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Modelling and comparison of trapped fields in (RE)BCO bulk superconductors for activation using pulsed field magnetization

机译:(RE)BCO体超导体中捕获场的建模和比较,用于使用脉冲场磁化进行激活

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摘要

The ability to generate a permanent, stable magnetic field unsupported by an electromotive force is fundamental to a variety of engineering applications. Bulk high temperature superconducting (HTS) materials can trap magnetic fields of magnitude over ten times higher than the maximum field produced by conventional magnets, which is limited practically to rather less than 2 T. In this paper, two large c-axis oriented, single-grain YBCO and GdBCO bulk superconductors are magnetized by the pulsed field magnetization (PFM) technique at temperatures of 40 and 65 K and the characteristics of the resulting trapped field profile are investigated with a view of magnetizing such samples as trapped field magnets (TFMs) in situ inside a trapped flux-type superconducting electric machine. A comparison is made between the temperatures at which the pulsed magnetic field is applied and the results have strong implications for the optimum operating temperature for TFMs in trapped fluxtype superconducting electric machines. The effects of inhomogeneities, which occur during the growth process of single-grain bulk superconductors, on the trapped field and maximum temperature rise in the sample are modelled numerically using a 3D finite-element model based on the H-formulation and implemented in Comsol Multiphysics 4.3a. The results agree qualitatively with the observed experimental results, in that inhomogeneities act to distort the trapped field profile and reduce the magnitude of the trapped field due to localized heating within the sample and preferential movement and pinning of flux lines around the growth section regions (GSRs) and growth sector boundaries (GSBs), respectively. The modelling framework will allow further investigation of various inhomogeneities that arise during the processing of (RE)BCO bulk superconductors, including inhomogeneous J_c distributions and the presence of current-limiting grain boundaries and cracks, and it can be used to assist optimization of processing and PFM techniques for practical bulk superconductor applications.
机译:产生不受电动势支持的永久,稳定磁场的能力是各种工程应用的基础。大块高温超导(HTS)材料可以捕获的磁场强度是常规磁体产生的最大磁场强度的十倍以上,而实际最大磁场强度限制为小于2T。在本文中,两个大的c轴取向的单个通过脉冲场磁化(PFM)技术在40和65 K的温度下对YBCO和GdBCO大颗粒超导体进行磁化,并研究了由此产生的俘获场分布的特征,以期将诸如俘获场磁体(TFM)的样品磁化被困在通量型超导电机内部。在施加脉冲磁场的温度之间进行了比较,结果对陷阱型磁通型超导电机中TFM的最佳工作温度具有重要意义。使用基于H公式的3D有限元模型对在单粒体超导体生长过程中发生的不均匀性对陷阱场和样品中的最大温升的影响进行数值建模,并在Comsol Multiphysics中实现4.3a。结果与观察到的实验结果在质量上吻合,因为样品中的局部加热以及在生长截面区域(GSRs)的优先移动和助焊剂线的钉扎,不均匀性会扭曲捕获的场分布并减小捕获场的大小。 )和增长部门边界(GSB)。该建模框架将允许进一​​步研究(RE)BCO块状超导体加工过程中出现的各种不均匀性,包括不均匀的J_c分布以及限流晶界和裂纹的存在,它可用于帮助优化加工和适用于块状超导体实际应用的PFM技术。

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