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首页> 外文期刊>Superconductor Science & Technology >Enhanced trapped field performance of bulk high-temperature superconductors using split coil, pulsed field magnetization with an iron yoke
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Enhanced trapped field performance of bulk high-temperature superconductors using split coil, pulsed field magnetization with an iron yoke

机译:使用分体线圈,带铁轭的脉冲场磁化增强了块状高温超导体的俘获场性能

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Investigating and predicting the magnetization of bulk superconducting materials and developing practical magnetizing techniques is crucial to using them as trapped field magnets in engineering applications. The pulsed field magnetization (PFM) technique is considered to be a compact, mobile and relative inexpensive way to magnetize bulk samples, requiring shorter magnetization times (on the order of milliseconds) and a smaller and less complicated magnetization fixture; however, the trapped field produced by PFM is generally much smaller than that of slower zero field cooling or field cooling techniques, particularly at lower operating temperatures. In this paper, the PFM of two, standard Ag-containing Gd-Ba-Cu-O samples is carried out using two types of magnetizing coils: (1) a solenoid coil, and (2) a split coil, both of which make use of an iron yoke to enhance the trapped magnetic field. It is shown that a significantly higher trapped field can be achieved using a split coil with an iron yoke, and in order to explain these how this arrangement works in detail, numerical simulations using a 2D axisymmetric finite element method based on the H-formulation are carried to qualitatively reproduce and analyze the magnetization process from both electromagnetic and thermal points of view. It is observed that after the pulse peak significantly less flux exits the bulk when the iron core is present, resulting in a higher peak trapped field, as well as more overall trapped flux, after the magnetization process is complete. The results have important implications for practical applications of bulk superconductors as such a split coil arrangement with an iron yoke could be incorporated into the design of a portable, high magnetic field source/magnet to enhance the available magnetic field or in an axial gap-type bulk superconducting electric machine, where iron can be incorporated into the stator windings to (1) improve the trapped field from the magnetization process, and (2) increase the effective air-gap magnetic field.
机译:研究和预测块状超导材料的磁化强度并开发实用的磁化技术,对于在工程应用中将其用作俘获场磁体至关重要。脉冲场磁化(PFM)技术被认为是一种磁化大体积样品的紧凑,移动且相对便宜的方法,需要更短的磁化时间(毫秒级)和更小,更简单的磁化夹具。但是,由PFM产生的俘获场通常比较慢的零场冷却或场冷却技术小得多,尤其是在较低的工作温度下。在本文中,使用两种类型的磁化线圈对两个标准的含Ag的Gd-Ba-Cu-O样品进行PFM:(1)螺线管线圈和(2)分离线圈,两者均构成使用铁轭来增强捕获的磁场。结果表明,使用带铁轭的分流线圈可以实现更高的俘获场,并且为了详细解释这些布置的工作原理,使用了基于H公式的二维轴对称有限元方法的数值模拟可以从电磁和热学角度定性地重现和分析磁化过程。观察到,在脉冲峰之后,当存在铁芯时,更少的磁通离开主体,从而在磁化过程完成之后,导致更高的峰值俘获场以及更多的总体俘获通量。该结果对于大块超导体的实际应用具有重要意义,因为可以将这种带有铁轭的分体线圈装置结合到便携式高磁场源/磁体的设计中,以增强可用磁场或轴向间隙型大型超导电机,可以将铁结合到定子绕组中,以(1)改善磁化过程中的俘获场,以及(2)增加有效气隙磁场。

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