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首页> 外文期刊>Advances in space research >Orbit control of a stratospheric satellite with parameter uncertainties
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Orbit control of a stratospheric satellite with parameter uncertainties

机译:参数不确定性的平流层卫星的轨道控制

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摘要

When a stratospheric satellite travels by prevailing winds in the stratosphere, its cross-track displacement needs to be controlled to keep a constant latitude orbital flight. To design the orbit control system, a 6 degree-of-freedom (DOF) model of the satellite is established based on the second Lagrangian formulation, it is proven that the input/output feedback linearization theory cannot be directly implemented for the orbit control with this model, thus three subsystem models are deduced from the 6-DOF model to develop a sequential nonlinear control strategy. The control strategy includes an adaptive controller for the balloon-tether subsystem with uncertain balloon parameters, a PD controller based on feedback linearization for the tether-sail subsystem, and a sliding mode controller for the sail-rudder subsystem with uncertain sail parameters. Simulation studies demonstrate that the proposed control strategy is robust to uncertainties and satisfies high precision requirements for the orbit flight of the satellite.
机译:当平流层卫星因平流层中的盛行风而行进时,需要控制其跨轨位移以保持恒定的纬度轨道飞行。为了设计轨道控制系统,基于第二个拉格朗日公式,建立了卫星的6自由度(DOF)模型,证明了输入/输出反馈线性化理论不能直接用于轨道控制。因此,从6-DOF模型推导出三个子系统模型,以开发顺序非线性控制策略。该控制策略包括用于具有不确定气球参数的气球-绳索子系统的自适应控制器,基于用于绳索-帆子系统的反馈线性化的PD控制器以及用于具有不确定帆参数的帆舵子系统的滑模控制器。仿真研究表明,所提出的控制策略对不确定性具有鲁棒性,并满足卫星轨道飞行的高精度要求。

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