Sosin Mateusz, Cobas Juan David Gonzalez, Isa Mohammed, Leach Richard, Lipiński Maciej, Rude Vivien, Rutkowski Jarosław, Watrelot Leonard
CERN European Organization for Nuclear Research, 1211 Geneva, Switzerland.
Manufacturing Metrology Team, Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, UK.
Sensors (Basel). 2025 Sep 3;25(17):5487. doi: 10.3390/s25175487.
Fourier transform-based frequency sweeping interferometry (FT-FSI) is an interferometric technique that enables absolute distance measurement by detecting the beat frequencies from the interference of reflected signals. This method allows robust, simultaneous distance measurements to multiple targets and is largely immune to variations in the reflected optical signal intensity. As a result, FT-FSI maintains accuracy even when measuring reflectors with low reflectance. FT-FSI has recently been integrated into the full remote alignment system (FRAS) developed for the High-Luminosity Large Hadron Collider (HL-LHC) project at CERN. Designed to operate in harsh environments with electromagnetic interference, ionizing radiation and cryogenic temperatures, FRAS employs FT-FSI for the precise monitoring of the alignment of accelerator components. The system includes specialized interferometers and a range of sensors, including inclinometers, distance sensors, and leveling sensors. This paper presents a comprehensive review of the challenges associated with remote measurement and monitoring systems in harsh environments such as those of particle accelerators. It details the development and validation of the FT-FSI-based measurement system, emphasizing its critical role in enabling micrometric alignment accuracy. The developments and results presented in this work can be readily translated to other demanding metrology applications in harsh environments.
基于傅里叶变换的扫频干涉测量法(FT-FSI)是一种干涉测量技术,它通过检测反射信号干涉产生的拍频来实现绝对距离测量。该方法能够对多个目标进行可靠的同时距离测量,并且在很大程度上不受反射光信号强度变化的影响。因此,即使在测量低反射率的反射器时,FT-FSI也能保持精度。FT-FSI最近已被集成到为欧洲核子研究中心(CERN)的高亮度大型强子对撞机(HL-LHC)项目开发的全远程对准系统(FRAS)中。FRAS旨在在存在电磁干扰、电离辐射和低温的恶劣环境中运行,它采用FT-FSI来精确监测加速器部件的对准情况。该系统包括专门的干涉仪和一系列传感器,如倾角仪、距离传感器和水平传感器。本文全面综述了在诸如粒子加速器等恶劣环境中与远程测量和监测系统相关的挑战。它详细介绍了基于FT-FSI的测量系统的开发和验证,强调了其在实现微米级对准精度方面的关键作用。这项工作中展示的进展和成果可以很容易地应用到其他恶劣环境下要求苛刻的计量应用中。