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Related papers: Magnetic Field Evolution in an Accreting White Dwa…

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We studied possible evolution of the rotational period and the magnetic field of the X-ray source RX J0720.4-3125 assuming this source to be an isolated neutron star accreting from the interstellar medium. Magnetic field of the source is…

Astrophysics · Physics 2007-05-23 S. B. Popov , D. Yu. Konenkov

Observational estimates of the lifetimes and inferred accretion rates from debris discs around polluted white dwarfs are often inconsistent with the predictions of models of shielded Poynting-Robertson drag on the dust particles in the…

Solar and Stellar Astrophysics · Physics 2021-01-05 Miriam A Hogg , Ry Cutter , Graham Wynn

Very little is known about magnetic fields of extrasolar planets and brown dwarfs. We use the energy flux scaling law presented by Christensen et al. (2009) to calculate the evolution of average magnetic fields in extrasolar planets and…

Earth and Planetary Astrophysics · Physics 2015-05-19 Ansgar Reiners , Ulrich R. Christensen

A three-dimensional numerical model for an accretion process investigation in the magnetosphere of a white dwarf in magnetic cataclysmic variables is developed. The model assumes that the white dwarf has a dipole magnetic field with its…

Solar and Stellar Astrophysics · Physics 2016-02-04 P. B. Isakova , A. G. Zhilkin , D. V. Bisikalo

In this work we have analysed various data on radio pulsars and we have shown that magnetic field decay of a factor about 10-20 is necessary to explain their evolution, in particular to remove the discrepancy between the characteristic and…

Astrophysics · Physics 2009-11-10 O. H. Guseinov , A. Ankay , S. O. Tagieva

The evolutionary scenario of the neutron star magnetic field is examined assuming a spindown-induced expulsion of magnetic flux originally confined to the core, in which case the expelled flux undergoes ohmic decay. The nature of field…

Astrophysics · Physics 2009-10-31 Sushan Konar , Dipankar Bhattacharya

In most of the literature on evolution of cosmological magnetic fields, it is found that large-scale magnetic fields evolve as $B^{2}\propto a^{-4}$ (adiabatic magnetic decay) where $a$ is the cosmological scale factor and $B$ is the…

General Relativity and Quantum Cosmology · Physics 2020-04-23 Timothy Oreta , Bob Osano

There are no known examples of magnetic white dwarfs with fields larger than about 3MG paired with a non-degenerate companion in detached binary systems. The suggestion is that highly magnetic, isolated white dwarfs may originate from stars…

Solar and Stellar Astrophysics · Physics 2016-01-18 Lilia Ferrario

Many stars evolve into magnetic white dwarfs, and observations may help to understand when the magnetic field appears at the stellar surface, if and how it evolves during the cooling phase, and what are the mechanisms that generate it.…

Solar and Stellar Astrophysics · Physics 2021-10-04 S. Bagnulo , J. D. Landstreet

We consider the effect of Hall-drift on the evolution of magnetic fields in neutorn star crusts using a finite difference code. Previously, most studies have focused on the situation where the ohmic term dominates the evolution. Here, we…

Astrophysics · Physics 2007-05-23 Mikael Sahrling

We analyse the origin of the magnetic field decay in normal radio pulsars found by us in a recent study. This decay has a typical time scale $\sim 4 \times 10^5$~yrs, and operates in the range $\sim 10^5$~--~few$\times 10^5$~yrs. We…

High Energy Astrophysical Phenomena · Physics 2015-07-30 A. P. Igoshev , S. B. Popov

The accretion induced neutron star magnetic field evolution is studied through considering the accretion flow to drag the field lines aside and dilute the polar field strength, and as a result the equatorial field strength increases and is…

Astrophysics · Physics 2009-11-10 C. M. Zhang , Y. Kojima

We investigate the luminosity suppression and its effect on the mass-radius relation as well as cooling evolution of highly magnetised white dwarfs. Based on the effect of magnetic field relative to gravitational energy, we suitably modify…

Solar and Stellar Astrophysics · Physics 2022-04-06 Mukul Bhattacharya , Alexander J. Hackett , Abhay Gupta , Christopher A. Tout , Banibrata Mukhopadhyay

White dwarfs are often found in binary systems with orbital periods ranging from tens of minutes to hours in which they can accrete gas from their companion stars. In about 15% of these binaries, the magnetic field of the white dwarf is…

Solar and Stellar Astrophysics · Physics 2017-12-15 S. Scaringi , T. J. Macarone , C. D'Angelo , C. Knigge , P. J. Groot

Isolated magnetic white dwarfs have field strengths ranging from kilogauss to gigagauss, and constitute an interesting class of objects. The origin of the magnetic field is still the subject of a hot debate. Whether these fields are fossil,…

Solar and Stellar Astrophysics · Physics 2016-02-17 Enrique García-Berro , Mukremin Kilic , S. O. Kepler

The magnetic white dwarfs (MWDs) are found either isolated or in interacting binaries. They divide into two groups: a high field group (0.1-1,000MegaGauss) comprising some 13% of all white dwarfs (WDs), and a low field group (B<0.1MG) whose…

Solar and Stellar Astrophysics · Physics 2020-01-29 Lilia Ferrario , D. T. Wickramasinghe , Adela Kawka

Accreting white dwarfs are often found in close binary systems with orbital periods ranging from tens of minutes to several hours. In most cases, the accretion process is relatively steady, with significant modulations only occurring on…

Solar and Stellar Astrophysics · Physics 2021-10-19 S. Scaringi , D. de Martino , D. H. Buckley , P. J. Groot , C. Knigge , M. Fratta , K. Ilkiewicz , C. Littlefield , A. Papitto

We investigate the evolution of the magnetic field of isolated pulsars and of neutron stars in different kinds of binary systems, assuming the field to be originally confined to the crust. Our results for the field evolution in isolated…

Astrophysics · Physics 2009-10-30 Sushan Konar , Dipankar Bhattacharya

From 1979 to 2001, the magnetic axis of the white dwarf in the polar DP Leo slowly rotated by 50 deg in azimuth, possibly indicating a small asynchronism between the rotational and orbital periods of the magnetic white dwarf. We have…

Solar and Stellar Astrophysics · Physics 2015-06-18 K. Beuermann , S. Dreizler , F. V. Hessman , A. D. Schwope

A significant fraction of white dwarfs harbour a magnetic field with strengths ranging from a few kG up to about 1000 MG. The fraction appears to depend on the specific class of white dwarfs being investigated and may hold some clues to the…

Solar and Stellar Astrophysics · Physics 2018-01-18 A. Kawka