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Progress of Taiji-2 Project

LUO Ziren ZHANG Min WANG Jianyu WU Yueliang

LUO Ziren, ZHANG Min, WANG Jianyu, WU Yueliang. Progress of Taiji-2 Project. Chinese Journal of Space Science, 2024, 44(4): 674-676 doi: 10.11728/cjss2024.04.2024-yg14
Citation: LUO Ziren, ZHANG Min, WANG Jianyu, WU Yueliang. Progress of Taiji-2 Project. Chinese Journal of Space Science, 2024, 44(4): 674-676 doi: 10.11728/cjss2024.04.2024-yg14

Progress of Taiji-2 Project

doi: 10.11728/cjss2024.04.2024-yg14 cstr: 32142.14.cjss2024.04.2024-yg14
Funds: Supported by the Strategic Priority Research Program of the Chinese Academy of Sciences (XDA15021100), the National Natural Science Foundation of China (12147103) and the Fundamental Research Funds for the Central Universities
More Information
    Author Bio:

    Male, born in August 1980 in Yongzhou, Hunan Province, is currently a professor researcher and doctoral supervisor at Institute of Mechanics, Chinese Academy of Sciences. His major research area includes space-borne gravitational wave detection, laser metrology, precise measurement, theoretical and experimental relativityE-mail: luoziren@imech.ac.cn

  • Figure  1.  Taiji-3 constellation. Taiji-3 consists of 3 identical satellites which form a gigantic equilateral triangle. Each of the satellites takes an Earth-like heliocentric orbit. The constellation will be leading or trailing Earth for about 18°. Taiji-3 has the ability to detect the GW from intermediate or supermassive black hole mergers

    Figure  2.  Taiji-2 satellites. The payload configuration of Taiji-2 satellite is designed to be as same as Taiji-3 in order to expand to 3-satellite constellation when there is second party to contribute additional satellite

    Figure  3.  (a) Taiji-2 payload prototypes. (b) The torsion balance with DWS technique. (c) Payload integration scheme. (d) Test bed for Taiji-2 inter-satellite laser interferometric ranging

    Table  1.   Comparison of computational time required by different posterior sampling approaches to generate their respective samples

    Sampling methodNumbers of samplesRun time /sTime per sample/s
    Nest sampling1121530000.26750
    Normalization flow100002.70.00027
    下载: 导出CSV
  • [1] HU W R, WU Y L. The Taiji Program in Space for gravitational wave physics and the nature of gravity[J]. National Science Review, 2017, 4(5): 685-686 doi: 10.1093/nsr/nwx116
    [2] LUO Z R, GUO Z K, JIN G, et al. A brief analysis to Taiji: science and technology[J]. Results in Physics, 2020, 16: 102918 doi: 10.1016/j.rinp.2019.102918
    [3] LUO Z R, WANG Y, WU Y L, et al. The Taiji program: a concise overview[J]. Progress of Theoretical and Experimental Phy- sics, 2021, 2021(5): 05A108. doi: 10.1093/ptep/ptaa083
    [4] The Taiji Scientific Collaboration. China’s first step towards probing the expanding universe and the nature of gravity using a space borne gravitational wave antenna[J]. Communications Physics, 2021, 4(1): 34 doi: 10.1038/s42005-021-00529-z
    [5] AMARO-SEOANE P, AUDLEY H, BABAK S, et al. Laser interferometer space antenna[OL]. arXiv preprint arXiv: 1702.00786, 2017
    [6] LUO J, CHEN L S, DUAN H Z, et al. TianQin: a space-borne gravitational wave detector[J]. Classical and Quantum Gravity, 2016, 33(3): 035010. doi: 10.1088/0264-9381/33/3/035010
    [7] DU M H, LIANG B, WANG H, et al. Advancing space-based gravitational wave astronomy: rapid parameter estimation via normalizing flows[J]. Science China Physics, Mechanics & Astronomy, 2024, 67 (3): 230412
    [8] WANG S X, LIU H S, DAI L, et al. Using DWS optical readout to improve the sensitivity of torsion pendulum[J]. Sensors, 2023, 23(19): 8087 doi: 10.3390/s23198087
    [9] WANG Y K, MENG L Q, XU X S, et al. Research on semi-physical simulation testing of inter-satellite laser interference in the China Taiji space gravitational wave detection program[J]. Applied Sciences, 2021, 11(17): 7872 doi: 10.3390/app11177872
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出版历程
  • 收稿日期:  2024-06-20
  • 网络出版日期:  2024-07-31

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