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CLIQ Based Quench Protection of 16 T Nb3Sn Block-Coil Dipole Magnets for a Future Circular Collider

机译:基于CLIQ的16 T Nb3Sn块状线圈偶极磁体的淬火保护,用于未来的圆形对撞机

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摘要

Protection of large high-field, high-energy accelerator magnets is very challenging with current technology. To avoid damage to the magnet coil by local or global overheating, the maximum temperature in the hot-spot of the magnet coil must be kept under certain levels depending on the materials used in the coil construction. The current state of the art technology seems unable to do so.A novel protection system for large superconducting magnets based on generating Inter Filament Coupling Loss through current oscillations in the magnet circuit is applied and simulated successfully for the Nb3Sn block-coil dipole magnet intended for use in a 100 [TeV] Future Circular Collider.The proposed protection system is able to keep the maximum temperature of the magnet coil during a quench below 350 [K] at nominal operating conditions, system parameters and geometry, and is shown to achieve a maximum temperature in the coil hot-spot as low as 260 [K] for the optimal protection system configuration.Several variations on the nominal coil geometry have been investigated, showing that an increase in inductance is detrimental while a reduction is beneficial from the point of view of the new protection system. Among the variations investigated are a graded coil and a coil with a larger aperture than the nominal geometry. The graded coil is found the most difficult to protect, while the larger aperture coil variant is the easiest to protect, with regards to the hot-spot temperature.A large parameter space has been investigated, and the most influential parameters are found to alter the hot-spot temperature by 50 [K], while the least influential by 10 [K] when moving away from their respective nominal values. Most influential are the electrical configuration of the protection system, the non-Copper content of the superconducting strands and the coil geometry. Least influential are the residual resistivity ratio and filament twist pitch.Taking the internal voltages to ground in the coil during application of the new protection system into account, the graded coil must be discarded completely, as turn-to-turn voltages can reach several hundred volt. The reduced inductance variants, therein the larger aperture one, proves the optimal also with respect to voltage: the turn-to-turn voltages are kept well below 100 [V], while the inter-layer voltage, critical for the application of the new protection system, only barely exceeds 1 [kV].
机译:当前技术对大型高场,高能量加速器磁体的保护非常具有挑战性。为了避免由于局部或全局过热而损坏电磁线圈,根据线圈结构中使用的材料,必须将电磁线圈热点中的最高温度保持在一定水平下。当前的最新技术似乎无法做到这一点。针对用于超导磁体的Nb3Sn块线圈偶极磁体,应用了一种新颖的大型超导磁体保护系统,该系统基于通过磁路中的电流振荡产生细丝耦合损耗而成功地进行了仿真。拟议中的保护系统能够在额定工作条件,系统参数和几何形状下将失超期间电磁线圈的最高温度保持在350 [K]以下,并且能够达到对于最佳保护系统配置,线圈热点的最高温度低至260 [K]。已经研究了标称线圈几何形状的几种变化,从电感角度来看,电感的增加是有害的,而减小的好处是有利的。新保护系统的视图。在研究的变体中,有渐变线圈和孔径比标称几何尺寸大的线圈。就热点温度而言,梯度线圈被发现是最难保护的,而较大孔径的线圈变体则是最容易保护的。研究了一个很大的参数空间,发现了影响最大的参数可以改变当远离其各自的标称值时,热点温度降低50 [K],而影响最小的则为10 [K]。最具影响力的是保护系统的电气配置,超导股的非铜含量以及线圈的几何形状。影响最小的是剩余电阻率和灯丝捻距。考虑到在使用新保护系统期间线圈内部的接地电压,分级匝数必须达到数百,因此必须完全丢弃分级线圈伏特。减小的电感变量(其中较大的孔径)证明了在电压方面也是最佳的:匝间电压保持在100 [V]以下,而层间电压对于新的应用至关重要保护系统,仅勉强超过1 [kV]。

著录项

  • 作者

    Ghini Jonas Blomberg;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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