首页> 外文期刊>Cryogenics >Layer-current waveform of coaxial multi-layer HTS cable considering the flux flow state
【24h】

Layer-current waveform of coaxial multi-layer HTS cable considering the flux flow state

机译:考虑通量流动状态的同轴多层HTS电缆的层电流波形

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

It is important to control the layer current distributions of coaxial multi-layer HTS cables because homogeneous layer current distribution decreases AC loss and increases the largest operational current. In a previous paper, we proposed a theory that can control current distribution based on the concept of flux conservation between two adjacent layers, and demonstrated the theory is in good agreement with experiment results, The theory was effective for an operational current less than the critical current of the cable. It is important to investigate current distribution under the condition of operational current more than the critical current of the cable because the cable experiences fault currents. We have extended the theory to treat the operational current more than the critical current by considering V-I nonlinear characteristics of HTS tapes including flux flow resistance and contact resistance between the cable and terminals. In order to verify the extended theory, we have fabricated a two-layer cable with the same twisting layer pitch, and hence caused inhomogeneous current distribution. It was observed that almost all of operational current less than the critical current flowed on the outer layer because of its lower inductance. When the operational current increased above the critical current of the second layer, the flux flow resistance appeared and distorted the current waveform with phase deviations. Finally, in the case of operational current more than the critical currents of both layers, flux flow resistance strongly affected current waveforms, and thereby the currents of both layers were determined by flux flow resistance. The extended theory simulated the layer current distribution waveforms and demonstrated good agreement with the experimental results under all operational current regions.
机译:控制同轴多层HTS电缆的层电流分布很重要,因为均匀的层电流分布会减少AC损耗并增加最大工作电流。在先前的论文中,我们提出了一种基于两个相邻层之间的磁通守恒概念可以控制电流分布的理论,并证明了该理论与实验结果非常吻合,该理论对于小于临界电流的工作电流是有效的。电缆的电流。重要的是,在工作电流比电缆的临界电流更多的情况下研究电流分布,因为电缆会遇到故障电流。通过考虑高温超导带的V-I非线性特性(包括磁通流动电阻和电缆与端子之间的接触电阻),我们已将理论扩展为处理比临界电流更多的工作电流。为了验证扩展理论,我们制造了具有相同扭绞层节距的两层电缆,因此导致电流分布不均匀。可以观察到,几乎所有的工作电流都小于流过外层的临界电流,因为它的电感较低。当工作电流增加到第二层的临界电流以上时,磁通流动电阻出现,并使电流波形发生相位偏差。最后,在工作电流大于两层的临界电流的情况下,磁通流动电阻会强烈影响电流波形,因此,两层电流均由磁通流动电阻确定。扩展理论模拟了层电流分布波形,并在所有工作电流区域下均与实验结果良好吻合。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号