论文标题
电磁评估和三轴电缆的AC损失,每个相多2G-HTS层
Electromagnetic Assessment and AC Losses of Triaxial Cables with Multiple 2G-HTS Layers Per Phase
论文作者
论文摘要
为了准确估算超导三轴电缆的交流损失,我们提出了一个2D模型,能够对VNIIKP电缆研究所提供的单相电缆上的AC-HOLSES进行全球评估,以对多层三轴电缆进行全球评估。提出了四种型号,第一款是50个磁带的单相电缆,而其他磁带是三张三轴电缆,该电缆由多达135个涂层的导体制成,最多可达9层。设计了一项系统的研究,其中每个阶段的层数从1增加到3,至少14个磁带分布在第一相的每一层(最终)(中间)中的15个磁带,分别在第三(最外面)相位。值得注意的是,我们的结果表明,考虑到所施加电流的幅度不平衡分布的简单策略通常可以平衡三个相之间的磁场,即使是双层和三层电缆,也会在所有情况下都会忽略不计的磁泄漏。此外,我们的模拟首次可以看到运输和磁化电流如何分布在所有超导磁带的厚度上,我们发现第二相的AC损坏通常高于低至中等转运电流的其他阶段的AC损坏。然而,取决于第三阶层的SC磁带的IC是否低于第二阶段的IC,第三阶段的图层在AC损耗上表现出相当大的增量,因为考虑到HTS磁带的HTS磁带的考虑磁磁体各向异性,这会导致对造成的电流的触发率。同样,每个阶段的AC损坏的相对变化也随着应用电流的函数而公开。
For an accurate estimation of the AC losses of superconducting triaxial cables, we present a 2D model capable to provide a global assessment of multi-layer triaxial cables, validated against the AC-losses on single-phase cables provided by the VNIIKP Cable Institute. Four models are presented, the first being a single-phase cable of 50 tapes and the others being three triaxial cables made of up to 135 coated conductors distributed in up to 9 layers. A systematic study is devised, where the number of layers per phase increases from 1 to 3, with at least 14 tapes distributed across each layer of the first (innermost) phase, 15 in the secondary (middle) phase, and 16 in the third (outermost) phase, respectively. Remarkably, our results reveal that the simple strategy of considering an unbalanced distribution for the amplitudes of the applied current, can generally balance the magnetic field between the three phases even for the bilayer and trilayer cables, resulting in negligible magnetic leaks in all situations. Besides, our simulations allow to see for the first time how the transport and magnetization currents distribute across the thickness of all the superconducting tapes, from which we have found that the AC-losses of the 2nd phase is generally higher than at the other phases at low to moderate transport currents Itr < 0.8 Ic. Nevertheless, depending on whether the Ic of the SC tapes at the 3rd phase layers is lower than the one at the 2nd phase, the layers at the third phase can exhibit a considerable increment on the AC losses, as result of the considered magneto angular anisotropy of the HTS tapes, which lead to intriguing electromagnetic features that suggest a practical threshold for the applied transport current, being it 0.8 Ic. Likewise, the relative change in the AC-losses per adding layers, per phase, and as a function of the applied current is disclosed.