论文标题

通过下一代地面重力波探测器聆听宇宙

Listening to the Universe with Next Generation Ground-Based Gravitational-Wave Detectors

论文作者

Borhanian, Ssohrab, Sathyaprakash, B. S.

论文摘要

在这项研究中,我们使用简单的性能指标来评估未来的地面重力波检测器网络的科学能力,该网络由A+或Voyager升级组成,以升级到Ligo,Pirgo和Kagra天文台,并提出了下一代观测站,例如Cosmic Explorer和Einstein TeleScope。这些指标是指二进制中子星(BNS)和二进制黑洞(BBH)的结合,包括:(i)网络检测效率和宇宙学源的检测率随红移的函数,(ii)信噪比的函数,(ii)通过始终和远程参数(III)的准确性以及(ii)的准确性(III),(III)的准确性(III)(III II III)。 3D本地化和预警警报。我们进一步讨论了少数罕见和极其大声的事件所支持的科学。尽管即将升级将在所有这些指标中带来令人印象深刻的进步,但下一代观测值将在大多数指标中改善杂志或更高的速度。实际上,一个包含两个或三个此类设施的网络将检测到所有BN和BBH合并的一半,直至$ z = 1 $和$ z = 20 $的红移,可以访问数百万BBH和一千万BBH,信号到噪声比率超过100的信号到$ 100,$ 1和$ 1的$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和$ 1和2;每周几次通过电磁频谱中的后续调查,分别超过10%的发光度距离,因此可以使MutliSesgenger天文学。此类网络将进一步阐明潜在的宇宙合并种群,并检测到大量的高保真性BN和BBH信号,这将允许在前所未有的水平上研究物质的高密度制度,并启用强度强度稳定状态的一般恢复性的精确测试。

In this study, we use simple performance metrics to assess the science capabilities of future ground-based gravitational-wave detector networks -- composed of A+ or Voyager upgrades to the LIGO, Virgo, and KAGRA observatories and proposed next generation observatories such as Cosmic Explorer and Einstein Telescope. These metrics refer to coalescences of binary neutron stars (BNSs) and binary black holes (BBHs) and include: (i) network detection efficiency and detection rate of cosmological sources as a function of redshift, (ii) signal-to-noise ratios and the accuracy with which intrinsic and extrinsic parameters would be measured, and (iii) enabling multimessenger astronomy with gravitational waves by accurate 3D localization and early warning alerts. We further discuss the science enabled by the small population of rare and extremely loud events. While imminent upgrades will provide impressive advances in all these metrics, next generation observatories will deliver an improvement of an order-of-magnitude or more in most metrics. In fact, a network containing two or three such facilities will detect half of all the BNS and BBH mergers up to a redshift of $z=1$ and $z=20$, respectively, give access to hundreds of BNSs and ten thousand BBHs with signal-to-noise ratios exceeding 100, readily localize hundreds to thousands of mergers to within $1\,{\rm deg^2}$ on the sky and better than 10% in luminosity distance, respectively, and consequently, enable mutlimessenger astronomy through follow-up surveys in the electromagnetic spectrum several times a week. Such networks will further shed light on potential cosmological merger populations and detect an abundance of high-fidelity BNS and BBH signals which will allow investigations of the high-density regime of matter at an unprecedented level and enable precision tests of general relativity in the strong-field regime, respectively.

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