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The interconnections of the LHC cryomagnets

机译:LHC低温磁盘的互连

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The main components of the LHC, the next world-class facility in high-energy physics, are the twin-aperture high-field superconducting cryomagnets to be installed in the existing 26.7-km long tunnel. After installation and alignment, the cryomagnets have to be interconnected. The interconnections must ensure the continuity of several functions: vacuum enclosures, beam pipe image currents (RE contacts), cryogenic circuits, electrical power supply, and thermal insulation. In the machine, about 1700 interconnections between cryomagnets are necessary. The interconnections constitute a unique system that is nearly entirely assembled in the tunnel. For each of them, various operations must be done: TIG welding of cryogenic channels (≈50000 welds), induction soldering of main superconducting cables (≈10 000 joints), ultrasonic welding of auxiliary superconducting cables (≈20 000 welds), mechanical assembly of various elements, and installation of the multi-layer insulation (≈200000 m{sup}2). Defective junctions could be very difficult and expensive to detect and repair. Reproducible and reliable processes must be implemented together with a strict quality control. The interconnection activities are optimized taking into account several constraints: limited space availability, tight installation schedule, high level of quality, high reliability and economical aspects. In this paper, the functions to be fulfilled by the interconnections and the various technologies selected are presented. Quality control at different levels (component/interconnect, subsystem, system) is also described. The interconnection assembly sequences are summarized. Finally, the validation of the interconnection procedures is presented, based in particular on the LHC prototype cell assembly (STRING2).
机译:LHC的主要组成部分是高能量物理学的下一个世界级设施,是在现有26.7际长隧道中安装的双孔高场超导低温磁场。安装和对齐后,必须互连低温磁盘。互连必须确保若干功能的连续性:真空外壳,光束管图像电流(RE接触),低温电路,电源和隔热。在机器中,需要在冷冻磁带之间约1700个互连。互连构成一个独特的系统,几乎完全组装在隧道中。对于每个人来说,必须完成各种操作:焊接通道的TIG焊接(≈50000焊接),主超导电缆的感应焊接(≈10000接头),超声波焊接辅助超导电缆(焊接),机械组装各种元素,以及安装多层绝缘(≈200000M{sup} 2)。缺陷的交叉点可能是非常困难和昂贵的,无法检测和修复。可重复和可靠的过程必须与严格的质量控制一起实施。考虑到互联活动,考虑到几个约束:有限的空间可用性,安装时间表紧密,质量高,高可靠性和经济方面。在本文中,提出了由互连和所选各种技术实现的功能。还描述了不同级别的质量控制(组件/互连,子系统,系统)。汇总互连组件序列。最后,介绍了互连过程的验证,特别是基于LHC原型单元组件(String2)。

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