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首页> 外文期刊>Journal of Low Temperature Physics >Improved Maglev Performance of Bulk High-Temperature Superconductors with a Re-magnetization Process After Zero-Field Cooling
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Improved Maglev Performance of Bulk High-Temperature Superconductors with a Re-magnetization Process After Zero-Field Cooling

机译:零场冷却后通过复磁工艺改善了高温高温大块体的磁悬浮性能

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摘要

Zero-field cooling (ZFC) and field cooling (FC) are the two most popular activation ways of the bulk high-temperature superconductors (HTSCs). The former can bring a big levitation force but a poor stability, while the latter can bring a good stability but a reduced levitation force due to the trapped flux. Under this rule, it is very difficult to improve the levitation force (load capability) and guidance force (stability) at the same time with the given bulk HTSCs and applied field in practice. In the paper, based on the re-magnetization ability of bulk HTSCs, the maglev performance of bulk HTSCs with a re-magnetization process after ZFC was experimentally investigated above a permanent magnetic guideway (PMG). The bulk HTSCs were firstly cooled down at a far distance above the PMG, but before moving to the working height, an additional process was introduced to descend the bulks to a lower height to magnetize again by the PMG field. Experimental results show that, at certain re-magnetization height above PMG, the levitation force and guidance force could be improved simultaneously compared with the results of normal FC cases, which is different from the present performance improvement with the sacrifice of one important force. This result presents a possible working way for the levitation applications of bulk HTSCs by employing a re-magnetization process after ZFC, and is also useful to optimize the performance of high-temperature superconducting Maglev vehicle systems.
机译:零场冷却(ZFC)和场冷却(FC)是整体高温超导体(HTSC)的两种最受欢迎​​的激活方式。前者会带来较大的悬浮力,但稳定性较差;而后者会带来良好的稳定性,但由于滞留的通量,会降低悬浮力。在此规则下,在给定的大型HTSC和实际应用领域中,很难同时提高悬浮力(负载能力)和制导力(稳定性)。在本文中,基于散装高温超导体的再磁化能力,在永磁导轨(PMG)上方对ZFC进行重磁化后的散装高温超导体的磁悬浮性能进行了实验研究。首先将大块HTSC冷却到比PMG高出很远的距离,但是在移至工作高度之前,引入了额外的过程以将大块下降到较低的高度,以通过PMG场再次磁化。实验结果表明,在PMG上方一定的复磁高度下,与常规FC情况相比,悬浮力和导向力可以同时提高,这与目前的性能提高有所不同,只牺牲了一个重要的力。通过在ZFC之后采用重新磁化工艺,该结果为悬浮HTSC的悬浮应用提供了一种可能的工作方式,并且对于优化高温超导磁悬浮车辆系统的性能也很有用。

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