Effect of rotation and magnetic field in the gyroscopic precession around a neutron star

Abstract General relativistic effects are essential in defining the spacetime around massive astrophysical objects. The effects can be captured using a test gyro. If the gyro rotates at some fixed orbit around the star, then the gyro precession frequency captures all the general relativistic effects...

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Main Authors: Kamal Krishna Nath, Ritam Mallick
Format: Article
Language:English
Published: SpringerOpen 2020-07-01
Series:European Physical Journal C: Particles and Fields
Online Access:http://link.springer.com/article/10.1140/epjc/s10052-020-8222-1
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spelling doaj-89fb2b5cfd764025a86dac7a5df8b5592020-11-25T02:48:04ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-07-0180711910.1140/epjc/s10052-020-8222-1Effect of rotation and magnetic field in the gyroscopic precession around a neutron starKamal Krishna Nath0Ritam Mallick1Indian Institute of Science Education and Research BhopalIndian Institute of Science Education and Research BhopalAbstract General relativistic effects are essential in defining the spacetime around massive astrophysical objects. The effects can be captured using a test gyro. If the gyro rotates at some fixed orbit around the star, then the gyro precession frequency captures all the general relativistic effects. In this article, we calculate the overall precession frequency of a test gyro orbiting a rotating neutron star or a rotating magnetar. We find that the gyro precession frequency diverges as it approaches a black hole, whereas, for a neutron star, it always remains finite. For a rotating neutron star, a prograde motion of the gyro gives a single minimum, whereas a retrograde motion gives a double minimum. We also find that the gyroscope precession frequency depends on the star’s mass and rotation rate. Depending on the magnetic field configuration, we find that of the precession frequency of the gyro differs significantly inside the star; however, outside the star, the effect is not very prominent. Also, the gyro precession frequency depends more significantly on the star’s rotation rate than its magnetic field strength.http://link.springer.com/article/10.1140/epjc/s10052-020-8222-1
collection DOAJ
language English
format Article
sources DOAJ
author Kamal Krishna Nath
Ritam Mallick
spellingShingle Kamal Krishna Nath
Ritam Mallick
Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
European Physical Journal C: Particles and Fields
author_facet Kamal Krishna Nath
Ritam Mallick
author_sort Kamal Krishna Nath
title Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
title_short Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
title_full Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
title_fullStr Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
title_full_unstemmed Effect of rotation and magnetic field in the gyroscopic precession around a neutron star
title_sort effect of rotation and magnetic field in the gyroscopic precession around a neutron star
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2020-07-01
description Abstract General relativistic effects are essential in defining the spacetime around massive astrophysical objects. The effects can be captured using a test gyro. If the gyro rotates at some fixed orbit around the star, then the gyro precession frequency captures all the general relativistic effects. In this article, we calculate the overall precession frequency of a test gyro orbiting a rotating neutron star or a rotating magnetar. We find that the gyro precession frequency diverges as it approaches a black hole, whereas, for a neutron star, it always remains finite. For a rotating neutron star, a prograde motion of the gyro gives a single minimum, whereas a retrograde motion gives a double minimum. We also find that the gyroscope precession frequency depends on the star’s mass and rotation rate. Depending on the magnetic field configuration, we find that of the precession frequency of the gyro differs significantly inside the star; however, outside the star, the effect is not very prominent. Also, the gyro precession frequency depends more significantly on the star’s rotation rate than its magnetic field strength.
url http://link.springer.com/article/10.1140/epjc/s10052-020-8222-1
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AT ritammallick effectofrotationandmagneticfieldinthegyroscopicprecessionaroundaneutronstar
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