here, we examine the proposal that the strongest fields are generated by dynamo action during the common envelope phase of strongly interacting stars that leads to binary systems containing at least one white dwarf. The resulting magnetic field depends strongly on the electrical conductivity of the white dwarf, the lifetime of the convective envelope and the variability of the magnetic dynamo. We assess the various energy sources available and estimate necessary lifetimes of the common envelope. In the case of a dynamo that leads a randomly oriented magnetic field, we find that the induced field is confined to a thin boundary layer at the surface of the white dwarf. This then decays away rapidly upon dispersal of the common envelope. The residual field is typically less than 10−8 times the strength of the external field. Only in the case where there is some preferential direction to the dynamo-generated field can an induced field, which avoids rapid decay, be produced. We show that a surface field of a magnitude a few per cent of the external field may be produced after a few Myr. In this case, the residual field strength is roughly proportional to the lifetime of the dynamo activity.

Locations

  • Monthly Notices of the Royal Astronomical Society - View - PDF
  • arXiv (Cornell University) - View - PDF
  • DataCite API - View

Similar Works

Action Title Year Authors
+ PDF Chat Magnetic field evolution for crystallization-driven dynamos in C/O white dwarfs 2024 Matias Castro-Tapia
Shuang‐Nan Zhang
A. Cumming
+ PDF Chat Constraining the origin of magnetic white dwarfs 2024 Ashok K. Mohapatra
Eric G. Blackman
+ Magnetic Field Evolution for Crystallization-driven Dynamos in C/O White Dwarfs 2024 Matias Castro-Tapia
Shuang‐Nan Zhang
A. Cumming
+ PDF Chat Formation of high-field magnetic white dwarfs from common envelopes 2011 Jason Nordhaus
Sarah Wellons
David S. Spiegel
Brian D. Metzger
Eric G. Blackman
+ On the origin of high-field magnetic white dwarfs 2012 E. Garcı́a–Berro
Santiago Torres
P. Lorén–Aguilar
Gabriela Aznar–Siguán
Judit Camacho
B. Külebi
J. Isern
L. G. Althaus
A. H. Córsico
+ PDF Chat Are white dwarf magnetic fields in close binaries generated during common-envelope evolution? 2019 Diogo Belloni
M. R. Schreiber
+ Multiple channels for the onset of magnetism in isolated white dwarfs 2022 S. Bagnulo
J. D. Landstreet
+ PDF Chat Magnetic fields in isolated and interacting white dwarfs 2019 Lilia Ferrario
D. T. Wickramasinghe
A. Kawka
+ The Magnetic Fields of White Dwarfs in Cataclysmic Variables 2018 Gordon P. Briggs
Lilia Ferrario
Christopher A. Tout
D. T. Wickramasinghe
+ The Magnetic Fields of White Dwarfs in Cataclysmic Variables 2019 Gordon P. Briggs
Lilia Ferrario
Christopher A. Tout
D. T. Wickramasinghe
+ PDF Chat Magnetic field evolution in accreting white dwarfs 2002 A. Cumming
+ Rotation and Magnetism in Massive Stars 2012 Adrian T. Potter
+ PDF Chat Magnetic field breakout from white dwarf crystallization dynamos 2024 Daniel Blatman
Sivan Ginzburg
+ PDF Chat Magnetic Field Evolution in Accreting White Dwarfs 2003 A. Cumming
+ PDF Chat Multiple Channels for the Onset of Magnetism in Isolated White Dwarfs 2022 S. Bagnulo
J. D. Landstreet
+ PDF Chat Genesis of magnetic fields in isolated white dwarfs 2018 Gordon P. Briggs
Lilia Ferrario
Christopher A. Tout
D. T. Wickramasinghe
+ PDF Chat Magnetic field amplification during the common envelope phase 2016 Sebastian T. Ohlmann
F. K. Röpke
Rüdiger Pakmor
Volker Springel
Ewald Müller
+ PDF Chat Main sequence dynamo magnetic fields emerging in the white dwarf phase 2024 María E. Camisassa
J. R. Fuentes
Matthias R. Schreiber
A. Rebassa–Mansergas
Santiago Torres
R. Raddi
Inma Domínguez
+ PDF Chat Clues to the origin and properties of magnetic white dwarfs 2019 A. Kawka
+ PDF Chat Binary star origin of high field magnetic white dwarfs 2008 Christopher A. Tout
D. T. Wickramasinghe
James Liebert
Lilia Ferrario
J. E. Pringle

Works That Cite This (30)

Action Title Year Authors
+ PDF Chat A test of the planet–star unipolar inductor for magnetic white dwarfs 2021 N Walters
Jay Farihi
T. R. Marsh
S. Bagnulo
J. D. Landstreet
J. J. Hermes
N. Achilleos
Aislynn Wallach
Murdock Hart
Christopher J. Manser
+ PDF Chat Magnetic fields in isolated and interacting white dwarfs 2019 Lilia Ferrario
D. T. Wickramasinghe
A. Kawka
+ PDF Chat Luminosity and cooling of highly magnetized white dwarfs: suppression of luminosity by strong magnetic fields 2018 Mukul Bhattacharya
Banibrata Mukhopadhyay
Subroto Mukerjee
+ PDF Chat A fast spinning magnetic white dwarf in the double degenerate, super-Chandrasekhar system NLTT 12758 2016 A. Kawka
Gordon P. Briggs
S. Vennes
Lilia Ferrario
E. Paunzen
D. T. Wickramasinghe
+ PDF Chat Common envelope evolution: where we stand and how we can move forward 2013 Natalia Ivanova
Stephen Justham
Xiaodian Chen
Orsola De Marco
Chris L. Fryer
Evghenii Gaburov
Hongwei Ge
E. Glebbeek
Zhanwen Han
Xiang‐Dong Li
+ PDF Chat Are white dwarf magnetic fields in close binaries generated during common-envelope evolution? 2019 Diogo Belloni
M. R. Schreiber
+ PDF Chat Genesis of magnetic fields in isolated white dwarfs 2018 Gordon P. Briggs
Lilia Ferrario
Christopher A. Tout
D. T. Wickramasinghe
+ PDF Chat Mass transfer on a nuclear timescale in models of supergiant and ultra-luminous X-ray binaries 2019 M. Quast
N. Langer
Thomas M. Tauris
+ PDF Chat Magnetic dynamos in white dwarfs – I. Explaining the dearth of bright intermediate polars in globular clusters 2021 Diogo Belloni
M. R. Schreiber
M. Salaris
Thomas J. Maccarone
M. Zorotovic
+ PDF Chat The evolutionary state of short-period magnetic white dwarf binaries 2012 E. Breedt
B. T. Gänsicke
J. Girven
A. J. Drake
C. M. Copperwheat
S. G. Parsons
T. R. Marsh