Divertor shaping with neutral baffling as a solution to the tokamak power exhaust challenge.

IF 5.4 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Communications Physics Pub Date : 2025-01-01 Epub Date: 2025-05-23 DOI:10.1038/s42005-025-02121-1
Kevin Verhaegh, James Harrison, David Moulton, Bruce Lipschultz, Nicola Lonigro, Nick Osborne, Peter Ryan, Christian Theiler, Tijs Wijkamp, Dominik Brida, Cyd Cowley, Gijs Derks, Rhys Doyle, Fabio Federici, Bob Kool, Olivier Février, Antti Hakola, Stuart Henderson, Holger Reimerdes, Andrew Thornton, Nicola Vianello, Marco Wischmeier, Lingyan Xiang
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引用次数: 0

Abstract

Exhausting power from the hot fusion core to the plasma-facing components is one fusion energy's biggest challenges. The MAST Upgrade tokamak uniquely integrates strong containment of neutrals within the exhaust area (divertor) with extreme divertor shaping capability. By systematically altering the divertor shape, this study shows the strongest evidence to date to our knowledge that long-legged divertors with a high magnetic field gradient (total flux expansion) deliver key power exhaust benefits without adversely impacting the hot fusion core. These benefits are already achieved with relatively modest geometry adjustments that are more feasible to integrate in reactor designs. Benefits include reduced target heat loads and improved access to, and stability of, a neutral gas buffer that 'shields' the target and enhances power exhaust (detachment). Analysis and model comparisons shows these benefits are obtained by combining multiple shaping aspects: long-legged divertors have expanded plasma-neutral interaction volume that drive reductions in particle and power loads, while total flux expansion enhances detachment access and stability. Containing the neutrals in the exhaust area with physical structures further augments these shaping benefits. These results demonstrate strategic variation in the divertor geometry and magnetic topology is a potential solution to one of fusion's power exhaust challenge.

采用中性挡板的导流器成型解决托卡马克动力排气难题。
将热核聚变核心的能量耗尽到等离子体组件中是核聚变能面临的最大挑战之一。MAST升级托卡马克独特地在排气区域(转向器)内集成了强大的中性物遏制,具有极端的转向器成形能力。通过系统地改变导流器的形状,该研究显示了迄今为止我们所知的最有力的证据,即具有高磁场梯度(总通量膨胀)的长腿导流器在不影响热聚变堆芯的情况下提供了关键的动力排气优势。这些好处已经通过相对适度的几何调整实现,这些调整在反应堆设计中更可行。其优点包括减少目标热负荷,改善对中性气体缓冲的访问和稳定性,从而“屏蔽”目标并增强功率排气(分离)。分析和模型比较表明,这些优势是通过结合多个成型方面获得的:长腿分流器扩大了等离子体中性相互作用体积,从而减少了粒子和功率负载,而总通量的扩大增强了分离的可及性和稳定性。在排气区域用物理结构包含中性物进一步增加了这些塑形的好处。这些结果表明,战略性地改变导流器的几何形状和磁性拓扑结构是解决核聚变功率排放挑战的一个潜在解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Communications Physics
Communications Physics Physics and Astronomy-General Physics and Astronomy
CiteScore
8.40
自引率
3.60%
发文量
276
审稿时长
13 weeks
期刊介绍: Communications Physics is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the physical sciences. Research papers published by the journal represent significant advances bringing new insight to a specialized area of research in physics. We also aim to provide a community forum for issues of importance to all physicists, regardless of sub-discipline. The scope of the journal covers all areas of experimental, applied, fundamental, and interdisciplinary physical sciences. Primary research published in Communications Physics includes novel experimental results, new techniques or computational methods that may influence the work of others in the sub-discipline. We also consider submissions from adjacent research fields where the central advance of the study is of interest to physicists, for example material sciences, physical chemistry and technologies.
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