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Stability Analysis of HTS Power Cable With Fault Currents

机译:具有故障电流的高温超导电力电缆的稳定性分析

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摘要

We numerically calculated the transient temperature distribution of flowing subcooled liquid nitrogen in a high- $T_{c}$ superconducting (HTS) model cable when faults occur. The coolant and cable core temperatures were calculated by numerically solving the heat equation using the finite difference method. In the calculation, we assume that the heat transfer coefficient between the flowing subcooled liquid nitrogen and the cable core surface is described by the Dittus–Boelter correlation. The calculation results reveal that the coolant temperature increases even after the fault has been removed and that it continues increasing until fresh coolant arrives from the inlet. The calculated temperature profile of the coolant agrees well with measured data obtained by conducting over-current tests on a model HTS cable. Using our computational code, we also evaluated the maximum HTS cable lengths that ensure that the coolant remains in the liquid phase for certain fault currents for an HTS model cable.
机译:当发生故障时,我们用数值方法计算了高T $ {c} $超导(HTS)模型电缆中流动的过冷液氮的瞬态温度分布。通过使用有限差分法对热量方程进行数值求解来计算冷却剂和电缆芯的温度。在计算中,我们假设流动的过冷液态氮与电缆芯表面之间的传热系数由Dittus-Boelter相关性描述。计算结果表明,即使故障已消除,冷却液温度仍会升高,并且一直持续上升,直到新鲜的冷却液从入口到达为止。计算出的冷却液温度曲线与通过对HTS型电缆进行过电流测试而获得的测量数据非常吻合。使用我们的计算代码,我们还评估了HTS电缆的最大长度,以确保针对HTS模型电缆的某些故障电流,冷却剂仍处于液相状态。

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