论文标题

地下引力波检测器中的隧道构型和地震隔离优化

Tunnel configurations and seismic isolation optimization in underground gravitational wave detectors

论文作者

Amann, Florian, Badaracco, Francesca, DeSalvo, Riccardo, Paoli, Andrea, Paoli, Luca, Ruggi, Paolo, Selleri, Stefano

论文摘要

像爱因斯坦望远镜这样的引力波检测器将在地球表面下建造几百米,以减少直接地震和牛顿噪声。必须设计地下设施,以充分利用岩体的屏蔽特性,以最大程度地提高探测器的性能。爱因斯坦望远镜设计的一个主要问题是角点,在该角点需要在稳定,低的渗透率岩石中挖掘洞穴才能容纳敏感的测量基础设施。本文提出了一种新的拓扑结构,该拓扑是在远离光束线和设备引起的噪声的单独发掘中移动地震衰减链的最高阶段,而米歇尔森束则重组,而测试质量镜保留在主隧道中。在多个隧道水平上分发地震衰减链成分允许使用任意长的地震衰减链,这些链条将地震噪声完全降级到低频噪声预算之外,从而使未来的牛顿噪声抑制方法打开大门。将不同检测器的输入输出和重组光学分离为单独的洞穴,可以极大地提高天文台检测效率并允许分阶段调试。拟议的方案消除了结构和仪器拥挤,而挖掘的尺寸减少则需要更少的支持措施。

Gravitational wave detectors like the Einstein Telescope will be built a few hundred meters under Earth's surface to reduce both direct seismic and Newtonian noise. Underground facilities must be designed to take full advantage of the shielding properties of the rock mass to maximize the detector's performance. A major issue with the Einstein Telescope design are the corner points, where caverns need to be excavated in stable, low permeability rock to host the sensitive measurement infrastructure. This paper proposes a new topology that moves the top stages of the seismic attenuation chains and Michelson beam re-combination in separate excavations far from the beam-line and equipment induced noise while the test mass mirrors remain in the main tunnels. Distributing the seismic attenuation chain components over multiple tunnel levels allows the use of arbitrarily long seismic attenuation chains that relegate the seismic noise at frequencies completely outside the low-frequency noise budget, thus keeping the door open for future Newtonian noise suppression methods. Separating the input-output and recombination optics of different detectors into separate caverns drastically improves the observatory detection efficiency and allows staged commissioning. The proposed scheme eliminates structural and instrumentation crowding while the reduced sizes of excavations require fewer support measures.

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