纳米卫星姿态估计和磁力计定标的伪线性方法

O. Khurshid, J. Selkàinaho, E. Kallio, A. Visala, H. Soken
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引用次数: 0

摘要

提出了高速旋转小航天器姿态估计问题的伪线性估计方法。在提出的方法中使用的传感器套件使用陀螺仪,磁力计和太阳传感器测量。该估计技术是专门针对阿尔托-1纳米卫星等离子体制动实验(PBE)中的姿态确定问题而设计的。PBE的设计要求卫星旋转到200度/秒,利用自旋运动产生的离心力来部署缆绳。卫星的旋转只有通过磁致动才能实现。所使用的自旋控制器在不同的初始条件和操作场景下都具有很强的鲁棒性。然而,它需要精确的姿态估计,以便有效和成功地使卫星旋转到所需的角速度。磁力计是最重要的传感器中可用的板载中提出的设置。这样做的原因是,系统只有输入从磁力计和陀螺仪在日食期间。有必要估计磁强计的偏差,因为这些系统非常紧密地结合在一起,并且其中存在较高的电磁干扰风险。研究了一种伪线性卡尔曼滤波器(PSLKF)。从集成和分离姿态估计和磁力计定标算法在纳米卫星上的应用角度出发,对两种情况进行了研究和分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pseudo-linear approach to nanosatellite attitude estimation and magnetometer calibration
This paper presents the pseudo-linear estimation approach to the high-rate spinning small spacecraft attitude estimation problem. The sensor suit utilised in the presented approach uses gyro, magnetometer and sun-sensor measurements. The presented estimation technique has been designed particularly for the problem of attitude determination during the Aalto-1 nanosatellite's Plasma Brake Experiment (PBE). The design of the PBE demands the satellite to be spun up to 200 deg/s for deploying the tether by the use of centrifugal force resulting from the spin motion. The spinning up of the satellite is achieved only through the magnetic actuation. The used spin controller has been proven to be very robust for different initial conditions and operating scenarios. However, it demands accurate attitude estimates in order to efficiently and successfully spin the satellite up to the required angular velocity. Magnetometers are the most important sensors amongst the available onboard for the presented setup. The reason for this is that the system has the inputs only from the magnetometers and gyros during the eclipse period. It is necessary to estimate the magnetometer biases because the systems are very closely integrated and there is a higher risk of electromagnetic interference in them. A pseudo-linear Kalman Filter (PSLKF) has been studied. The two cases of integrated and separate attitude estimation and magnetometer calibration algorithms have been studied and analyzed in the perspective of their use onboard a nanosatellite.
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