3D Simulations of Dynamic Resistance and Total Loss on HTS CORC Cables at Various Temperatures

IF 1.7 3区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Yukai Qiao;Nicholas M. Strickland;Zhenan Jiang
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引用次数: 0

Abstract

Conductor on round core (CORC) cables carry a dc current under ac magnetic fields when applied onto the field windings of rotating machines, high-field magnets, and maglev systems. The resulting total loss, consisting of magnetization loss from external ac field and dynamic loss due to the interactions between the dc current and the ac field, will cause power dissipations in the cryogenic system. In this work, the dynamic resistance ($R_{\text{dyn}}$) and total loss in a spiral tape and two CORC cables assembled with 4-mm wide REBCO coated conductors are numerically obtained under ac field amplitudes up to 500 mT and temperatures ranging from 30 K to 77.5 K, with dc current levels i ($I_{\text{dc}}$/$I_{c0}$) from 0.05 to 0.9 where $I_{\text{dc}}$ is the transport current value and $I_{c0}$ is the self-field critical current at each temperature. Simulation results show the effective penetration field $B_{\text{eff}}$, where the peaks of the normalized magnetization loss without current, $Q_{m,0}$/$B_{\mathrm{m}^{2}}$, of the spiral tape, one-layer Cable A, and two-layer Cable B, shifts to a large value with decreasing temperatures due to the increase of critical currents. In addition, the threshold field $B_{\text{th}}$ together with the normalized $B_{\text{th}}$/$I_{c0}$ at three temperatures of the spiral tape and Cable A can be estimated using the equation for a superconducting strip, while that of values for Cable B are higher than the analytical curves due to the shielding effect. A finite dynamic loss $Q_{\text{dyn}}$ below $B_{\text{th}}$ for three models at all temperatures is observed and this is due to a nonzero electric field caused by flux creep. The total loss at higher fields increases as temperature decreases from 77.5 K to 30 K except for i ≥ 0.5 at 77.5 K and i = 0.9 at 50 K where the occurrence of flux flow loss leads to a surge in total loss.
不同温度下高温超导CORC电缆动态电阻和总损耗的三维模拟
圆芯(CORC)电缆上的导体在交流磁场下携带直流电流,当应用于旋转机器、高磁场磁体和磁悬浮系统的磁场绕组时。由此产生的总损耗,包括外部交流磁场的磁化损耗和直流电流与交流磁场相互作用造成的动态损耗,将导致低温系统的功率耗散。在这项工作中,在交流磁场振幅高达500 mT,温度范围为30 K至77.5 K的情况下,数值计算了螺旋带和两根带有4毫米宽REBCO涂层导体的CORC电缆的动态电阻($R_{\text{dyn}}$)和总损耗,直流电流水平i ($I_{\text{dc}}$/$I_{c0}$)从0.05到0.9,其中$I_{\text{dc}}$为输运电流值,$I_{c0}$为每个温度下的自场临界电流。仿真结果表明,由于临界电流的增大,螺旋带、单层电缆A和双层电缆B的有效穿透场$B_{\text{eff}}$,其中无电流时归一化磁化损耗的峰值$Q_{m,0}$/$B_{\ maththrm {m}^{2}}$随着温度的降低而移向较大值。此外,利用超导带方程可以估计出螺旋带和电缆A在三种温度下的阈值场$B_{\text{th}}$和归一化的$B_{\text{th}}$/$I_{c0}$,而电缆B的阈值由于屏蔽效应高于解析曲线。在所有温度下,三个模型的有限动态损失$Q_{\text{dyn}}$低于$B_{\text{th}}$,这是由于磁流变引起的非零电场。从77.5 K到30 K,高场总损耗随着温度的降低而增大,但在77.5 K时i≥0.5,在50 K时i = 0.9出现通量流动损失导致总损耗激增。
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来源期刊
IEEE Transactions on Applied Superconductivity
IEEE Transactions on Applied Superconductivity 工程技术-工程:电子与电气
CiteScore
3.50
自引率
33.30%
发文量
650
审稿时长
2.3 months
期刊介绍: IEEE Transactions on Applied Superconductivity (TAS) contains articles on the applications of superconductivity and other relevant technology. Electronic applications include analog and digital circuits employing thin films and active devices such as Josephson junctions. Large scale applications include magnets for power applications such as motors and generators, for magnetic resonance, for accelerators, and cable applications such as power transmission.
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