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Distinguishing black-hole spin-orbit resonances by their gravitational wave signatures. II. Full parameter estimation

机译:通过引力波信号区分黑洞自旋轨道共振。二。全参数估计

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摘要

Gravitational waves from coalescing binary black holes encode the evolution of their spins prior to merger. In the post-Newtonian regime and on the precession time scale, this evolution has one of three morphologies, with the spins either librating around one of two fixed points (“resonances”) or circulating freely. In this paper we perform full parameter estimation on resonant binaries with fixed masses and spin magnitudes, changing three parameters: a conserved “projected effective spin” ξ and resonant family ΔΦ=0,π (which uniquely label the source); the inclination θJN of the binary’s total angular momentum with respect to the line of sight (which determines the strength of precessional effects in the waveform); and the signal amplitude. We demonstrate that resonances can be distinguished for a wide range of binaries, except for highly symmetric configurations where precessional effects are suppressed. Motivated by new insight into double-spin evolution, we introduce new variables to characterize precessing black hole binaries which naturally reflects the time scale separation of the system and therefore better encode the dynamical information carried by gravitational waves.
机译:来自合并的二进制黑洞的引力波编码合并之前其自旋的演化。在后牛顿时期的政权中,在进动时间尺度上,这种演化具有三种形态之一,其自旋围绕两个固定点(“共振”)之一释放或自由循环。在本文中,我们对具有固定质量和自旋幅度的共振二进制进行全参数估计,更改三个参数:保守的“投影有效自旋”ξ和共振族ΔΦ= 0,π(唯一标记源);二进制文件的总角动量相对于视线的倾斜度θJN(确定波形中进动效果的强度);和信号幅度。我们证明了共振可以区分大范围的二进制,除了进动效应被抑制的高度对称配置。出于对双自旋演化的新见解的推动,我们引入了新变量来表征进动黑洞二进制文件,这些变量自然反映了系统的时间尺度分离,因此可以更好地对重力波携带的动力学信息进行编码。

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