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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Quench Property of Twisted-Pair $hbox{MgB}_{2}$ Superconducting Cables in Helium Gas
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Quench Property of Twisted-Pair $hbox{MgB}_{2}$ Superconducting Cables in Helium Gas

机译:氦气中双绞线 $ hbox {MgB} _ {2} $ 的猝灭特性

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CERN's twisted-pair superconducting cable is a novel design which offers filament transposition, low cable inductance and is particularly suited for tape conductors such as 2G YBCO coated conductors, Ag-sheathed Bi2223 tapes and Ni/Monel-sheathed tapes. A typical design of such twisted-pair cables consists of multiple superconducting tapes intercalated with thin copper tapes as additional stabilizers. The copper tapes are typically not soldered to the superconducting tapes so that sufficient flexibility is retained for the twisting of the tape assembly. The electrical and thermal contacts between the copper and superconducting tapes are an important parameter for current sharing, cryogenic stability and quench propagation. Using an twisted-pair cable assembly manufactured at CERN, we have carried out minimum quench energy (MQE) and propagation velocity measurements with point-like heat deposition localized within a tape. Furthermore, different contacts between the copper and superconductor around the hot spot have also been studied, including the co-twisted assembly in Kapton wrapping and locally separated tapes. The measurements have been performed in cooling helium gas at temperatures between 20 K and 35 K, with different current fractions with respect to the thermal runaway current. The results suggest a potential optimization strategy, compromising between: a higher stabilization with better contact between the copper and superconducting layers; and a faster propagation velocity and easier quench detection with a higher contact resistance.
机译:CERN的双绞线超导电缆是一种新颖的设计,具有细丝换位,低电缆电感的特性,特别适合于带状导体,例如2G YBCO涂层导体,带Ag护套的Bi2223胶带和带Ni / Monel护套的胶带。这种双绞线电缆的典型设计是由多个超导带和作为附加稳定器的薄铜带插入。铜带通常不被焊接到超导带上,从而为带组件的扭曲保留了足够的柔性。铜带和超导带之间的电接触和热接触是电流共享,低温稳定性和失超传播的重要参数。使用CERN生产的双绞线电缆组件,我们进行了最小猝灭能量(MQE)和传播速度的测量,并在胶带中定位了点状热沉积。此外,还研究了热点周围的铜和超导体之间的不同接触,包括在Kapton包装中的双绞组件和局部分开的胶带。测量是在冷却氦气,温度介于20 K和35 K之间的条件下进行的,相对于热失控电流,电流比例不同。结果表明了一种潜在的优化策略,其折衷包括:更高的稳定性以及铜和超导层之间的更好接触;以及更快的传播速度和更容易的失超检测以及更高的接触电阻。

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