Higher memory effects in numerical simulations of binary black hole mergers

IF 3.6 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS Classical and Quantum Gravity Pub Date : 2024-07-25 DOI:10.1088/1361-6382/ad5d46
Alexander M Grant and Keefe Mitman
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Abstract

Gravitational memory effects are predictions of general relativity that are characterized by an observable effect that persists after the passage of gravitational waves. In recent years, they have garnered particular interest, both due to their connection to asymptotic symmetries and soft theorems and because their observation would serve as a unique test of the nonlinear nature of general relativity. Apart from the more commonly known displacement and spin memories, however, there are other memory effects predicted by Einstein’s equations that are associated with more subleading terms in the asymptotic expansion of the Bondi-Sachs metric. In this paper, we write explicit expressions for these higher memory effects in terms of their charge and flux contributions. Further, by using a numerical relativity simulation of a binary black hole merger, we compute the magnitude and morphology of these terms and compare them to those of the displacement and spin memory. We find that, although these terms are interesting from a theoretical perspective, due to their small magnitude they will be particularly challenging to observe with current and future detectors.
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双黑洞合并数值模拟中的高记忆效应
引力记忆效应是广义相对论的预言,其特点是在引力波通过后仍存在可观测的效应。近年来,由于它们与渐近对称性和软定理的联系,也因为对它们的观测将成为对广义相对论非线性性质的独特检验,它们引起了人们的特别关注。然而,除了众所周知的位移记忆和自旋记忆之外,爱因斯坦方程还预言了其他记忆效应,它们与邦迪-萨克斯度量渐近展开中的更多次项相关。在本文中,我们以电荷和通量贡献为基础,写出了这些高级记忆效应的明确表达式。此外,通过使用双黑洞合并的数值相对论模拟,我们计算了这些项的大小和形态,并将它们与位移和自旋记忆的项进行了比较。我们发现,尽管这些项从理论角度来看很有趣,但由于它们的幅度很小,用目前和未来的探测器来观测它们将特别具有挑战性。
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来源期刊
Classical and Quantum Gravity
Classical and Quantum Gravity 物理-天文与天体物理
CiteScore
7.00
自引率
8.60%
发文量
301
审稿时长
2-4 weeks
期刊介绍: Classical and Quantum Gravity is an established journal for physicists, mathematicians and cosmologists in the fields of gravitation and the theory of spacetime. The journal is now the acknowledged world leader in classical relativity and all areas of quantum gravity.
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