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Magnetic and levitation characteristics of bulk high-temperature superconducting magnets above a permanent magnet guideway

机译:永磁导轨上方的块状高温超导磁体的磁悬浮特性

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Due to the large levitation force or the large guidance force of bulk high-temperature superconducting magnets (BHTSMs) above a permanent magnet guideway (PMG), it is reasonable to employ pre-magnetized BHTSMs to replace applied-magnetic-field-cooled superconductors in a maglev system. There are two combination modes between the BHTSM and the PMG, distinguished by the different directions of the magnetization. One is the S-S pole mode, and the other is the S-N pole mode combined with a unimodal PMG segment. A multi-point magnetic field measurement platform was employed to acquire the magnetic field signals of the BHTSM surface in real time during the pre-magnetization process and the re-magnetization process. Subsequently, three experimental aspects of levitation, including the vertical movement due to the levitation force, the lateral movement due to the guidance force, and the force relaxation with time, were explored above the PMG segment. Moreover, finite element modeling by COMSOL Multiphysics has been performed to simulate the different induced currents and the potentially different temperature rises with different modes inside the BHTSM. It was found that the S-S pole mode produced higher induced current density and a higher temperature rise inside the BHTSM, which might escalate its lateral instability above the PMG. The S-N pole mode exhibits the opposite characteristics. In general, this work is instructive for understanding and connecting the magnetic flux, the inner current density, the levitation behavior, and the temperature rise of BHTSMs employed in a maglev system.
机译:由于永磁体导轨(PMG)上方的大块高温超导磁体(BHTSM)的悬浮力大或导向力大,因此合理的做法是采用预磁化BHTSM代替现场应用的磁场冷却超导体。磁悬浮系统。 BHTSM和PMG之间有两种组合模式,区别在于磁化方向不同。一种是S-S磁极模式,另一种是S-N磁极模式结合单峰PMG段。在预充磁过程和再充磁过程中,采用多点磁场测量平台实时获取BHTSM表面的磁场信号。随后,在PMG段上方探讨了悬浮的三个实验方面,包括由于悬浮力引起的垂直运动,由于制导力引起的横向运动以及力随时间的松弛。此外,已经通过COMSOL Multiphysics进行了有限元建模,以模拟BHTSM内部不同模式下的感应电流和潜在的温度升高。发现S-S极模式在BHTSM内部产生更高的感应电流密度和更高的温度升高,这可能将其横向不稳定性升级为PMG以上。 S-N极模式具有相反的特性。通常,这项工作对于理解和连接磁悬浮系统中所使用的BHTSM的磁通量,内部电流密度,悬浮行为和温度上升具有指导意义。

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