中国空间科学技术 ›› 2025, Vol. 45 ›› Issue (2): 79-87.doi: 10.16708/j.cnki.1000-758X.2025.0025

• 论文 • 上一篇    下一篇

航天器柔性太阳电池板在轨热分析与验证

黄洪昌1,2,李君兰1,*,王成1,申绪男2,张肖君2,张大卫1   

  1. 1.天津大学 机械工程学院,天津300354
    2.中国电子科技集团公司第十八研究所,天津300384
  • 收稿日期:2024-01-04 修回日期:2024-03-21 录用日期:2024-03-26 发布日期:2025-03-13 出版日期:2025-04-01

Thermal analysis and verification of flexible solar panels on orbital spacecraft

HUANG Hongchang1,2, LI Junlan1,*, WANG Cheng1, SHEN Xunan2, ZHANG Xiaojun2, ZHANG Dawei1   

  1. 1.School of Mechanical Engineering, Tianjin University, Tianjin 300354, China
    2.Tianjin Institute of Power Sources, Tianjin 300384, China
  • Received:2024-01-04 Revision received:2024-03-21 Accepted:2024-03-26 Online:2025-03-13 Published:2025-04-01

摘要: 为预测航天器柔性太阳电池板在轨工作温度及分布情况,分析了太阳翼经历的空间外热流环境,计算出柔性基板正背面热流载荷随轨道周期性的变化情况。考虑太阳电池阵最佳工作点状态和开路状态两种典型发电工况,采用有限元方法计算出太阳电池和柔性基板工作温度随轨道周期性变化规律,与空间站温度遥测数据进行了比对,验证模型和计算方法的准确性。重点分析了不同功能区域热物理性能对柔性太阳电池板温度分布的影响,比对分析两种工况的结果,得出太阳电池和基板吸收系数差异将导致在柔性基板的贴片边界处存在较大的温度梯度,也是可能诱发柔性基板发生热变形的主要影响因素。

关键词: 柔性太阳电池板, 热流载荷, 典型发电工况, 有限元方法, 温度梯度

Abstract: To predict the working temperature and distribution of flexible solar panels on spacecraft in orbit, an analysis of the thermal environment experienced by the solar wings in outer space was conducted. The variation of heat flow on the front and back of the flexible substrate with the orbital period was calculated. Two typical power generation conditions of the solar cell array-optimal operating point and open circuit state, were considered, and the working temperature of the solar cells and flexible substrate was calculated using the finite element method to study the periodic temperature variations with the orbit. A comparison was made with telemetry data from the space station to validate the accuracy of the model and calculation method. The influence of the thermal-physical performance of various functional areas on the temperature distribution of flexible solar panels was studied by comparing the results under two conditions. The findings indicate that the disparity in absorptivity between the solar cells and substrate could lead to notable temperature gradients at the bonding edges of the flexible substrate, which is a crucial factor that could induce thermal deformation in the flexible substrate.

Key words: flexible solar panels, thermal flow loads, typical power generation conditions, finite element analysis, temperature gradient