An Integrated Calibration Scheme for Attitude Benchmark of Micro-nano Satellites and Its Experiments Based on In-Orbit Data

Mingqun Li, Tong Luo, Shaokai Wang, He Li, Yongjun Lei, Qinghua Jiang
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Abstract

The integrated calibration method of micro-nano satellite attitude benchmark is studied. Considering the magnetic effects and residual magnetism caused by the complex magnetic environment of the satellite, an accurate measurement model for magnetometers was adopted. By using the relationship between the measured and theoretical values of the geomagnetic field, the residual magnetism and magnetic sensitivity coefficients in the magnetometer measurement model were calibrated, through the least square method of uncertain parameters of the calibration. After modeling the installation error of the solar sensor, the calibration of the solar sensor is completed, so as to realize the integrated calibration of the attitude benchmark of the micro-nano satellite. Finally, this article conducted ground experiments using telemetry data from an in orbit satellite. The experimental results showed that the proposed method reduced sensor measurement errors, improved sensor benchmark consistency, and improved attitude determination accuracy from around 10 degrees to better than 0.2 degrees, verifying the effectiveness of the proposed method.
基于在轨数据的微纳卫星姿态基准综合标定方案及实验
研究了微纳卫星姿态基准的综合标定方法。考虑卫星复杂磁环境造成的磁效应和剩磁,采用了磁强计精确测量模型。利用地磁场实测值与理论值之间的关系,利用不确定参数的最小二乘法对磁强计测量模型中的剩磁系数和磁灵敏度系数进行标定。对太阳传感器安装误差建模后,完成对太阳传感器的标定,从而实现对微纳卫星姿态基准的综合标定。最后,本文利用在轨卫星遥测数据进行了地面实验。实验结果表明,该方法减小了传感器测量误差,提高了传感器基准一致性,将姿态确定精度从10度左右提高到0.2度以上,验证了该方法的有效性。
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