物理
干涉测量
期限(时间)
卫星
遥感
理论(学习稳定性)
分辨率(逻辑)
天文
计算机科学
机器学习
地质学
人工智能
作者
Min Ming,Bin Cao,Fang-Jie Liao,Ming-Lin Yang,Huang Xiangqing,Yuan‐Ze Jiang,Zhu Li,Jingyi Zhang,Yang Shuju,Hui‐Zong Duan,Hsien‐Chi Yeh
标识
DOI:10.1088/1361-6382/ad5cbd
摘要
Abstract As ground-based gravitational wave (GW) detection has opened a new window for exploring the universe, space-based GW detection will be the next frontier to deepen the understanding of galaxy evolution and massive black holes merging. TianQin-1 is a technology verification satellite for the space-based gravitational wave detector TianQin. One of the key technologies demonstrated in TianQin-1 is a high-precision and ultra-stable interferometer, with a noise floor lower than 100 pm/Hz1/2@0.1Hz. In this paper, we report the long-term stability of the interferometer in the TianQin-1 satellite, which contains a quasi-monolithic optical bench made through hydroxide catalysis bonding(HCB). According to the results of the ground and in-orbit tests, the long-term stability of the interferometer for 13 months after launch has been evaluated. The resolution of the interferometer is better than 30 pm. The noise level of the interferometer is about 30 pm/Hz1/2@0.1Hz and 10 pm/Hz1/2 above 1Hz, fulfilling the mission requirement of TianQin-1. The successful in-orbit operation has demonstrated the interferometer's high precision and long-term stability based on the quasi-monolithic optical bench.
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