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A Design Study on No-Insulation HTS Isochronous Cyclotron Magnet for Carbon Ion Therapy

机译:无保温HTS等时碳离子疗法的设计研究

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Provided that a cyclotron system requires DC magnetic field, the no-insulation (NI) high temperature superconductor (HTS) magnet may be a good candidate as it may enable the cyclotron magnet to be more compact and reliable, yet operate under the liquid-helium-free environment. Here we report on a design study on an NI HTS isochronous cyclotron magnet for an acceleration of carbon ion up to an energy level of 385 MeV/u. To obtain a target beam stability, HTS coils were designed with the so-called "hill" and "valley" structure to generate a designated magnetic field profile. After the initial design on yokes and HTS coils was completed, a final design on the cyclotron magnet design was completed and its performance was analyzed using a 3D finite elementmethod. This paper presents the magnet design and performance analyses in details that include: (1) electromagnetic design of the HTS coils and iron yokes for isochronous magnetic field; (2) mechanical stress with the use of stainless steel co-winding to limit the peak magnetic hoop stress; (3) charging and discharging scenarios with the non-linear NI characteristics considered; and (4) first-cut post-quench analysis with an estimated peak temperature and unbalanced force within the NI HTS coils.
机译:如果有回旋系统需要直流磁场,则无绝缘(Ni)高温超导体(HTS)磁体可以是良好的候选,因为它可以使回旋磁体能够更紧凑并且可靠,但在液氦下操作版税环境。在这里,我们报告了Ni HTS同步回旋磁体的设计研究,用于加速碳离子,达到385mev / u的能级。为了获得目标光束稳定性,HTS线圈设计利用所谓的“山”和“谷”结构来产生指定的磁场轮廓。在完成磁轭和HTS线圈的初始设计之后,完成了回旋磁器设计的最终设计,并使用3D有限元体分析了其性能。本文介绍了磁体设计和性能分析,包括:(1)HTS线圈和用于等时磁场的铁轭的电磁设计; (2)使用不锈钢共绕组的机械应力限制峰值磁箍应力; (3)与考虑非线性NI特征的充电和放电方案; (4)首先切割后骤冷分析,估计峰值温度和Ni HTS线圈内的不平衡力。

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