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Design of a Microgravity Simulation Platform for Multi-Body Dynamics Analysis in the Taiji Mission

  • Chenglei Yue
  • , Zhaohui Dang
  • , Chu Zhang
  • , Xiaokui Yue
  • , Yonghe Zhang
  • Northwestern Polytechnical University Xian
  • CAS - Institute of Mechanics
  • CAS - Innovation Academy for Microsatellites

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Space gravitational wave detection through missions like China’s Taiji Program represents a critical application of drag-free satellite technology. The drag-free satellite system developed for the Taiji Mission comprises a spacecraft platform and two test masses, in which the spacecraft actively isolates the test masses from external disturbances and space environmental noise, thereby creating an ultra-stable mechanical environment for the test masses. Prior to orbital deployment, comprehensive ground testing specific to Taiji’s multi-body dynamics requirements is required to validate the system design effectiveness. Nevertheless, establishing a high-precision microgravity environment capable of evaluating satellite performance remains a significant technical challenge for terrestrial verification. The proposed microgravity simulation platform for the Taiji Mission integrates a 5-degree-of-freedom (5-DoF) motion platform with two double-stage suspended torsion pendulums. The 5-DoF platform utilizes pivot bearings to compensate for gravitational stiffness, effectively replicating the on-orbit dynamic characteristics of Taiji’s satellite platform. Concurrently, the torsion pendulums emulate both the translation motion along the sensitive axis and rotation motion about the z-axis of Taiji’s space-borne test masses. Through strategic configuration of these components, the platform achieves ground-based simulation of multi-body dynamics characteristic of the Taiji satellite. Structural parameters were designed using the Buckingham π theorem to ensure dynamic and kinematic equivalence specifically tailored for Taiji’s operational scenarios. Numerical simulations of Taiji’s typical working conditions confirm the platform’s capability to faithfully reproduce space microgravity conditions, demonstrating its effectiveness for Taiji’s pre-launch system validation.

源语言英语
主期刊名Computational and Experimental Simulations in Engineering - Proceedings of ICCES 2025
编辑Xiqiao Feng, Kun Zhou
出版商Springer Science and Business Media B.V.
1415-1430
页数16
ISBN(印刷版)9783032111685
DOI
出版状态已出版 - 2026
活动31st International Conference on Computational and Experimental Engineering and Sciences, ICCES 2025 - Changsha, 中国
期限: 25 5月 202529 5月 2025

出版系列

姓名Mechanisms and Machine Science
194
ISSN(印刷版)2211-0984
ISSN(电子版)2211-0992

会议

会议31st International Conference on Computational and Experimental Engineering and Sciences, ICCES 2025
国家/地区中国
Changsha
时期25/05/2529/05/25

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