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Ion and electron acceleration in the field-reversed configuration with an odd-parity rotating magnetic field

机译:具有奇偶校验旋转磁场的场反转配置中的离子和电子加速度

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摘要

The method for accelerating ions and electrons in the field-reversed configuration using odd-parity rotating magnetic fields (RMFs) in the ion-cyclotron range-of-frequencies (ICRF) is studied. The approach is based on long, accurate numerical integration of Hamilton's equations for single-particle orbits. Rapid ion heating to thermonuclear conditions occurs in <0.1 ms in a modest-sized FRC. Strong variation of the magnetic-field strength over the confinement region prevents a true cyclotron resonance, resulting in stochastic though effective heating. Lyapunov exponents are computed to demonstrate chaotic orbits. Electrons are also effectively heated in this frequency range, primarily by a mechanism involving trapping in the wells of the azimuthal electric field. Odd-parity RMF promotes oppositely directed ion and electron motion near the minor axis, appropriate for supporting the plasma current. (C) 2002 American Institute of Physics. [References: 26]
机译:研究了在离子回旋加速器频率范围(ICRF)中使用奇偶校验旋转磁场(RMF)加速场反转配置中的离子和电子的方法。该方法基于对单粒子轨道的汉密尔顿方程的长期,精确的数值积分。在中等大小的FRC中,将离子快速加热到热核条件的时间不到0.1 ms。约束区域内磁场强度的强烈变化会阻止真正的回旋加速器共振,从而导致随机但有效的加热。计算李雅普诺夫指数以证明混沌轨道。电子也主要通过一种涉及陷在方位电场阱中的机制而在该频率范围内被有效地加热。奇偶校验RMF在短轴附近促进相反方向的离子和电子运动,适合于支持等离子体电流。 (C)2002美国物理研究所。 [参考:26]

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