The FOOT (FragmentatiOn Of Target) experiment aims to measure double differential fragmentation cross-sections for applications in Particle Therapy and space radiation protection. A critical component of the apparatus is its magnetic spectrometer, composed of two Halbach-configured dipole magnets (M1 and M2) using NdFeB permanent magnets, designed for high field uniformity and stability. A full 3D magnetic model was developed using the OPERA solver, incorporating detailed BH curves and a refined meshing strategy to ensure precision along the beam axis. The resulting field map, essential for Monte Carlo simulations in FLUKA, was validated through high-resolution magnetic measurements along the longitudinal and radial axes using a Hall probe. The comparison revealed agreement within 1.4% over most of the field region. Radial scans confirmed uniformity within 1% up to 10 mm from the axis, with minor misalignments attributed to mechanical tolerances. These results confirm the accuracy of the magnetic model and its suitability for precise momentum reconstruction in the FOOT spectrometer.

Trigilio, A., Sabbatini, L., Alexandrov, A., Alpat, B., Ambrosi, G., Argirò, S., et al. (2025). Characterization of a permanent magnetic dipolar system for the FOOT experiment. JOURNAL OF INSTRUMENTATION, 20(09) [10.1088/1748-0221/20/09/t09010].

Characterization of a permanent magnetic dipolar system for the FOOT experiment

Morone, Maria Cristina;
2025-01-01

Abstract

The FOOT (FragmentatiOn Of Target) experiment aims to measure double differential fragmentation cross-sections for applications in Particle Therapy and space radiation protection. A critical component of the apparatus is its magnetic spectrometer, composed of two Halbach-configured dipole magnets (M1 and M2) using NdFeB permanent magnets, designed for high field uniformity and stability. A full 3D magnetic model was developed using the OPERA solver, incorporating detailed BH curves and a refined meshing strategy to ensure precision along the beam axis. The resulting field map, essential for Monte Carlo simulations in FLUKA, was validated through high-resolution magnetic measurements along the longitudinal and radial axes using a Hall probe. The comparison revealed agreement within 1.4% over most of the field region. Radial scans confirmed uniformity within 1% up to 10 mm from the axis, with minor misalignments attributed to mechanical tolerances. These results confirm the accuracy of the magnetic model and its suitability for precise momentum reconstruction in the FOOT spectrometer.
2025
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore PHYS-06/A - Fisica per le scienze della vita, l'ambiente e i beni culturali
English
Con Impact Factor ISI
Acceleration cavities and superconducting magnets (high-temperature superconductor, radiation hardened magnets, normal-conducting, permanent magnet devices, wigglers and undulators)
Beam-line instrumentation (beam position and profile monitors, beam-intensity monitors, bunch length monitors)
Simulation methods and programs
Trigilio, A., Sabbatini, L., Alexandrov, A., Alpat, B., Ambrosi, G., Argirò, S., et al. (2025). Characterization of a permanent magnetic dipolar system for the FOOT experiment. JOURNAL OF INSTRUMENTATION, 20(09) [10.1088/1748-0221/20/09/t09010].
Trigilio, A; Sabbatini, L; Alexandrov, A; Alpat, B; Ambrosi, G; Argirò, S; Barbanera, M; Bartosik, N; Battistoni, G; Bisogni, Mg; Boccia, V; Brambill...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/445551
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