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Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment

High radiation levels, ultra-high vacuum, cryogenic temperatures of the measured components and high electro-magnetic noise push accelerator surveyors to look for more robust and accurate solutions of alignment. In the framework of the High-Luminosity LHC project at CERN, a range of new and cost-opt...

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Detalles Bibliográficos
Autores principales: Sosin, M, Mainaud-Durand, H, Rude, V, Rutkowski, J
Lenguaje:eng
Publicado: 2019
Materias:
Acceso en línea:https://dx.doi.org/10.1117/12.2529157
http://cds.cern.ch/record/2779633
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author Sosin, M
Mainaud-Durand, H
Rude, V
Rutkowski, J
author_facet Sosin, M
Mainaud-Durand, H
Rude, V
Rutkowski, J
author_sort Sosin, M
collection CERN
description High radiation levels, ultra-high vacuum, cryogenic temperatures of the measured components and high electro-magnetic noise push accelerator surveyors to look for more robust and accurate solutions of alignment. In the framework of the High-Luminosity LHC project at CERN, a range of new and cost-optimized solutions using Fourier analysis based Frequency Sweeping Interferometry (FSI), are under development. The technique allows the measurement of absolute distances to multiple targets simultaneously and is less sensitive to reflected optical signal intensity variations. The advantage with respect to classical interferometers (based on the detection of interference signal phase-change and sensitive to light quality) is that even weak interference beat frequency peaks can be easily retrieved from the Fourier spectrum without significant degradation of measurement precision. Moreover, the detectability of light reflected from different types of surfaces (high and low reflectance ones) makes it possible to develop a new family of simple, universal and robust micrometric sensors for harsh environments, like particle accelerators. An application of this novel method is the monitoring of the position of magnet and crab cavity cold masses inside their cryostats. For this purpose, specially designed divergent beam FSI vacuum optics and low cost glass ball reflectors are being tested and will be used in the HLLHC project. A new family of simple and cost-optimized, single and multi-reflection sensors (levelling, inclinometer, distance) is under development in the same coordinated effort. This paper describes such a measurement system, the sensor design approach, the results obtained and their final use in the LHC accelerator.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2019
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spelling cern-27796332021-08-31T22:20:56Zdoi:10.1117/12.2529157http://cds.cern.ch/record/2779633engSosin, MMainaud-Durand, HRude, VRutkowski, JFrequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environmentAccelerators and Storage RingsDetectors and Experimental TechniquesHigh radiation levels, ultra-high vacuum, cryogenic temperatures of the measured components and high electro-magnetic noise push accelerator surveyors to look for more robust and accurate solutions of alignment. In the framework of the High-Luminosity LHC project at CERN, a range of new and cost-optimized solutions using Fourier analysis based Frequency Sweeping Interferometry (FSI), are under development. The technique allows the measurement of absolute distances to multiple targets simultaneously and is less sensitive to reflected optical signal intensity variations. The advantage with respect to classical interferometers (based on the detection of interference signal phase-change and sensitive to light quality) is that even weak interference beat frequency peaks can be easily retrieved from the Fourier spectrum without significant degradation of measurement precision. Moreover, the detectability of light reflected from different types of surfaces (high and low reflectance ones) makes it possible to develop a new family of simple, universal and robust micrometric sensors for harsh environments, like particle accelerators. An application of this novel method is the monitoring of the position of magnet and crab cavity cold masses inside their cryostats. For this purpose, specially designed divergent beam FSI vacuum optics and low cost glass ball reflectors are being tested and will be used in the HLLHC project. A new family of simple and cost-optimized, single and multi-reflection sensors (levelling, inclinometer, distance) is under development in the same coordinated effort. This paper describes such a measurement system, the sensor design approach, the results obtained and their final use in the LHC accelerator.oai:cds.cern.ch:27796332019
spellingShingle Accelerators and Storage Rings
Detectors and Experimental Techniques
Sosin, M
Mainaud-Durand, H
Rude, V
Rutkowski, J
Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title_full Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title_fullStr Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title_full_unstemmed Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title_short Frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
title_sort frequency sweeping interferometry for robust and reliable distance measurements in harsh accelerator environment
topic Accelerators and Storage Rings
Detectors and Experimental Techniques
url https://dx.doi.org/10.1117/12.2529157
http://cds.cern.ch/record/2779633
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AT mainauddurandh frequencysweepinginterferometryforrobustandreliabledistancemeasurementsinharshacceleratorenvironment
AT rudev frequencysweepinginterferometryforrobustandreliabledistancemeasurementsinharshacceleratorenvironment
AT rutkowskij frequencysweepinginterferometryforrobustandreliabledistancemeasurementsinharshacceleratorenvironment