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Full Particle-in-Cell Simulation Study on Magnetic Inflation Around a Magneto Plasma Sail

机译:磁等离子体帆周围磁膨胀的全粒子模拟研究

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In order to consider a next-generation space propulsion system referred to as the “magneto plasma sail,” the magnetic inflation mechanism of a small artificial magnetosphere is investigated. We carry out a two-and-half-dimensional full particle-in-cell simulation, and magnetic inflation mediated by the gyration motion of injected ions is observed. As a result of the gyration motion, an ion-rich region is formed near the direction-reversal position of the injected ions. Magnetic inflation takes place due to the flow of electrons toward the ion-rich region, which carries the field lines of the original magnetosphere. This inflation process is effective for a magnetosphere with a scale comparable to the gyration radius of the injected ions. If the original magnetosphere is much smaller than this, background electrons flow into the ion-rich region outside the magnetosphere, and the inflated magnetosphere is confined to a smaller region. In addition, the thermal effects of background electrons have a similar impact on the inflation process, even if the direction-reversal position is located inside the magnetosphere.
机译:为了考虑称为“磁等离子体帆”的下一代太空推进系统,研究了小型人造磁层的磁膨胀机理。我们进行了二维半全细胞模拟,观察到由注入离子的旋转运动介导的磁膨胀。作为回转运动的结果,在注入离子的方向反转位置附近形成了离子富集区域。磁膨胀是由于电子流向富含离子的区域而发生的,该区域携带着原始磁层的磁力线。这种膨胀过程对磁层有效,其规模可与注入离子的回转半径相媲美。如果原始磁层远小于此范围,则背景电子流入磁层外部的富离子区域,而膨胀的磁层将被限制在较小的区域。另外,即使方向反转位置位于磁层内部,背景电子的热效应对膨胀过程也有类似的影响。

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