锂,一条让聚变能源变得便宜的道路

A. de Castro, C. Moynihan, S. Stemmley, M. Szott, D. Ruzic
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引用次数: 18

摘要

在这篇教程文章中,我们回顾了利用流动液体锂分流器(熔融金属速度在cm/s范围内)并在低循环等离子体状态下运行的磁聚变装置的技术,物理和经济基础。当外推到磁聚变反应堆规模时,观察到的液态锂边界对回收减少、限制增加和异常热输运缓解的影响可能为聚变能源生产提供一种根本不同且有前途的替代途径。此外,这种锂驱动的低回收机制可以加速核聚变的商业可行性,因为这样的设备将更小,如果所有技术复杂性都得到解决,将大大降低工厂和电力成本。首先,综述了能量约束和聚变性能的理论基础,以及由流动锂等离子体组件驱动的低回收机制的相关可能性。然后,论文强调了在反应堆规模上开发这种流动液态锂溶液所需系统需要克服的技术障碍,并详细说明了在实验室和/或概念验证规模上克服了多少障碍。最后,讨论了目前和计划在伊利诺伊大学厄巴纳-香槟分校进行的关于这种替代反应堆方案的科学和工程努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lithium, a path to make fusion energy affordable
In this tutorial article, we review the technological, physics, and economic basis for a magnetic fusion device utilizing a flowing liquid lithium divertor (molten metal velocity in the range of cm/s) and operating in a low-recycling plasma regime. When extrapolated to magnetic fusion reactor scale, the observed effects of a liquid lithium boundary on recycling reduction, confinement increase, and anomalous heat transport mitigation may offer a fundamentally distinct and promising alternative route to fusion energy production. In addition, this lithium-driven low recycling regime could accelerate fusion's commercial viability since such a device would be smaller, dramatically decreasing plant and electricity costs if all technological complexities are solved. First, the theoretical basis of the energy confinement and fusion performance as well as the related possibilities of low recycling regimes driven by flowing lithium plasma-facing components are reviewed. Then the paper emphasizes the technological obstacles that need to be overcome for developing the necessary systems for such a flowing liquid lithium solution at reactor scale and details how many of these have been overcome at laboratory and/or proof-of-concept scale. Finally, the current and planned scientific and engineering endeavors being performed at the University of Illinois at Urbana-Champaign regarding this alternative reactor option are discussed.
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