Periodic orbits and their gravitational wave radiations around the Schwarzschild-MOG black hole

IF 6.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Physics of the Dark Universe Pub Date : 2025-02-01 DOI:10.1016/j.dark.2025.101816
Oreeda Shabbir , Mubasher Jamil , Mustapha Azreg-Aïnou
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Abstract

This article explores the motion of massive particles in the gravitational field of a modified gravity (MOG) black hole (BH), characterized by the parameter α. Using the Hamiltonian formalism, the geodesic equations and the effective potential governing particle trajectories are derived. Key features, including the innermost stable circular orbit (ISCO) and the innermost bound circular orbit (IBCO), are analyzed, revealing their dependence on the particle’s energy, angular momentum, and the MOG parameter. In the extremal case, where α=1, the event horizon merges with the Cauchy horizon, forming a distinctive BH configuration. Numerical methods are employed to compute periodic orbits in this spacetime, with a comparison drawn to the Schwarzschild BH. The findings indicate that for α>0, periodic orbits around Schwarzschild-MOG BH exhibit lower energy requirements than those in Schwarzschild spacetime, whereas for 1<α<0, the energy requirements are higher. Precessing orbits near periodic trajectories are also examined, offering insights into their complex dynamical behavior. Finally, the gravitational wave (GW) radiation from the periodic orbits of a test particle around the Schwarzschild-MOG BH is examined, generating intricate waveforms that provide insights into the gravitational structure of the system.
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史瓦西- mog黑洞周围的周期轨道及其引力波辐射
本文探讨了以参数α为特征的修正重力黑洞(MOG)引力场中大质量粒子的运动。利用哈密顿公式,导出了测地线方程和有效势控制粒子轨迹。分析了最内层稳定圆轨道(ISCO)和最内层束缚圆轨道(IBCO)的主要特征,揭示了它们与粒子能量、角动量和MOG参数的关系。在极端情况下,当α= - 1时,事件视界与柯西视界合并,形成一个独特的黑洞构型。数值方法被用来计算这个时空中的周期轨道,并与史瓦西黑洞进行了比较。结果表明,对于α>;0,围绕史瓦西- mog黑洞的周期轨道的能量需求低于史瓦西时空,而对于−1<;α<0,能量需求更高。还检查了周期轨迹附近的进动轨道,提供了对其复杂动力学行为的见解。最后,研究人员检测了来自史瓦西mog黑洞周围测试粒子的周期轨道的引力波(GW)辐射,产生了复杂的波形,为了解该系统的引力结构提供了线索。
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来源期刊
Physics of the Dark Universe
Physics of the Dark Universe ASTRONOMY & ASTROPHYSICS-
CiteScore
9.60
自引率
7.30%
发文量
118
审稿时长
61 days
期刊介绍: Physics of the Dark Universe is an innovative online-only journal that offers rapid publication of peer-reviewed, original research articles considered of high scientific impact. The journal is focused on the understanding of Dark Matter, Dark Energy, Early Universe, gravitational waves and neutrinos, covering all theoretical, experimental and phenomenological aspects.
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