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The Importance of Spin for Observing Gravitational Waves from Coalescing Compact Binaries with LIGO and Virgo.

机译:自旋对于用LIGO和处女座合并紧凑二进制进行观测引力波的重要性。

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摘要

General Relativity predicts the existence of gravitational waves, which carry information about the physical and dynamical properties of their source. One of the many promising sources of gravitational waves observable by ground-based instruments, such as in LIGO and Virgo, is the coalescence of two compact objects (neutron star or black hole). Black holes and neutron stars sometimes form binaries with short orbital periods, radiating so strongly in gravitational waves that they coalesce on astrophysically short timescales. General Relativity gives precise predictions for the form of the signal emitted by these systems. The most recent searches for theses events used waveform models that neglected the effects of black hole and neutron star spin. However, real astrophysical compact objects, especially black holes, are expected to have large spins. We demonstrate here a data analysis infrastructure which achieves an improved sensitivity to spinning compact binaries by the inclusion of spin effects in the template waveforms. This infrastructure is designed for scalable, low-latency data analysis, ideal for rapid electromagnetic followup of gravitational wave events.
机译:广义相对论预测了引力波的存在,引力波携带了有关其来源的物理和动力学特性的信息。诸如LIGO和处女座等地面仪器可观测到的引力波的许多有希望的来源之一是两个紧凑物体(中子星或黑洞)的合并。黑洞和中子星有时会形成轨道周期较短的双星,它们在引力波中辐射非常强,以至于在天体物理上较短的时间尺度上会聚。广义相对论可以精确预测这些系统发出的信号的形式。对这些事件的最新搜索使用的波形模型忽略了黑洞和中子星自旋的影响。但是,实际的天体物理致密物体,特别是黑洞,有望具有较大的自旋。我们在此处演示了一种数据分析基础结构,该结构通过在模板波形中包含自旋效应,可以提高对旋转紧凑型二进制文件的敏感性。该基础结构专为可扩展,低延迟数据分析而设计,非常适合对引力波事件进行快速电磁跟踪。

著录项

  • 作者

    Privitera, Stephen.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Astrophysics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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