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An initial study of demountable high-temperature superconducting toroidal field magnet5s for the Vulcan tokamak conceptual design

机译:Vulcan托卡马克概念设计的可拆卸高温超导环形场磁体5s的初步研究

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Recent developments have made it possible to consider high-temperature superconductor (HTS) for the design of tokamak toroidal field (TF) magnet systems, potentially influencing the overall design and maintenance scheme of magnetic fusion energy devices. Initial assessments of the engineering challenges and cryogenic-dependent cost and parameters of a demountable, HTS TF magnet system have been carried out using the Vulcan tokamak conceptual design (R = 1.2 m, α = 0.3 m. B_0 = 7 T) as a baseline. Jointed at the midplane to allow vertical removal of the primary vacuum vessel and routine maintenance of core components, structural D-shaped steel support cases provide cryogenic cooling for internally routed YBCO superconducting cables. The cables are constructed by layering ~50 μm thick commercially available YBCO tape, and the interlocking steel support cases self align during assembly to form internal resistive joints between YBCO cables. It is found that designing the TF magnet system for operation between 10 K and 20 K minimizes the total capital and operating cost. Since YBCO is radiation-sensitive, Monte Carlo simulation is used to study advanced shielding materials compatible with the small size of Vulcan. An adequate shield is determined to be 10 cm of zirconium borohydride, which reduces the nuclear heating of the TF coils by a factor of 11.5 and increases the YBCO tape lifetime from two calendar years in the unshielded case to 42 calendar years in the shielded case. Although this initial study presents a plausible conceptual design, future engineering work will be required to develop realistic design solutions for the TF joints, support structure, and cryogenic system.
机译:近期的发展使得可以在托卡马克环形磁场(TF)磁体系统的设计中考虑使用高温超导体(HTS),从而有可能影响磁聚变能量设备的总体设计和维护方案。已使用Vulcan tokamak概念设计(R = 1.2 m,α= 0.3 m。B_0 = 7 T)作为基准,对可拆卸的HTS TF磁体系统的工程挑战以及与低温相关的成本和参数进行了初步评估。 。 D形钢制支撑盒在中平面处接合,以允许垂直移除主真空容器并例行维护芯组件,从而为内部布线的YBCO超导电缆提供了低温冷却。电缆由〜50μm厚的市售YBCO胶带分层制成,而互锁的钢制支撑盒在组装过程中会自动对齐,从而在YBCO电缆之间形成内部电阻接头。结果发现,将TF磁体系统设计为在10 K和20 K之间运行可最大程度地减少总投资和运营成本。由于YBCO对辐射敏感,因此使用蒙特卡洛模拟来研究与小尺寸Vulcan兼容的高级屏蔽材料。确定适当的屏蔽层是10厘米的硼氢化锆,这可以将TF线圈的核加热降低11.5倍,并使YBCO磁带寿命从非屏蔽情况下的两个日历年增加到屏蔽情况下的42个日历年。尽管此初步研究提出了合理的概念设计,但仍需要进一步的工程工作来为TF接头,支撑结构和低温系统开发切合实际的设计解决方案。

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