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Gravitational Wave Detection by Interferometry (Ground and Space)

机译:干涉法重力波检测(地面和空间)

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摘要

Significant progress has been made in recent years on the development of gravitational-wave detectors. Sources such as coalescing compact binary systems, neutron stars in low-mass X-ray binaries, stellar collapses and pulsars are all possible candidates for detection. The most promising design of gravitational-wave detector uses test masses a long distance apart and freely suspended as pendulums on Earth or in drag-free spacecraft. The main theme of this review is a discussion of the mechanical and optical principles used in the various long baseline systems in operation around the world — LIGO (USA), Virgo (Italy/France), TAMA300 and LCGT (Japan), and GEO600 (Germany/U.K.) — and in LISA, a proposed space-borne interferometer. A review of recent science runs from the current generation of ground-based detectors will be discussed, in addition to highlighting the astrophysical results gained thus far. Looking to the future, the major upgrades to LIGO (Advanced LIGO), Virgo (Advanced Virgo), LCGT and GEO600 (GEO-HF) will be completed over the coming years, which will create a network of detectors with the significantly improved sensitivity required to detect gravitational waves. Beyond this, the concept and design of possible future “third generation” gravitational-wave detectors, such as the Einstein Telescope (ET), will be discussed.
机译:近年来,重力波检测器的开发取得了重大进展。合并紧凑型双星系统,低质量X射线双星中的中子星,恒星坍缩和脉冲星等来源都是可能的探测对象。引力波探测器的最有前途的设计使用的测试质量块相距很远,并且可以像地球上或无阻力航天器中的摆一样自由悬挂。这篇综述的主题是讨论在全球运行的各种长基线系统中使用的机械和光学原理,这些系统包括:LIGO(美国),Virgo(意大利/法国),TAMA300和LCGT(日本)以及GEO600(德国/英国),并且在LISA中提出了一种星载干涉仪。除了重点介绍迄今为止获得的天体物理结果外,还将讨论当前一代地面探测器的最新科学进展。展望未来,LIGO(高级LIGO),处女座(Advanced Virgo),LCGT和GEO600(GEO-HF)的重大升级将在未来几年内完成,这将创建一个探测器网络,其灵敏度将大大提高检测引力波。除此之外,还将讨论可能的未来“第三代”重力波探测器(例如爱因斯坦望远镜(ET))的概念和设计。

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