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Effect of magnetic sheath on filament AC losses and current distribution in MgB2 superconducting wires: numerical analysis

机译:MGB2超导导线灯丝AC损耗和电流分布的磁护件对MGB2超导线的影响:数值分析

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Finite element method (FEM) analysis is employed to study and compare AC losses in a wide frequency range in two MgB2 superconducting wires in self-field and in the presence of external AC field. The modelled wires, of the same external dimensions, are mono- and 36-superconducting filaments embedded in either magnetic Monel or a nonmagnetic metallic wire sheath. We demonstrate that in a multifilamentary wire in self-field the Monel sheath serves as a 'pole piece' at the filament outer surface and alters local magnetic fields, current flow and AC losses distribution within the filament. In comparison with the nonmagnetic sheath with the same electrical conductivity, AC current in the wire with the magnetic sheath penetrates significantly deeper into the filaments and AC losses in the filament and in the magnetic sheath increase significantly. In contrast, the symmetry of the monofilament wire makes the current and loss distributions in the filament practically indifferent to the sheath composition. Still, losses in the magnetic sheath are much higher than in the nonmagnetic sheath due to increased flux dynamics The application of DC current, on which the AC current is superimposed, sharply reduces the AC losses in the magnetic sheath material due to the drop in its permeability. Filament losses are also reduced in the presence of DC current, but to a much lesser extent. Results also show that in the kHz frequency range, the magnetic permeability of the sheath increases the skin effect in both the wire and filaments complex. As a result, at such frequencies, a significant portion of the current is carried by the metallic part of the wire instead of the superconductor, contributing to a further increase in losses. The analysis also shows that in the presence of external AC magnetic field, the Monel can provide magnetic shielding for inner filaments, thus reducing coupling effects between filaments. However, if magnetically saturated by the DC current, the Monel behaves
机译:有限元方法(FEM)分析用于研究和比较自场的两个MGB2超导导线的宽频率范围内的AC损耗和外部交流场的存在。相同的外部尺寸的建模电线是嵌入磁铁监管或非磁性金属线护套中的单尺寸和36超导细丝。我们证明,在自行场中的多丝线中,套管护套用作灯丝外表面上的“极靴”,并改变局部磁场,电流流量和丝内的交流损耗。与具有相同电导率相同的非磁性护套的相比,具有磁性鞘的线中的AC电流明显深入地进入细丝和灯丝中的AC损耗,并且在磁性鞘中显着增加。相反,单丝线的对称性使得丝的电流和损失分布实际上对鞘组合物漠不关心。仍然,由于磁通动力学增加,磁护套中的损耗远高于非磁护套,因为倍率电流叠加在其上叠加的DC电流,因此由于其下降而急剧地降低了磁护套材料中的交流损耗。渗透性。在DC电流存在下也减少了灯丝损失,但程度更大。结果还表明,在kHz频率范围内,鞘的磁导率增加了线和长丝复合物中的皮肤效果。结果,在这样的频率下,电流的大部分由线的金属部分而不是超导体携带,有助于进一步增加损耗。该分析还表明,在存在外部交流磁场的情况下,MONEL可以为内部长丝提供磁屏蔽,从而降低长丝之间的偶联效果。但是,如果由DC电流磁性饱和,则MONEL的行为

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