中国空间科学技术 ›› 2024, Vol. 44 ›› Issue (6): 72-80.doi: 10.16708/j.cnki.1000-758X.2024.0092

• 空间太阳能电站专题 • 上一篇    下一篇

面向空间压紧堆叠结构的数字孪生模态试验方法

郭聪1,毕清洁1,张澍1,时永鑫1,肖鹏飞2,毛永飞2,田阔1,*   

  1. 1.大连理工大学 力学与航空航天学院,大连116024
    2.中国空间技术研究院遥感卫星总体部,北京100094
  • 收稿日期:2024-03-12 修回日期:2024-05-14 录用日期:2024-05-30 发布日期:2024-12-03 出版日期:2024-12-05

Digital twin modal test method for space compressed stacking structures

GUO Cong1,BI Qingjie1,ZHANG Shu1,SHI Yongxin1,XIAO Pengfei2,MAO Yongfei2,TIAN Kuo1,*   

  1. 1.Dalian University of Technology,Dalian 116024,China
    2.Institute of Remote Sensing Satellite of CAST, Beijing 100094, China
  • Received:2024-03-12 Revision received:2024-05-14 Accepted:2024-05-30 Online:2024-12-03 Published:2024-12-05

摘要: 压紧堆叠结构由于对整流罩空间利用率高、入轨后易于分离再组装等特性,在空间太阳能电站、大型天线等空间结构中具有应用潜力。压紧堆叠结构组件多、连接形式复杂,基于离散加速度传感器的模态试验方法无法监测到结构全场模态信息,对于局部连接结构的模态难以评估。因此对一种面向空间压紧堆叠结构的数字孪生模态试验方法进行了研究。首先,建立压紧堆叠结构的高精度仿真模型并进行模态分析,得到结构振型;然后,使用锤击法开展模态试验并采集加速度传感器数据;最后,对仿真分析数据和试验传感器数据进行数据融合,构建压紧堆叠结构数字孪生体,实现全场模态的实时监测。数字孪生体振型预测精度达到99.7%、基频误差为2.6%,从传感器采集数据到完成数字孪生体计算和云图显示,用时2s。结果验证了提出方法的高预测精度和效率,表明了该方法对提升空间结构模态试验监测范围的有效性。

关键词: 空间结构, 压紧堆叠结构, 模态试验, 数据融合, 数字孪生

Abstract:  The compressed stacking structure has potential applications in space structures such as space solar power station and large antennas due to its high utilization of fairing space and easy separation and reassembly after entering orbit. The compressed stacking structure has multiple components and complex connection forms, and the modal testing method based on discrete acceleration sensors cannot monitor the full field modal information of the structure, making it difficult to evaluate the modal of locally connected structures. Therefore, a digital twin modal testing method for space compressed stacked structures was studied. Firstly, a high-precision simulation model of the compressed stacking structure was established and modal analysis was conducted to obtain the structural vibration mode; Then, modal tests were conducted using the hammering method and accelerometer data was collected; Finally, the simulation analysis data and experimental sensor data were fused to construct a compressed stacking structure digital twin, achieving real time monitoring of the entire field mode. The accuracy of predicting the vibration mode of the digital twin body reaches 99.7%, and the fundamental frequency error is 2.6%. It takes 2 seconds from sensor data to completing the calculation and cloud map display of the digital twin body. The results validate the high prediction accuracy and efficiency of proposed method, indicating effectiveness in improving the monitoring range of spatial structural modal experiments.

Key words: space structure, compressed stacking structure, modal testing, data fusion, digital twin