论文标题
磁性镜中等离子体流动中的离子动力学效应和不稳定性
Ion kinetic effects and instabilities in the plasma flow in the magnetic mirror
论文作者
论文摘要
通过使用动力学离子和等温玻尔兹曼电子电子的无碰撞式准杂种杂化模拟研究,由于有限的离子温度和离子反射而导致的血浆流动的动力学效应。结果表明,在冷离子中,粒子的速度曲线与分析理论非常吻合,该理论预测了由于磁反射镜而导致的全局加速电位的形成,并最大程度地导致了磁场的最大值并导致了跨频离子速度曲线。对于具有各向同性和各向异性分布的温暖离子,还获得了全局跨气离子速度曲线。由于磁反射镜的综合作用以及由于波动溶液变得多值时的波浪破裂和不稳定性,因此观察到了部分离子反射。尽管有部分反射,但传递离子的流动仍然遵循由磁场曲线定义的全局加速曲线。在反映边界条件的模拟模拟等离子源并允许捕获离子之间的过渡的模拟中,透射加速溶液的全局性质被揭示为对最终定义源区域等离子排气速度的约束。
Kinetic effects in plasma flow due to a finite ion temperature and ion reflections in a converging-diverging magnetic nozzle are investigated with collisionless quasineutral hybrid simulations with kinetic ions and isothermal Boltzmann electrons. It is shown that in the cold ions limit the velocity profile of the particles agrees well with the analytical theory predicting the formation of the global accelerating potential due to the magnetic mirror with the maximum of the magnetic field and resulting in the transonic ion velocity profile. The global transonic ion velocity profile is also obtained for warm ions with isotropic and anisotropic distributions. Partial ion reflections are observed due to a combined effect of the magnetic mirror and time-dependent fluctuations of the potential as a result of the wave breaking and instabilities in the regions when the fluid solutions become multi-valued. Despite partial reflections, the flow of the passing ions still follows the global accelerating profile defined by the magnetic field profile. In simulations with reflecting boundary conditions imitating the plasma source and allowing the transitions between trapped and passing ions, the global nature of the transonic accelerating solution is revealed as a constraint on the plasma exhaust velocity that ultimately defines plasma density in the source region.