卫星外热流几何可视化分析方法

Geometric visualization method for satellite external heat flux analysis

  • 摘要: 近圆轨道卫星的外热流随飞行时间呈现显著变化,且受卫星与地球、太阳之间复杂空间位置关系的影响,传统计算方法缺乏直观且高效的量化分析手段。文章针对低轨长方体卫星,提出一种基于几何可视化的外热流快速计算方法。通过建立地心惯性系、轨道系及卫星本体坐标系之间的转换关系,利用 GeoGebra软件绘制轨道周期内的太阳矢量轨迹;动态可视化分析太阳辐射在卫星各表面的投影规律,从而实现对卫星各面太阳辐射、地球红外辐射和地球反照热流的快速评估。与商业软件Thermal Desktop 仿真结果的对比验证表明,两种方法的结果基本一致,但几何可视化分析方法的计算更直观、简便,适用于星座卫星热控设计的早期快速评估与方案优化。

     

    Abstract: In near-circular orbits, the external heat flux of satellites varies significantly over time due to the complex spatial relationships among the satellite, the Earth, and the sun. Conventional simulation methods were often computationally intensive and lacked intuitive interpretability. In this study, a geometric visualization-based method was proposed for the rapid analysis of the external heat flux of cuboid satellites in low Earth orbit (LEO). Transformation relationships were established among the geocentric inertial frame, the orbital frames, and the satellite body coordinate system. The trajectory of the sun vector was analytically modeled and dynamically visualized using GeoGebra. The heat flux on each satellite surface – including solar radiation, Earth’s infrared radiation, and albedo-was evaluated by projecting the sun vector onto the surface normals over a full orbital period. Compared to traditional numerical approaches, the proposed method provided improved computational efficiency and clearer physical insight. The method’s accuracy and engineering applicability were validated through comparison with Thermal Desktop simulations, making it suitable for early-stage thermal control design and configuration optimization in satellite constellations.

     

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