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Constructing gravitational waves from generic spin-precessing compact binary inspirals

机译:从通用旋转精细的二元润滑器构建引力波

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摘要

The coalescence of compact objects is one of the most promising sources, as well as the source of the first detections, of gravitational waves for ground-based interferometric detectors, such as advanced LIGO and Virgo. Generically, compact objects in binaries are expected to be spinning with spin angular momenta misaligned with the orbital angular momentum, causing the orbital plane to precess. This precession adds rich structure to the gravitational waves, introducing such complexity that an analytic closed-form description has been unavailable until now. We here construct the first closed-form frequency-domain gravitational waveforms that are valid for generic spin-precessing quasicircular compact binary inspirals. We first construct time-domain gravitational waves by solving the post-Newtonian precession equations of motion with radiation reaction through multiple scale analysis. We then Fourier transform these time-domain waveforms with the method of shifted uniform asymptotics to obtain closed-form expressions for frequency-domain waveforms. We study the accuracy of these analytic, frequency- domain waveforms relative to waveforms obtained by numerically evolving the post-Newtonian equations of motion and find that they are suitable for unbiased parameter estimation for 99.2%(94.6%) of the binary configurations we studied at a signal-to-noise ratio of 10(25). These new frequency-domain waveforms could be used for detection and parameter estimation studies due to their accuracy and low computational cost.
机译:紧凑型物体的聚结是最有前景的来源之一,以及用于地面干涉检测器的重力波的首次检测的来源之一,例如先进的Ligo和处女座。通常,预计二进制文件中的紧凑型物体有旋转角度旋转,旋转角动势与轨道角度的势头未对准,导致轨道飞机到生物。这种进展为引力波增添了丰富的结构,引入了这种复杂性,即到目前为止,分析闭合形式描述不可用。我们在这里构造了适用于通用旋转精细的QuasiClular Compary Binary Snocirals有效的第一闭合频域重力波形。我们首先通过通过多种尺度分析解决与辐射反应的牛顿后动作的动作动作方程来构建时域的重力波。然后,傅里叶将这些时域波形与移位均匀渐近的方法进行变换,以获得用于频域波形的闭合表达式。我们研究了这些分析的准确性,频域波形相对于通过数值演化的运动后运动方程而获得的波形,并发现它们适用于我们研究的二元配置的99.2%(94.6%)的非偏见参数估计信噪比为10(25)。这些新的频域波形可用于检测和参数估计研究,因为它们的准确性和低计算成本。

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  • 来源
    《Physical Review D》 |2017年第12期|104004.1-104004.24|共24页
  • 作者单位

    eXtreme Gravity Institute Department of Physics Montana State University Bozeman Montana 59717 USA Canadian Institute for Theoretical Astrophysics 60 St. George Street University of Toronto Toronto ON M5S 3H8 Canada;

    Department of Physics and Astronomy The University of Mississippi University Mississippi 38677 USA CENTRA Departamento de Fisica Instituto Superior Tecnico Universidade de Lisboa Avenida Rovisco Pais 1 1049 Lisboa Portugal CNRS UMR 7095 Institut d'Astrophysique de Paris 98 bis Bd Arago 75014 Paris France;

    eXtreme Gravity Institute Department of Physics Montana State University Bozeman Montana 59717 USA;

    eXtreme Gravity Institute Department of Physics Montana State University Bozeman Montana 59717 USA;

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