Magnetic field dependent stability and quench behavior and degradation limits in conduction-cooled MgB2 wires and coils.

IF 4.2 1区 物理与天体物理 Q2 PHYSICS, APPLIED Superconductor Science & Technology Pub Date : 2015-03-01 DOI:10.1088/0953-2048/28/3/035015
Liyang Ye, Davide Cruciani, Minfeng Xu, Susumu Mine, Kathleen Amm, Justin Schwartz
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引用次数: 20

Abstract

Long lengths of metal/MgB2 composite conductors with high critical current density (Jc), fabricated by the power-in-tube (PIT) process, have recently become commercially available. Owing to its electromagnetic performance in the 20 K - 30 K range and relatively low cost, MgB2 may be attractive for a variety of applications. One of the key issues for magnet design is stability and quench protection, so the behavior of MgB2 wires and magnets must be understood before large systems can emerge. In this work, the stability and quench behavior of several conduction-cooled MgB2 wires are studied. Measurements of the minimum quench energy and normal zone propagation velocity are performed on short samples in a background magnetic field up to 3 T and on coils in self-field and the results are explained in terms of variations in the conductor architecture, electrical transport behavior, operating conditions (transport current and background magnetic field) and experimental setup (short sample vs small coil). Furthermore, one coil is quenched repeatedly with increasing hot-spot temperature until Jc is decreased. It is found that degradation during quenching correlates directly with temperature and not with peak voltage; a safe operating temperature limit of 260 K at the surface is identified.

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传导冷却MgB2导线和线圈的磁场依赖稳定性、淬火行为和退化限制。
采用管内电源(PIT)工艺制造的具有高临界电流密度(Jc)的长长度金属/MgB2复合导体最近已经商业化。由于其在20k - 30k范围内的电磁性能和相对较低的成本,MgB2可能对各种应用具有吸引力。磁体设计的关键问题之一是稳定性和淬火保护,因此必须在大型系统出现之前了解MgB2导线和磁体的行为。本文研究了几种导电冷却MgB2导线的稳定性和淬火行为。最小猝灭能量和正常区域传播速度的测量是在高达3 T的背景磁场中的短样品和在自场中的线圈上进行的,结果是根据导体结构、电传输行为、操作条件(传输电流和背景磁场)和实验设置(短样品与小线圈)的变化来解释的。然后,随着热点温度的升高,一个线圈反复淬火,直到Jc降低。研究发现,淬火过程中的降解与温度直接相关,与峰值电压无关;确定了表面260 K的安全工作温度极限。
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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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