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Electric sail, photonic sail and deorbiting applications of the freely guided photonic blade

机译:自由导向的光子叶片的电帆,光帆和除轨应用

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We consider a freely guided photonic blade (FGPB) which is a centrifugally stretched sheet of photonic sail membrane that can be tilted by changing the centre of mass or by other means. The FGPB can be installed at the tip of each main tether of an electric solar wind sail (E-sail) so that one can actively manage the tethers to avoid their mutual collisions and to modify the spin rate of the sail if needed. This enables a more scalable and modular E-sail than the baseline approach where auxiliary tethers are used for collision avoidance. For purely photonic sail applications one can remove the tethers and increase the size of the blades to obtain a novel variant of the heliogyro that can have a significantly higher packing density than the traditional heliogyro. For satellite deorbiting in low Earth orbit (LEO) conditions, analogous designs exist where the E-sail effect is replaced by the negative polarity plasma brake effect and the photonic pressure by atmospheric drag. We conclude that the FGPB appears to be an enabling technique for diverse applications. We also outline a way of demonstrating it on ground and in LEO at low cost.
机译:我们考虑一个自由引导的光子叶片(FGPB),它是离心拉伸的光子帆膜片,可以通过改变质心或其他方式使其倾斜。 FGPB可以安装在电动太阳能风帆(E型帆)的每个主绳索的末端,这样就可以主动管理绳索,避免它们相互碰撞,并在需要时更改帆的旋转速度。与使用辅助系链避免碰撞的基线方法相比,这可实现更具扩展性和模块化的E型风帆。对于纯光子帆应用而言,可以去除系绳并增加叶片的尺寸,以获得新颖的the陀螺变体,该变体可以具有比传统的lio陀螺显着更高的堆积密度。对于在低地球轨道(LEO)条件下进行卫星离轨的情况,存在类似的设计,其中电子风帆效应由负极性等离子制动效应代替,而光子压力由大气阻力代替。我们得出的结论是,FGPB似乎是一种适用于各种应用程序的技术。我们还概述了一种以低成本在地面和LEO上进行演示的方法。

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