用于磁共振成像的持久模式 0.5 T 固体氮冷却 MgB2 磁体。

IF 3.7 1区 物理与天体物理 Q2 PHYSICS, APPLIED
Superconductor Science & Technology Pub Date : 2017-02-01 Epub Date: 2016-12-29 DOI:10.1088/1361-6668/30/2/024011
Jiayin Ling, John P Voccio, Seungyong Hahn, Timing Qu, Juan Bascuñán, Yukikazu Iwasa
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引用次数: 0

摘要

本文介绍了麻省理工学院弗朗西斯-比特磁性实验室开发的持久模式 0.5-T MgB2 磁体的构造细节和测试结果。该磁体内径 276 毫米,外径 290 毫米,由 8 个螺线管线圈堆叠而成,总高度为 460 毫米。每个线圈都用单丝 MgB2 线绕制,配有一个持久电流开关,并以一个超导接头作为终端,形成一个独立的超导回路。电阻焊点将 8 个线圈串联起来。磁体被集成到一个测试系统中,浸入固态氮中,在 10-13 K 的温度范围内运行。采用了一个两级低温冷却器来冷却辐射防护罩和主要包括约 60 千克固态氮和磁体的冷质。固态氮能够为磁体提供均匀稳定的低温环境。磁体中心在 10-13 K 范围内持续保持着 0.47-T 的磁场。根据测得的磁场曲线反向计算每个线圈中的电流,以确定每个线圈在持续模式运行时的性能。持久电流开关成功地在固态氮中运行,以实现磁体的斜坡。它们还被设计成吸收磁能的保护机制;在诱导淬火中对其有效性进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A persistent-mode 0.5 T solid-nitrogen-cooled MgB2 magnet for MRI.

A persistent-mode 0.5 T solid-nitrogen-cooled MgB2 magnet for MRI.

A persistent-mode 0.5 T solid-nitrogen-cooled MgB2 magnet for MRI.

A persistent-mode 0.5 T solid-nitrogen-cooled MgB2 magnet for MRI.

This paper presents construction details and test results of a persistent-mode 0.5-T MgB2 magnet developed at the Francis Bitter Magnet Lab, MIT. The magnet, of 276-mm inner diameter and 290-mm outer diameter, consisted of a stack of 8 solenoidal coils with a total height of 460 mm. Each coil was wound with monofilament MgB2 wire, equipped with a persistent-current switch and terminated with a superconducting joint, forming an individual superconducting loop. Resistive solder joints connected the 8 coils in series. The magnet, after being integrated into a testing system, immersed in solid nitrogen, was operated in a temperature range of 10-13 K. A two-stage cryocooler was deployed to cool a radiation shield and the cold mass that included mainly ~60 kg of solid nitrogen and the magnet. The solid nitrogen was capable of providing a uniform and stable cryogenic environment to the magnet. The magnet sustained a 0.47-T magnetic field at its center persistently in a range of 10-13 K. The current in each coil was inversely calculated from the measured field profile to determine the performance of each coil in persistent-mode operation. Persistent-current switches were successfully operated in solid nitrogen for ramping the magnet. They were also designed to absorb magnetic energy in a protection mechanism; its effectiveness was evaluated in an induced quench.

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来源期刊
Superconductor Science & Technology
Superconductor Science & Technology 物理-物理:凝聚态物理
CiteScore
6.80
自引率
27.80%
发文量
227
审稿时长
3 months
期刊介绍: Superconductor Science and Technology is a multidisciplinary journal for papers on all aspects of superconductivity. The coverage includes theories of superconductivity, the basic physics of superconductors, the relation of microstructure and growth to superconducting properties, the theory of novel devices, and the fabrication and properties of thin films and devices. It also encompasses the manufacture and properties of conductors, and their application in the construction of magnets and heavy current machines, together with enabling technology.
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