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Formation and steady-state maintenance of field reversed configuration using rotating magnetic field current drive

机译:使用旋转磁场电流驱动的磁场反向配置的形成和稳态维持

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Rotating magnetic fields (RMF) have been used to both form and maintain field reversed configurations (FRC) in quasisteady state. These experiments differ from steady-state rotamaks in that the FRCs are similar to those formed in theta-pinch devices, that is elongated and confined inside a flux conserver. The RMF creates an FRC by driving an azimuthal current which reverses an initial positive bias field. The FRC then expands radially, compressing the initial axial bias flux and raising the plasma density, until a balance is reached between the RMF drive force and the electron-ion friction. This generally results in a very high ratio of separatrix to flux conserver radius. The achievable final conditions are compared with simple analytic models to estimate the effective plasma resistivity. The RMF torque on the electrons is quickly transferred to the ions, but ion spin-up is limited in these low density experiments, presumably by ion-neutral friction, and does not influence the basic current drive process. However, the ion rotation can result in a rotating n=2 distortion if the separatrix radius is too far removed from the plasma tube wall. (C) 2002 American Institute of Physics. [References: 22]
机译:旋转磁场(RMF)已用于在准稳态形成和维持反向场构型(FRC)。这些实验与稳态旋转法不同之处在于,FRC与在热缩夹中形成的FRC相似,它们被拉长并限制在通量容器内。 RMF通过驱动反向初始正偏置场的方位电流来创建FRC。然后,FRC径向膨胀,压缩初始轴向偏置磁通并提高等离子体密度,直到在RMF驱动力和电子离子摩擦之间达到平衡。这通常导致分离线与通量存储半径的比率非常高。将可达到的最终条件与简单的分析模型进行比较,以估算有效的等离子体电阻率。电子上的RMF扭矩迅速传递到离子上,但是在这些低密度实验中,离子旋转受到限制,可能是受离子中性摩擦的限制,并且不影响基本电流驱动过程。但是,如果分离线半径距离等离子体管壁太远,则离子旋转会导致旋转n = 2变形。 (C)2002美国物理研究所。 [参考:22]

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