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Vulcan: A steady-state tokamak for reactor-relevant plasma-material interaction science

机译:Vulcan:用于反应堆相关等离子体材料相互作用科学的稳态托卡马克

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An economically viable magnetic-confinement fusion reactor will require steady-state operation and high areal power density for sufficient energy output, and elevated wall/blanket temperatures for efficient energy conversion. These three requirements frame, and couple to, the challenge of plasma-material interaction (PMI) for fusion energy sciences. Present and planned tokamaks are not designed to simultaneously meet these criteria. A new and expanded set of dimensionless figures of merit for PMI have been developed. The key feature of the scaling is that the power flux across the last closed flux surface Approx= 1 MWm~(-2) is to be held constant, while scaling the core volume-averaged density weakly with major radius, n ~ R~(-2/7). While complete similarity is not possible, this new "P/S" or "PMl" scaling provides similarity for the most critical reactor PMl issues, compatible with sufficient current drive efficiency for non-inductive steady-state core scenarios. A conceptual design is developed for Vulcan, a compact steady-state deuterium main-ion tokamak which implements the P/S scaling rules. A zero-dimensional core analysis is used to determine R = 1.2 m, with a conventional reactor aspect ratio R/α - 4.0, as the minimum feasible size for Vulcan. Scoping studies of innovative fusion technologies to support the Vulcan PMI mission were carried out for three critical areas: a high-temperature, helium-cooled vacuum vessel and divertor design; a demountable superconducting toroidal field magnet system; and a steady-state lower hybrid current drive system utilizing a high-field-side launch position.
机译:一个经济可行的磁约束聚变反应堆将需要稳态运行和高面功率密度以提供足够的能量输出,并需要提高壁/毛毯温度以进行有效的能量转换。这三个要求构成并耦合了等离子体材料相互作用(PMI)对聚变能源科学的挑战。当前和计划中的托卡马克并非旨在同时满足这些条件。已经开发了一套新的和扩展的PMI无量纲品质因数。缩放的关键特征是,在最后一个闭合磁通表面大约1 MWm〜(-2)上的功率通量应保持恒定,而以大半径n〜R〜( -2/7)。尽管不可能实现完全相似,但是这种新的“ P / S”或“ PM1”缩放比例可为最关键的反应堆PM1问题提供相似性,并与非感应稳态堆芯场景的足够电流驱动效率兼容。为Vulcan开发了一种概念设计,Vulcan是一种紧凑的稳态氘主离子托卡马克,它实现了P / S缩放规则。零维堆芯分析用于确定R = 1.2 m,采用常规反应堆长宽比R /α-4.0作为Vulcan的最小可行尺寸。为支持Vulcan PMI任务而进行的创新融合技术的范围研究在三个关键领域进行:高温,氦冷却的真空容器和分流器设计;以及可拆卸的超导环形磁场系统;以及利用高场侧发射位置的稳态低混合电流驱动系统。

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