论文标题

未来加速器磁铁的光纤诊断系统

Fiber-optic diagnostic system for future accelerator magnets

论文作者

Baldini, Maria, Ambrosio, Giorgio, Ferracin, Paolo, Joshi, Piyush, Krave, S., Luo, Linqing, Marchevsky, Maxim, Vallone, G., Wang, Xiaorong

论文摘要

下一代高能物理加速器将需要〜20 t的磁场。HTS线圈将是将来加速器磁铁的重要组成部分,目前正在为设计20台HTS-LTS混合动力磁铁而做出一些努力。在现有的挑战中,缺乏用于混合磁铁技术的强大淬火检测系统。另一个巨大的挑战是NB3SN磁铁所需的大量训练猝灭所代表的,以达到性能水平。在此框架中,重要的是要找到一个允许对磁铁应变和温度实时监视的工具。在本文中,我们建议在未来的加速器超导磁体中使用光纤传感器进行诊断和淬火检测。离散和分布式光纤传感器已证明是有前途的工具。目标是仪器数百个加速器超导磁体,并超出概念验证水平。仍然需要重大发展。在这里,我们将介绍最新的结果,并讨论最紧急的技术发展,以使这些传感器成为未来10年中加速器超导磁铁的强大而可靠的诊断工具。我们预见,离散的纤维传感器将是在接下来的3至5年中用于超导磁体的稳定诊断探针。分布式纤维需要更多的研发工作。最紧迫的需求是增加样本率和灵敏度。必须与供应商进行密切合作,以改善机械性能和制造工艺,以生产数百米的纤维和仪器,并有大量的加速器超导磁铁。这些研发工作将持续长达10年,其创始水平跨越5-10 m $。

The next generation high energy physics accelerators will require magnetic fields at ~20 T. HTS coils will be an essential component of future accelerator magnets and several efforts are currently dedicated on designing 20 T HTS- LTS hybrid magnets. Among the existing challenges, there is the lack of a robust quench detection system for hybrid magnet technology. Another big challenge is represented by the high number of training quenches required by Nb3Sn magnets to reach performance level. In this framework it is important to find a tool that allow local real-time monitoring of magnet strain and temperature. In this paper, we propose the use of fiber optics sensors for diagnostic and quench detection in future accelerator superconducting magnets. Discrete and distributed fiber optic sensors have demonstrated to be a promising tool. The goal is to instrument hundreds of accelerator superconducting magnets and to move beyond the proof-of-concept level. Significant developments are still needed. Here, we are going to present the most recent results and discuss the most urgent technical developments in order to make those sensors a robust and reliable diagnostic tool for accelerator superconducting magnets over the next 10 year. We foresee that discrete fiber sensors will be a stable diagnostic probe for superconducting magnets over the next 3 to 5 years. More R&D work will be necessary for distributed fibers. The most urgent needs are the increase of sample rate and sensitivity. Close collaboration with vendors will be necessary to improve mechanical properties and fabrication processes in order to produce hundreds of meters of fiber and instrument a large number of accelerator superconducting magnets. Those R&D efforts will last up to 10 years with a founding level that spans between 5-10 M$.

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