On the overlap reduction function of pulsar timing array searches for gravitational waves in modified gravity

IF 3.6 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Nina Cordes, Andrea Mitridate, Kai Schmitz, Tobias Schröder and Kim Wassner
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Abstract

Pulsar timing array (PTA) searches for gravitational waves (GWs) aim to detect a characteristic correlation pattern in the timing residuals of galactic millisecond pulsars. This pattern is described by the PTA overlap reduction function (ORF) , which is known as the Hellings–Downs (HD) curve in general relativity (GR). In theories of modified gravity, the HD curve often receives corrections. Assuming, e.g. a subluminal GW phase velocity, one finds a drastically enhanced ORF in the limit of small angular separations between pulsar a and pulsar b in the sky, . In particular, working in harmonic space and performing an approximate resummation of all multipole contributions, the auto correlation coefficient Γaa seems to diverge. In this paper, we confirm that this divergence is unphysical and provide an exact and analytical expression for Γaa in dependence of the pulsar distance La and the GW phase velocity . In the GR limit and assuming a large pulsar distance, our expression reduces to . In the case of subluminal phase velocity, we show that the regularization of the naive divergent result is a finite-distance effect, meaning that Γaa scales linearly with fLa, where f is the GW frequency. For superluminal phase velocity (subluminal group velocity), which is relevant in the case of massive gravity, we correct an earlier analytical result for Γab. Our results pave the way for fitting modified-gravity theories with nonstandard phase velocity to PTA data, which requires a proper understanding of the auto correlation coefficient Γaa.
脉冲星定时阵列的重叠约简函数在修正重力条件下搜索引力波
脉冲星时序阵列(PTA)搜索引力波的目的是探测银河系毫秒脉冲星时序残差的特征相关模式。这种模式被描述为PTA重叠还原函数(ORF),即广义相对论(GR)中的Hellings-Downs (HD)曲线。在修正重力理论中,HD曲线经常得到修正。假设,例如,一个亚光速的GW相速度,我们发现在天空中脉冲星a和脉冲星b之间的小角间隔的极限处,ORF急剧增强。特别是,在谐波空间中工作并对所有多极贡献进行近似恢复时,自相关系数Γaa似乎会发散。在本文中,我们证实了这种散度是非物理的,并提供了Γaa与脉冲星距离La和GW相速度的关系的精确解析表达式。在GR极限下,假设脉冲星距离较大,我们的表达式化为。在亚光速相速度的情况下,我们表明初始发散结果的正则化是有限距离效应,这意味着Γaa与fLa线性缩放,其中f是GW频率。对于与大质量重力有关的超光速相速度(亚光速群速度),我们对Γab修正了先前的分析结果。我们的结果为将非标准相速度修正重力理论拟合到PTA数据铺平了道路,这需要正确理解自相关系数Γaa。
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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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