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首页> 外文期刊>Acta astronautica >Aerodynamic and gravity gradient based attitude control for CubeSats in the presence of environmental and spacecraft uncertainties
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Aerodynamic and gravity gradient based attitude control for CubeSats in the presence of environmental and spacecraft uncertainties

机译:基于环境和航天器不确定性的立方体空气动力学和重力梯度基于姿态控制

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摘要

In this paper, the problem of controlling the attitude of a CubeSat in low Earth orbit using only the environmental torques is considered. The CubeSat is equipped with a Drag Maneuvering Device (DMD) that enables the spacecraft to modulate its experienced aerodynamic and gravity gradient torques. An adaptive controller is designed to achieve attitude tracking of the spacecraft in the presence of uncertain parameters such as the atmospheric density, drag and lift coefficients, and the time-varying location of the Center of Mass (CoM). The proposed controller also accounts for modeling inaccuracy of the inertia matrix of the spacecraft. A Lyapunov-based analysis is used to prove that the quaternion-based attitude trajectory tracking error is uniformly ultimately bounded. The designed controller is also examined through numerical simulations for a spacecraft with time-varying uncertain drag, lift coefficients and CoM location parameters and the NRLMSISE-00 model for the atmospheric density.
机译:在本文中,考虑了使用仅使用环境扭矩控制低地球轨道中立方体态度的问题。 CubeSat配备了拖动机动装置(DMD),使得航天器能够调制其经验丰富的空气动力学和重力梯度扭矩。自适应控制器被设计成在存在不确定的参数的情况下实现航天器的姿态跟踪,例如大气密度,拖曳系数,并且质量中心的时变位置(COM)。建议的控制器还考虑了对航天器惯性矩阵的不准确性建模。基于Lyapunov的分析用于证明基于四元轴的姿态轨迹跟踪误差是均匀的最终限定的。还通过用于航天器的数值模拟来检查设计的控制器,其具有时变不确定的阻力,提升系数和COM位置参数以及用于大气密度的NRLMSISE-00模型。

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