垂直稳定性控制对 SPARC 托卡马克的影响

IF 3.5 1区 物理与天体物理 Q1 PHYSICS, FLUIDS & PLASMAS
A.O. Nelson, D.T. Garnier, D.J. Battaglia, C. Paz-Soldan, I. Stewart, M. Reinke, A.J. Creely and J. Wai
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引用次数: 0

摘要

为了实现其性能目标,SPARC 计划在平衡构型下运行,并具有较强的伸长率,这反过来又会破坏 n = 0 垂直不稳定性的稳定。然而,SPARC 还具有相对较厚的导电壁,旨在承受破坏力,从而使垂直不稳定性增长率低于通常情况。在这项工作中,我们使用 TokSyS 框架调查了 SPARC 基线配置附近的可访问形状系列,发现最大增长率在 s-1 范围内。增加钢制垂直稳定板对降低垂直增长率的影响不大,而当考虑到整个垂直稳定系统时,对等离子体的可控性几乎没有影响,这为 SPARC 设计中的板传导性提供了灵活性。通过分析 SPARC 上的最大可控位移,可以确定控制小半径 5% 的初始垂直位移所需的电源电压和电流限制要求。根据等离子体干扰和诊断噪声的预期频谱,还得出了对滤波器延迟和垂直稳定线圈加热公差的要求。建议对外侧限制器的位置进行小幅修改,以便在等离子体不受限制的情况下,允许大至小半径 5%的垂直扰动。此外,三维 COMSOL 代码的研究表明,需要在 VSC 支架内战略性地加入绝缘结构,以保持足够的磁响应。通过将工程决策与物理需求相结合,本文介绍的工作流程有助于为未来设备的综合预测设计建立模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implications of vertical stability control on the SPARC tokamak
To achieve its performance goals, SPARC plans to operate in equilibrium configurations with a strong elongation of , which in turn will destabilize the n = 0 vertical instability. However, SPARC also features a relatively thick conducting wall that is designed to withstand disruption forces, leading to lower vertical instability growth rates than usually encountered. In this work, we use the TokSyS framework to survey families of accessible shapes near the SPARC baseline configuration, finding maximum growth rates in the range of s−1. The addition of steel vertical stability plates has only a modest ( ) effect on reducing the vertical growth rate and almost no effect on the plasma controllability when the full vertical stability system is taken into account, providing flexibility in the plate conductivity in the SPARC design. Analysis of the maximum controllable displacement on SPARC is used to inform the power supply voltage and current limit requirements needed to control an initial vertical displacement of 5% of the minor radius. From the expected spectra of plasma disturbances and diagnostic noise, requirements for filter latency and vertical stability coil heating tolerances are also obtained. Small modifications to the outboard limiter location are suggested to allow for an unmitigated vertical disturbance as large as 5% of the minor radius without allowing the plasma to become limited. Further, investigations with the 3D COMSOL code reveal that strategic inclusion of insulating structures within the VSC supports are needed to maintain sufficient magnetic response. The workflows presented here help to establish a model for the integrated predictive design for future devices by coupling engineering decisions with physics needs.
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来源期刊
Nuclear Fusion
Nuclear Fusion 物理-物理:核物理
CiteScore
6.30
自引率
39.40%
发文量
411
审稿时长
2.6 months
期刊介绍: Nuclear Fusion publishes articles making significant advances to the field of controlled thermonuclear fusion. The journal scope includes: -the production, heating and confinement of high temperature plasmas; -the physical properties of such plasmas; -the experimental or theoretical methods of exploring or explaining them; -fusion reactor physics; -reactor concepts; and -fusion technologies. The journal has a dedicated Associate Editor for inertial confinement fusion.
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