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Analytical solutions for the relative motion of spacecraft subject to Lorentz-force perturbations

机译:洛伦兹力扰动下航天器相对运动的解析解

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A spacecraft capable of producing higher-than-natural electrostatic charges may achieve propellantless orbital maneuvering via the Lorentz-force interaction with a planetary magnetic field. Development of maneuver strategies for these propellantless vehicles is complicated by the fact that the perturbative Lorentz force acts along only a single line of action at any instant. Relative-motion dynamical models are developed that lead to approximate analytical solutions for the motion of charged spacecraft subject to the Lorentz force. These solutions indicate that the principal effects of the Lorentz force on a spacecraft in a circular orbit are to change the intrack position and to change the orbit plane. A rendezvous example is presented in which a spacecraft with a specific charge of -3.81 × 10~(-4)C/kg reaches a target vehicle initially 10km away (on the same equatorial low-Earth orbit) in 1 day. Fly-around maneuvers may be achieved in low-Earth orbit with specific charges on the order of 0.001 C/kg.
机译:能够产生高于自然的静电荷的航天器可以通过与行星磁场的洛伦兹力相互作用实现无推进剂的轨道操纵。由于微扰的洛伦兹力在任何时刻都仅沿单一作用线作用,因此为这些无推进剂飞行器制定机动策略变得复杂。开发了相对运动动力学模型,该模型可以为荷电航天器在洛伦兹力作用下的运动提供近似的解析解。这些解决方案表明,洛伦兹力在圆形轨道上对航天器的主要作用是改变轨内位置并改变轨道平面。提出了一个集合点示例,其中具有-3.81×10〜(-4)C / kg的比电荷的航天器在1天之内到达初始距离为10 km的目标飞行器(在同一赤道低地球轨道上)。可以在低地球轨道上以大约0.001 C / kg的特定电荷实现绕行机动。

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