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Analysis of inductively driven liners for the generation of megagauss magnetic fields

机译:感应驱动的内衬产生兆高斯磁场的分析

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A process for achieving megagauss fields to reach fusion gain conditions based on the compression of a Field Reversed Configuration plasmoid (FRC) is analyzed. The essential element for achieving this end is the inductively driven implosion of several thin bands of metal, initially at large radius, to achieve the 3D convergence and mass required. To understand the issues involved with this approach, as well as design an experimental test, a 1D analytical model was developed and 3D ANSYS Explicit Dynamics® of the liner implosion were carried out. The inductive coupling and drive efficiency of the compression for a single liner was evaluated with the one dimensional model which included the key circuit, magnetic field and liner parameters. The model was then used to characterize the liner motion as a function of liner mass, resistivity, stored energy, coil voltage and initial magnetic field. The stability and structural behavior of multiple liners was studied with the 3D ANSYS code. Techniques for controlling liner bucking as well as liner rotation for Rayleigh-Taylor stability were formulated and examined with these codes.
机译:分析了一种基于场反向配置等离子体(FRC)压缩的实现高斯场以达到融合增益条件的过程。达到此目的的基本要素是几个大直径的金属薄带的感应驱动内爆,最初是大半径的,以实现所需的3D会聚和质量。为了理解与该方法有关的问题,并设计实验测试,开发了1D分析模型并进行了内衬内爆的3D ANSYS Explicit Dynamics ®。用一维模型评估了单个衬管压缩的感应耦合和驱动效率,该模型包括关键电路,磁场和衬管参数。然后使用该模型将衬管运动表征为衬管质量,电阻率,存储的能量,线圈电压和初始磁场的函数。使用3D ANSYS代码研究了多个衬管的稳定性和结构性能。制定了控制衬垫弯曲和衬垫旋转以提高瑞利泰勒稳定性的技术,并用这些规范进行了检验。

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