Abstract

A high field magnet is a key element of cryogenic electron beam ion sources (EBISs), which are known for generating highly charged ions through the magnetic compression of an electron beam. Herein, we report the design, fabrication, and evaluation of a 7 T niobium-titanium superconducting magnet capable of persistent-mode operation. The magnet was designed using finite element analysis by considering its magnetic, thermal, and mechanical properties. The designed magnet was then fabricated, assembled, and evaluated for various design parameters in a recondensing-type liquid helium cryostat. After several quench trainings, the magnet reached a target magnetic field of 7 T with an operating current of 200 A, a magnetic field uniformity of 0.24%, and an electron beam focusing length of 1.3 m inside the bore. The magnet was successfully operated in the persistent-mode for 9.5 days (228 hours) and achieved a field-decay rate of 0.42 ppm <inline-formula xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink"> <tex-math notation="LaTeX">$\cdot \text{h}^{-1}$ </tex-math></inline-formula> . The magnet evaluation results confirm that our superconducting magnet system can be applied to an EBIS to carry out stable and effective electron beam compression.

Highlights

  • An electron beam ion source (EBIS) is known for producing highly charged ions (HCIs) [1]–[6]

  • To create a high-density electron that improves the quality of HCIs, it is essential that the electron beam focusing is present within an EBIS [1], [7], [8]

  • Alessi et al reported a 5 T superconducting magnet for an EBIS manufactured by ACCEL Instruments GmbH ( Bruker Advanced Supercon GmbH) [12]

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Summary

INTRODUCTION

An electron beam ion source (EBIS) is known for producing highly charged ions (HCIs) [1]–[6]. In cryogenic EBISs, a niobium-titanium (Nb-Ti) based liquid helium (LHe) cooled superconducting magnet generates a strong and uniform magnetic field, which efficiently focuses the electron beam [2]. A. NIOBIUM-TITANIUM MAGNET DESIGN The superconducting magnet design aimed to meet the required electron beam focusing length of 1.3 m with a 7 T field and a field uniformity of

Main coil Correction coils
CONCLUSION
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