提出数值相对论中的完整初始边界值问题以模拟黑洞回声

IF 3.6 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS Classical and Quantum Gravity Pub Date : 2024-12-17 DOI:10.1088/1361-6382/ad9701
Conner Dailey, Erik Schnetter and Niayesh Afshordi
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引用次数: 0

摘要

为了在数值相对论中模拟黑洞回声(由潜在量子引力结构产生),我们最近描述了如何在球对称黑洞视界外实现反射边界。在这里,我们将这种方法推广到无对称性的时空,并使用广义谐波公式进行数值计算。我们将演化方程和数值实现转换为部分求和方案,使我们的方法更接近于一类可证明的数值稳定系统。我们实施了一个嵌入式边界数值框架,允许在矩形网格上实现任意形状的域,甚至允许边界在网格上演化和移动。作为该框架的演示,我们研究了黑洞视界内或视界外边界引力波散射的演变。这标志着我们朝着建立一个通用框架的目标迈出了一大步,这个框架可以获取由量子引力激发的黑洞合并视界附近的引力波形。
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Formulating the complete initial boundary value problem in numerical relativity to model black hole echoes
In an attempt to simulate black hole echoes (generated by potential quantum-gravitational structure) in numerical relativity, we recently described how to implement a reflecting boundary outside of the horizon of a black hole in spherical symmetry. Here, we generalize this approach to spacetimes with no symmetries and implement it numerically using the generalized harmonic formulation. We cast the evolution equations and the numerical implementation into a Summation By Parts scheme, which seats our method closer to a class of provably numerically stable systems. We implement an embedded boundary numerical framework that allows for arbitrarily shaped domains on a rectangular grid and even boundaries that evolve and move across the grid. As a demonstration of this framework, we study the evolution of gravitational wave scattering off a boundary either inside, or just outside, the horizon of a black hole. This marks a big leap toward the goal of a generic framework to obtain gravitational waveforms for behaviors motivated by quantum gravity near the horizons of merging black holes.
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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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