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首页> 外文期刊>Fusion Science and Technology >AXISYMMETRIC TANDEM MIRRORS: STABILIZATION AND CONFINEMENT STUDIES
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AXISYMMETRIC TANDEM MIRRORS: STABILIZATION AND CONFINEMENT STUDIES

机译:轴对称的后视镜:稳定化和约束化研究

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摘要

The "Kinetic Stabilizer" has been proposed as a means of MHD stabilizing an axisymmetric tandem mirror system. The K-S concept is based on theoretical studies by Ryutov, confirmed experimentally in the Gas Dynamic Trap experiment in Novosibirsk. In the K-S beams of ions are directed into the end of an "expander" region outside the outer mirror of a tandem mirror. These ions, slowed, stagnated, and reflected as they move up the magnetic gradient, produce a low-density stabilizing plasma. At the Lawrence Livermore National Laboratory we have been conducting theoretical and computational studies of the K-S Tandem Mirror. These studies have employed a low-beta code written especially to analyze the beam injection/stabilization process, and a new code SYMTRAN (by Hua and Fowler) that solves the coupled radial and axial particle and energy transport in a K-S T-M. Also, a "legacy" MHD stability code, FLORA, has been upgraded and employed to benchmark the injection/stabilization code and to extend its results to high beta values. The FLORA code studies so far have confirmed the effectiveness of the K-S in stabilizing high-beta (40%) plasmas with stabilizer plasmas the peak pressures of which are several orders of magnitude smaller than those of the confined plasma. Also the SYMTRAN code has shown D-T plasma ignition from alpha particle energy deposition in T-M regimes with strong end plugging. Our studies have confirmed the viability of the K-S T-M concept with respect to MHD stability and radial and axial confinement. We are continuing these studies in order to optimize the parameters and to examine means for the stabilization of possible residual instability modes, such as drift modes and "trapped-particle " modes. These modes may in principle be controlled by tailoring the stabilizer plasma distribution and/or the radial potential distribution. In the paper the results to date of our studies are summarized and projected to scope out possible fusion-power versions of the K-S T-M.
机译:已经提出“运动稳定器”作为MHD稳定轴对称串联镜系统的手段。 K-S概念基于Ryutov的理论研究,并在新西伯利亚的Gas Dynamic Trap实验中得到了实验证实。在K-S中,离子束被引导到串联镜外部镜外部的“扩展器”区域的末端。当这些离子沿磁性梯度向上移动时,它们被减慢,停滞和反射,从而产生低密度的稳定等离子体。在劳伦斯·利弗莫尔国家实验室,我们一直在进行K-S串联镜的理论和计算研究。这些研究采用了专门为分析光束注入/稳定过程而编写的低贝塔码,以及解决了K-S T-M中耦合的径向和轴向粒子与能量传输的新代码SYMTRAN(由Hua和Fowler编写)。同样,“传统” MHD稳定性代码FLORA已升级并用于对注入/稳定代码进行基准测试,并将其结果扩展到较高的beta值。到目前为止,FLORA代码研究已经证实,K-S在稳定具有稳定剂血浆的高β(40%)血浆方​​面的有效性,该血浆的峰值压力比受限血浆的峰值压力小几个数量级。此外,SYMTRAN代码还显示了在T-M方案中具有强力末端堵塞的α-粒子能量沉积引起的D-T等离子体点火。我们的研究证实了K-S T-M概念在MHD稳定性以及径向和轴向约束方面的可行性。我们正在继续进行这些研究,以优化参数并检查用于稳定可能的残余不稳定性模式(例如漂移模式和“捕获粒子”模式)的方法。这些模式原则上可以通过调整稳定器等离子体分布和/或径向电势分布来控制。在本文中,总结了我们迄今为止的研究结果,并预测了可能的融合功率版本的K-S T-M。

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