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Comparison of the effect of rotating electric fields and rotating magnetic fields on the diocotron instability using particle-in-cell simulations

机译:使用单元内粒子模拟比较旋转电场和旋转磁场对电子辐射层不稳定性的影响

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Recently, a beam collimator system using a hollow electron beam to enclose a circulating beam has been proposed for the high energy vacuum. In this system, the hollow electron beam should remain stable during propagation, obviously. However, the diocotron instability, which is one of the nonneutral plasma instabilities induced by shear in the flow velocity of surface waves, makes the deformation of the beam. Therefore, it is important to control the hollow electron beam at first. Previously, we investigated the stabilizing effect of periodic dipole magnets on the diocotron instability using a two-dimensional particle-in-cell simulation. In the simulation, the beam cross section of the hollow electron beam was investigated under periodic dipole magnets in addition to the axial magnetic field. In addition to the previous work, we study the effect of rotating-wall electric fields on the diocotron instability, which also makes perturbations on the ExB drift, and compared the results of rotating magnetic fields.
机译:近来,已经提出了使用中空电子束包围循环束的束准直仪系统用于高能真空。在该系统中,显然,中空电子束在传播过程中应保持稳定。但是,由表面波的流速剪切引起的非中性等离子体不稳定性之一的电子发电子不稳定性使光束变形。因此,首先控制中空电子束很重要。以前,我们使用二维单元格内粒子模拟研究了周期性偶极磁体对介电子不稳定性的稳定作用。在仿真中,除了轴向磁场外,还在周期性偶极磁体下研究了空心电子束的束截面。除先前的工作外,我们还研究了旋转壁电场对电子对中子不稳定性的影响,这也对ExB漂移产生了干扰,并比较了旋转磁场的结果。

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