Fiber Bragg Grating sensors based monitoring system for superconducting accelerator magnets

A. Chiuchiolo, M. Bajko, J. Perez, H. Bajas, M. Consales, M. Giordano, G. Breglio, A. Cusano
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Abstract

New generation of accelerator magnets for high energy applications currently designed, manufactured and tested at the European Organization for Nuclear Research (CERN) require the implementation of precise cryogenic sensors with long-term robustness and reliability able to withstand cryogenic temperature and to monitor the mechanical stresses affecting the winding during all the stages of his service life, assembly, cool down and powering. Monitoring the mechanical behavior of the magnet from assembly to operation is a critical task which aims to assure the integrity of the magnet and to safely handle the coils made of new brittle material. This contribution deals with the first successful embedding of Fiber Bragg Grating sensors in a subscale Nb3Sn dipole magnet in order to monitor the strain developed in the coil during the cool down to 1.9 K, the powering up to 15.8 kA and the warm up, offering new perspectives for the development of a complementary sensing technology based on fiber optic sensors.
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基于光纤光栅传感器的超导加速器磁体监测系统
目前在欧洲核子研究组织(CERN)设计、制造和测试的新一代高能加速器磁体需要精确的低温传感器,具有长期的坚固性和可靠性,能够承受低温温度,并在其使用寿命、组装、冷却和供电的所有阶段监测影响绕组的机械应力。监测磁体从组装到运行的机械行为是一项关键任务,旨在确保磁体的完整性和安全处理由新型脆性材料制成的线圈。这一贡献涉及首次成功地将光纤布拉格光栅传感器嵌入亚尺度Nb3Sn偶极子磁体中,以监测线圈在冷却至1.9 K,通电至15.8 kA和预热期间产生的应变,为基于光纤传感器的互补传感技术的发展提供了新的视角。
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