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Cryogenic suspension design for a kilometer-scale gravitational-wave detector.

Authors :
Ushiba, Takafumi
Akutsu, Tomotada
Araki, Sakae
Bajpai, Rishabh
Chen, Dan
Craig, Kieran
Enomoto, Yutaro
Hagiwara, Ayako
Haino, Sadakazu
Inoue, Yuki
Izumi, Kiwamu
Kimura, Nobuhiro
Kumar, Rahul
Michimura, Yuta
Miyoki, Shinji
Murakami, Iwao
Namai, Yoshikazu
Nakano, Masayuki
Ohashi, Masatake
Okutomi, Koki
Source :
Classical & Quantum Gravity; 4/22/2021, Vol. 38 Issue 8, p1-16, 16p
Publication Year :
2021

Abstract

We report the mirror suspension design for large-scale cryogenic gravitational wave telescope, KAGRA, during bKAGRA phase 1. Mirror thermal noise is one of the fundamental noises for room-temperature gravitational-wave detectors such as Advanced LIGO and Advanced Virgo. Thus, reduction of thermal noise is required for further improvement of their sensitivity. One effective approach for reducing thermal noise is to cool the mirrors. There are many technical challenges that must be overcome to cool the mirrors, such as cryocooler induced vibrations, thermal drift in suspensions, and reduction in duty cycling due to the increased number of potential failure mechanisms. Our mirror suspension has a black coating that makes radiative cooling more efficient. For conduction cooling, we developed ultra high purity aluminum heat links, which yield high thermal conductivity while keeping the spring constant sufficiently small. A unique inclination adjustment system, called moving mass, is used for aligning the mirror orientation in pitch. Photo-reflective displacement sensors, which have a large range, are installed for damping control on marionette recoil mass and intermediate recoil mass. Samarium cobalt magnets are used for coil-magnet actuators to prevent significant change of magnetism between room temperature and cryogenic temperature. In this paper, the design of our first cryogenic payload and its performance during bKAGRA phase 1 are discussed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02649381
Volume :
38
Issue :
8
Database :
Complementary Index
Journal :
Classical & Quantum Gravity
Publication Type :
Academic Journal
Accession number :
149662665
Full Text :
https://doi.org/10.1088/1361-6382/abe9f3