DocumentCode
809544
Title
Speckle interferometry measurements of the conductor displacements in the CERN-LHC main dipole
Author
Ferracin, Paolo ; Rastogi, Pramod ; Scandale, Walter ; Todesco, Ezio ; Tropea, Paola
Author_Institution
Eur. Lab. for Particle Phys., CERN, Geneva, Switzerland
Volume
12
Issue
3
fYear
2002
fDate
9/1/2002 12:00:00 AM
Firstpage
1839
Lastpage
1847
Abstract
Magnetic field quality in superconducting magnets strongly depends on conductor position in operational conditions. Simulations based on finite-element models (FEM) provide the field of stresses and displacements inside the magnet. Due to the complex mechanical behavior of the coil and to the different materials composing the magnet, it is not trivial to build a reliable mechanical model. We present an experimental method based on optical measurements to validate the accuracy of the FEM in evaluating differential displacements at room temperature. A short sample of dipole coils is loaded through a small press and speckle interferometry measurements detect differential displacements with an accuracy of 1.5 μm. Comparison with the numerical results allows the testing of the most critical features of the model, i.e., a pressure-dependent coil elasticity and the interfaces between different materials. A good agreement between measurements and deformed geometry foreseen by the FEM is found
Keywords
accelerator magnets; electronic speckle pattern interferometry; finite element analysis; proton accelerators; storage rings; superconducting coils; superconducting magnets; CERN-LHC main dipole; FEM; accelerator magnets; conductor displacements; conductor position; differential displacements; dipole coils; mechanical model; optical interferometry; optical measurements; pressure-dependent coil elasticity; speckle interferometry measurements; superconducting magnets; Coils; Conducting materials; Conductors; Displacement measurement; Finite element methods; Magnetic field measurement; Magnetic materials; Optical interferometry; Speckle; Superconducting magnets;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2002.801811
Filename
1029172
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