天琴的引力波天文学。

En-Kun Li, Shuai Liu, Alejandro Torres-Orjuela, Xian Chen, Kohei Inayoshi, Long Wang, Yi-Ming Hu, Pau Amaro-Seoane, Abbas Askar, Cosimo Bambi, Pedro R Capelo, Hong-Yu Chen, Alvin J K Chua, Enrique Condés-Breña, Lixin Dai, Debtroy Das, Andrea Derdzinski, Hui-Min Fan, Michiko Fujii, Jie Gao, Mudit Garg, Hongwei Ge, Mirek Giersz, Shun-Jia Huang, Arkadiusz Hypki, Zheng-Cheng Liang, Bin Liu, Dongdong Liu, Miaoxin Liu, Yunqi Liu, Lucio Mayer, Nicola R Napolitano, Peng Peng, Yong Shao, Swarnim Shashank, Rongfeng Shen, Hiromichi Tagawa, Ataru Tanikawa, Martina Toscani, Verónica Vázquez-Aceves, Hai-Tian Wang, Han Wang, Shu-Xu Yi, Jian-Dong Zhang, Xue-Ting Zhang, Lianggui Zhu, Lorenz Zwick, Song Huang, Jianwei Mei, Yan Wang, Yi Xie, Jiajun Zhang, Jun Luo
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引用次数: 0

摘要

引力波窗口的开启极大地增强了我们探索宇宙最极端和最动态领域的能力。在兆赫频率范围内,各种各样的致密物体,从宇宙最远处最大的黑洞到我们宇宙后院最轻的白矮星,都会产生复杂而动态的引力波信号交响乐。一旦被引力波探测器记录下来,这些独特的指纹就有可能在广泛的尺度上破译宇宙结构的诞生和成长,从双星和星团到星系和大尺度结构。天秦号空间引力波任务计划于本世纪30年代发射,使用寿命为5年。它将有助于我们深入了解宇宙的历史。本文简要介绍了可探测到的天琴源,概述了它们的特征、面临的挑战,以及天琴天文台对我们了解天琴源的预期影响。& # xD。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gravitational wave astronomy with TianQin.

The opening of the gravitational wave window has significantly enhanced our capacity to explore the Universe's most extreme and dynamic sector. In the mHz frequency range, a diverse range of compact objects, from the most massive black holes at the farthest reaches of the Universe to the lightest white dwarfs in our cosmic backyard, generate a complex and dynamic symphony of gravitational wave signals. Once recorded by gravitational wave detectors, these unique fingerprints have the potential to decipher the birth and growth of cosmic structures over a wide range of scales, from stellar binaries and stellar clusters to galaxies and large-scale structures. The TianQin space-borne gravitational wave mission is scheduled for launch in the 2030s, with an operational lifespan of five years. It will facilitate pivotal insights into the history of our Universe. This document presents a concise overview of the detectable sources of TianQin, outlining their characteristics, the challenges they present, and the expected impact of the TianQin observatory on our understanding of them.

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