The future of the particle accelerators points to a new CERNs circular collider with an order of magnitude increase in the center-of-mass energy compared to the Large Hadron Collider (LHC). To achieve this increase from 14 TeV to 100 TeV a 100 km tunnel will be required to host the collider. This particle accelerator requires a new generation of double aperture superconducting magnets, capable of generating a high quality, stable 16 T magnetic field in a 50 mm bore. To manage this challenging task a roadmap was planned in the development of accelerator-grade Nb3Sn magnets under a specific four-year CERN-INFN (Italian Institute for Nuclear Physics) agreement. The first step will be the construction of a short, single aperture cos dipole, with a target magnetic field of 12 T and an ultimate field of 14 T. In this contribution, the mechanical design of this short model, called Falcon Dipole (Future Accelerator post-LHC Cos Optimised Nb3Sn Dipole) will be presented. To generate the required field, this magnet will feature a two-layer design, with state-of-the-art Nb3Sn conductor. This work is focused on the mechanical analysis of this short model. To cope with the intense magnetic forces that are generated in the magnet during operation and to ensure the integrity of the conductor, a novel mechanical structure has been identified, the so-called "bladder & key" (B&K), a technique that has never been used in cos dipoles and needs to be validated. In conclusion, this paper presents 2D and 3D FEA able to describe the constructive steps that meet the requirements imposed by the project to ensure the correct operation of this magnet.

Mechanical Design of FalconD, a Nb3Sn cos Short Model Dipole for the Future Circular Collider / A. Pampaloni, G. Bellomo, S. Burioli, B. Caiffi, E. De Matteis, P. Fabbricatore, S. Farinon, H. Felice, F. Lackner, F. Levi, S. Mariotto, R. Musenich, M. Prioli, M. Sorbi, M. Statera, D. Tommasini, R.U. Valente. - In: IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY. - ISSN 1051-8223. - 32:6(2022 Sep), pp. 4000605.1-4000605.5. [10.1109/TASC.2022.3149679]

Mechanical Design of FalconD, a Nb3Sn cos Short Model Dipole for the Future Circular Collider

G. Bellomo
Secondo
;
S. Mariotto;M. Sorbi;
2022

Abstract

The future of the particle accelerators points to a new CERNs circular collider with an order of magnitude increase in the center-of-mass energy compared to the Large Hadron Collider (LHC). To achieve this increase from 14 TeV to 100 TeV a 100 km tunnel will be required to host the collider. This particle accelerator requires a new generation of double aperture superconducting magnets, capable of generating a high quality, stable 16 T magnetic field in a 50 mm bore. To manage this challenging task a roadmap was planned in the development of accelerator-grade Nb3Sn magnets under a specific four-year CERN-INFN (Italian Institute for Nuclear Physics) agreement. The first step will be the construction of a short, single aperture cos dipole, with a target magnetic field of 12 T and an ultimate field of 14 T. In this contribution, the mechanical design of this short model, called Falcon Dipole (Future Accelerator post-LHC Cos Optimised Nb3Sn Dipole) will be presented. To generate the required field, this magnet will feature a two-layer design, with state-of-the-art Nb3Sn conductor. This work is focused on the mechanical analysis of this short model. To cope with the intense magnetic forces that are generated in the magnet during operation and to ensure the integrity of the conductor, a novel mechanical structure has been identified, the so-called "bladder & key" (B&K), a technique that has never been used in cos dipoles and needs to be validated. In conclusion, this paper presents 2D and 3D FEA able to describe the constructive steps that meet the requirements imposed by the project to ensure the correct operation of this magnet.
English
Accelerator dipoles; Conductors; FCC; Iron; Magnetic tunneling; Magnetomechanical effects; Nb3Sn; Stress; superconducting magnets; Superconducting magnets; Three-dimensional displays;
Settore FIS/01 - Fisica Sperimentale
Articolo
Esperti anonimi
Pubblicazione scientifica
set-2022
8-feb-2022
Institute of Electrical and Electronics Engineers (IEEE)
32
6
4000605
1
5
5
Pubblicato
Periodico con rilevanza internazionale
scopus
crossref
Aderisco
info:eu-repo/semantics/article
Mechanical Design of FalconD, a Nb3Sn cos Short Model Dipole for the Future Circular Collider / A. Pampaloni, G. Bellomo, S. Burioli, B. Caiffi, E. De Matteis, P. Fabbricatore, S. Farinon, H. Felice, F. Lackner, F. Levi, S. Mariotto, R. Musenich, M. Prioli, M. Sorbi, M. Statera, D. Tommasini, R.U. Valente. - In: IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY. - ISSN 1051-8223. - 32:6(2022 Sep), pp. 4000605.1-4000605.5. [10.1109/TASC.2022.3149679]
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Article (author)
si
A. Pampaloni, G. Bellomo, S. Burioli, B. Caiffi, E. De Matteis, P. Fabbricatore, S. Farinon, H. Felice, F. Lackner, F. Levi, S. Mariotto, R. Musenich, M. Prioli, M. Sorbi, M. Statera, D. Tommasini, R.U. Valente
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/915391
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