Multiphysics multilayer modelling and simulation of HTS REBCO magnets carrying direct currents under AC magnetic fields

IF 5.6 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Xuezhi Luo , Jun Ma , Huaqian Xiao , Zhixuan Zhang , Chao Yuan
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Abstract

High temperature superconducting homopolar inductor machine (HTS-HIM) is concerned and studied for electric aircraft because of its high power density, high efficiency, and high power-to-weight ratio. In an HTS-HIM, the high temperature superconducting magnets carrying DC currents under alternating background magnetic fields work as excitation magnets. Under extreme electromagnetic conditions, the voltage, loss, and temperature of the HTS magnets will increase because of the dynamic resistance effect. To predict the behaviors of the HTS magnet, it is necessary to analyze its electromagnetic-thermal characteristics by using a multiphysics model. This paper establishes a 2D axisymmetric multilayer multiphysics HTS magnet model based on the H-formulation. By using this multilayer multiphysics model, the electromagnetic-thermal characteristics of each turn can be analyzed. Meanwhile, this model can not only analyze the total loss and loss components of each layer under various operating conditions but also predict the temperature and quench behaviors of each part. The result shows that the loss components of the REBCO layer have distinct temperature dependence. When considering the thermal field effect, the magnetization loss of the REBCO layer reduces by 75% and the transport loss of the REBCO layer increases by 45% under high direct currents and high AC magnetic fields. Meanwhile, the temperature of the external turn is higher than the internal turn, and the external turn is at risk of quench in the operating process when the direct currents and AC magnetic fields are high. The multilayer multiphysics model is a powerful tool for designing, analyzing, and optimizing the HTS magnets in HTS-HIMs, and this multiphysics modelling technique can be utilized in modelling and simulating HTS REBCO magnets in various applications.
交流磁场下承载直流电的 HTS REBCO 磁体的多物理多层建模与仿真
高温超导均极感应电机(HTS-HIM)因其具有高功率密度、高效率和高功率重量比等特点而受到电动飞机领域的关注和研究。高温超导超导磁体在交变背景磁场下携带直流电流作为激励磁体。在极端电磁条件下,由于动态电阻效应,高温超导磁体的电压、损耗和温度都会升高。为了预测高温超导磁体的行为,有必要利用多物理场模型分析其电磁热特性。本文建立了基于h公式的二维轴对称多层多物理场高温超导磁体模型。利用该多层多物理场模型,可以对每一弯的电磁热特性进行分析。同时,该模型不仅可以分析各种工况下各层的总损耗和损耗分量,还可以预测各部分的温度和淬火行为。结果表明,REBCO层的损耗组分具有明显的温度依赖性。考虑热场效应时,在高直流和高交流磁场作用下,REBCO层的磁化损耗降低了75%,输运损耗增加了45%。同时,外匝温度高于内匝,在直流和交流磁场较大的情况下,外匝在工作过程中存在淬灭的危险。多层多物理场模型是HTS- hims中HTS磁体设计、分析和优化的有力工具,这种多物理场建模技术可用于各种应用中HTS REBCO磁体的建模和仿真。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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