2025
Circular motion and collisions of charged spinning test particles around magnetized Schwarzschild black hole
OTEEV, Tursinbay; Zdeněk STUCHLÍK; Javlon RAYIMBAEV; Inomjon IBRAGIMOV; Murat SHARIBAEV et al.Basic information
Original name
Circular motion and collisions of charged spinning test particles around magnetized Schwarzschild black hole
Authors
OTEEV, Tursinbay; Zdeněk STUCHLÍK; Javlon RAYIMBAEV; Inomjon IBRAGIMOV; Murat SHARIBAEV and Ahmadjon ABDUJABBAROV
Edition
European Physical Journal C, New York (USA), SPRINGER, 2025, 1434-6044
Other information
Language
English
Type of outcome
Article in a journal
Field of Study
10308 Astronomy
Country of publisher
United States of America
Confidentiality degree
is not subject to a state or trade secret
References:
Impact factor
Impact factor: 4.800 in 2024
Organization unit
Institute of physics in Opava
UT WoS
001568455500005
EID Scopus
2-s2.0-105015493483
Keywords in English
genrela relativity;extended bodies;kerr;dynamics;orbits;equation;light;field
Tags
International impact, Reviewed
Changed: 27/1/2026 12:01, Mgr. Pavlína Jalůvková
Abstract
In the original language
The study of spinning charged particle dynamics around black holes in external fields offers insights into relativistic motion and the influence of spin-curvature and electromagnetic interactions. In this work, we investigate the motion of spinning charged test particles in the vicinity of Schwarzschild black holes immersed in asymptotically uniform magnetic fields. Using the Mathisson–Papapetrou–Dixon (MPD) equations, we derive the equations of motion and analyze the superluminal bound, which constrains the physically admissible values of the spin parameter. We investigate how this bound depends on the magnetic interaction parameter ω, which couples the particle’s charge to the external magnetic field. Furthermore, we explore the effective potential and examine how both spin and ω affect circular orbits and the dynamics of the particle. Our results reveal the nonlinear interplay between spin, curvature, and magnetic interaction, contributing to the broader understanding of charged spinning test particle motion in magnetized relativistic environments